Zero-profile interbody spacer and coupled plate assembly

Information

  • Patent Grant
  • 11612492
  • Patent Number
    11,612,492
  • Date Filed
    Tuesday, September 3, 2019
    4 years ago
  • Date Issued
    Tuesday, March 28, 2023
    a year ago
Abstract
An implant for insertion into a disc space between vertebrae, wherein the implant includes a spacer portion, a plate portion coupled to the spacer portion, two bone fixation elements for engaging the vertebrae and a retention mechanism for preventing the bone fixation elements from postoperatively backing-out of the plate portion. The retention mechanism may be in the form of a spring biased snapper element that is biased into communication with the bone fixation elements so that once the bone fixation element advances past the snapper element, the snapper element is biased back to its initial position in which the snapper element interfaces with the bone fixation elements. Alternatively, the retention mechanism may be in the form of a propeller rotatable between a first position in which the bone fixation elements are insertable to a second position where the bone fixation elements are prevented from backing-out.
Description
BACKGROUND OF THE INVENTION

Intervertebral implants including interbody spacer portions and mechanically coupled plate portions are known in the art for restoring disc height, allowing fusion to occur between the adjacent vertebral bodies, and for providing stable fixation during healing.


It is desirable to construct a zero-profile implant wherein bone fixation elements that secure the implant to the vertebral bodies are blocked from backing-out of the bone and/or plate.


Additionally, it is desirable to construct a zero-profile implant that includes polyaxial bone fixation element couplings and features that prevent the implant from being implanted too deeply into a prepared disc space. Both screw back-out and over-insertion of the implant into a prepared disc space can have an adverse impact on the performance of the implant.


BRIEF SUMMARY OF THE INVENTION

The present invention relates generally to a spinal implant. More specifically, the present invention relates to a zero profile interbody spacer and coupled plate assembly for insertion into a disc space between adjacent superior and inferior vertebral bodies. The implant preferably includes a spacer portion, a plate portion coupled to the spacer portion, a plurality of bone fixation elements for engaging the vertebral bodies and a retention mechanism for preventing the bone fixation elements from postoperatively uncoupling from the implant.


In one exemplary embodiment, the implant includes first and second bone fixation elements, a spacer portion, a plate portion coupled to the spacer portion, and first and second spring-biased snapper elements for preventing the first and second bone fixation elements from backing-out of bone fixation holes formed in the plate portion (e.g., from postoperatively uncoupling from the implant). The spacer portion preferably includes a top surface for contacting the superior vertebral body, a bottom surface for contacting the inferior vertebral body, a first side surface, a second side surface, a leading surface and a trailing surface.


The plate portion includes a top surface, a bottom surface, a first side surface, a second side surface, a leading surface, a trailing surface, first and second bone fixation holes and first and second boreholes. The first and second bone fixation holes are sized and adapted for receiving the first and second bone fixation elements, respectively. The first bone fixation hole is angled so that the first bone fixation element engages the superior vertebral body while the second bone fixation hole is angled so that the second bone fixation element engages the inferior vertebral body. The first borehole is in communication with the first bone fixation hole and the second borehole is in communication with the second bone fixation hole.


The first and second spring-biased snapper elements are located in the first and second boreholes, respectively. The first and second spring biased snapper elements are moveable from a first position to a second position. In the first position, at least a portion of the first and second snapper elements protrude into the first and second bone fixation holes, respectively, so that once the first and second bone fixation elements have been inserted into the first and second bone fixation holes, respectively, the first and second snapper elements at least partially cover the first and second bone fixation elements, respectively, to prevent backing-out. The first and second spring biased snapper elements are preferably biased to the first position.


Preferably, insertion of the first and second bone fixation elements causes a head portion of the first and second bone fixation elements to contact the first and second spring biased snapper elements, respectively, to cause the first and second spring biased snapper elements to recoil from their first positions to the their second positions. Thereafter, further insertion of the first and second bone fixation elements causes the head portions of the first and second bone fixation elements to move distally of the first and second spring biased snapper elements resulting in the first and second snapper elements automatically moving from their second position to their first position.


The implant preferably further includes first and second stops to prevent over-insertion of the implant during implantation and to assist in securing a position of the implant during insertion of the first and second bone fixation elements. The first stop preferably extends superiorly of the top surface of the plate portion for contacting the superior vertebral body while the second stop extends inferiorly of the bottom surface of the plate portion for contacting the inferior vertebral body. The first and second stops are preferably integrally formed with the plate portion.


In another exemplary embodiment, the implant preferably includes first and second bone fixation elements, a spacer portion, a plate portion coupled to the spacer portion and a propeller element for preventing the first and second bone fixation elements from backing-out and over-insertion of the plate portion. The spacer portion includes a top surface for contacting the superior vertebral body, a bottom surface for contacting the inferior vertebral body, a first side surface, a second side surface, a leading surface and a trailing surface.


The plate portion includes a top surface, a bottom surface, a first side surface, a second side surface, a leading surface, a trailing surface, and first and second bone fixation holes. The first and second bone fixation holes are sized and adapted for receiving the first and second bone fixation elements, respectively. The first bone fixation hole is angled so that the first bone fixation element engages the superior vertebral body while the second bone fixation hole is angled so that the second bone fixation element engages the inferior vertebral body.


The propeller preferably includes a longitudinal axis extending between a first end and a second end. The propeller is coupled to the plate portion in-between the first and second bone fixation holes. In use, the propeller is rotatable between a first position wherein the propeller does not interfere with first and second bone fixation holes so that the first and second bone fixation elements can be inserted into the first and second bone fixation holes, respectively, to a second position wherein the first end of the propeller at least partially covers at least a portion of the first bone fixation hole and the second end of the propeller at least partially covers at least a portion of the second bone fixation hole to prevent backing-out of the first and second bone fixation elements once implanted. The propeller is preferably rotated through a range of about ninety degrees (90°) from the first position to the second position. The propeller preferably includes a threaded screw for engaging a threaded borehole formed in the plate portion. In use, in the first position, the longitudinal axis of the propeller is preferably oriented generally parallel to an axis of the implant and parallel to a cranial-caudal axis of the vertebral bodies so that the first end of the propeller extends superiorly of the top surface of the plate portion and the second end of the propeller extends inferiorly of the bottom surface of the plate portion so that the propeller acts as a stop during implantation of the implant to prevent over-insertion and to assist in securing a position of the implant during insertion of the first and second bone fixation elements.


In another exemplary embodiment, the implant sized and adapted for insertion into an intervertebral disc space between superior and inferior vertebral bodies includes: (a) first and second bone fixation elements; (b) a spacer portion including a top surface for contacting the superior vertebral body, a bottom surface for contacting the inferior vertebral body, a first side surface, a second side surface, a leading surface and a trailing surface; and (c) a plate portion coupled to the spacer portion. The plate portion including a top surface, a bottom surface, a first side surface, a second side surface, a leading surface and a trailing surface. The plate portion further including first and second bone fixation holes and first and second boreholes, the first and second bone fixation holes sized and adapted for receiving the first and second bone fixation elements, respectively. The first bone fixation hole is angled so that the first bone fixation element engages the superior vertebral body while the second bone fixation hole is angled so that the second bone fixation element engages the inferior vertebral body. The first borehole is in communication with the first bone fixation hole and the second borehole is in communication with the second bone fixation hole. The implant further including first and second spring-biased snapper elements for preventing the first and second bone fixation elements, respectively, from backing out. The first spring biased snapper element is located in the first borehole and the second spring biased snapper element is located in the second borehole. The first and second spring biased snapper elements are moveable from a first position to a second position, in the first position, at least a portion of the first and second snapper elements protrude into the first and second bone fixation holes, respectively, so that once the first and second bone fixation elements have been inserted into the first and second bone fixation holes, respectively, the first and second snapper elements at least partially cover the first and second bone fixation elements, respectively, to prevent backing-out, the first and second spring biased snapper elements being biased to the first position.


The height of the plate portion is preferably substantially equal to a height of the spacer portion and a width of the plate portion is preferably substantially equal to a width of the spacer portion. The spacer portion preferably includes first and second recesses formed in the first and second side surfaces thereof, respectively, and the plate portion preferably includes first and second projections extending from the plate portion for engaging the first and second recesses.


Each of the first and second spring biased snapper elements preferably includes a spring and a snapper element. The snapper element preferably including a tapered first end that protrudes into the first and second bone fixation holes for interacting with the first and second bone fixation elements, respectively, and a second end for interacting with the spring. The first and second spring biased snapper elements are preferably secured within the first and second boreholes, respectively, via first and second pins, respectively.


In use, insertion of the first and second bone fixation elements preferably causes the first and second spring biased snapper elements to move from their respective first position to their respective second positions. Insertion of the first and second bone fixation elements preferably causes a head portion of the first and second bone fixation elements to contact the first and second spring biased snapper elements, respectively, to cause the first and second spring biased snapper elements to recoil from their first positions to the their second positions. Further insertion of the first and second bone fixation elements preferably causes the head portions of the first and second bone fixation elements to move distally of the first and second spring biased snapper elements resulting in the first and second snapper elements automatically moving from their second position to their first positions.


The implant preferably also includes first and second stops to prevent over insertion of the implant during implantation and to assist in securing a position of the implant during insertion of the first and second bone fixation elements, the first stop extending superiorly of the top surface of the plate portion for contacting the superior vertebral body, the second stop extending inferiorly of the bottom surface of the plate portion for contacting the inferior vertebral body. The first and second stops are preferably integrally formed with the plate portion.


In another exemplary embodiment, the implant sized and adapted for insertion into an intervertebral disc space between superior and inferior vertebral bodies includes (a) first and second bone fixation elements; (b) a spacer portion including a top surface for contacting the superior vertebral body, a bottom surface for contacting the inferior vertebral body, a first side surface, a second side surface, a leading surface and a trailing surface; and (c) a plate portion coupled to the spacer portion. The plate portion includes a top surface, a bottom surface, a first side surface, a second side surface, a leading surface, a trailing surface, and first and second bone fixation holes. The first and second bone fixation holes sized and adapted for receiving the first and second bone fixation elements, respectively. The first bone fixation hole is angled so that the first bone fixation element engages the superior vertebral body and the second bone fixation hole is angled so that the second bone fixation element engages the inferior vertebral body. The implant further including (d) a propeller element having a longitudinal axis extending between a first end and a second end. The propeller element being coupled to the plate portion in-between the first and second bone fixation holes. The propeller being rotatable between a first position wherein the propeller does not interfere with first and second bone fixation holes so that the first and second bone fixation elements can be inserted into the first and second bone fixation holes, respectively, to a second position wherein the first end of the propeller at least partially covers at least a portion of the first bone fixation hole and the second end of the propeller at least partially covers at least a portion of the second bone fixation hole to prevent backing out of the first and second bone fixation elements once implanted. In the first position, the longitudinal axis of the propeller is preferably oriented generally parallel to an axis of the implant so that the first end of the propeller extends superiorly of the top surface of the plate portion and the second end of the propeller extends inferiorly of the bottom surface of the plate portion so that the propeller acts as a stop during implantation of the implant to prevent over insertion of the implant and to assist in securing a position of the implant during insertion of the first and second bone fixation elements.


The propeller is preferably rotated through a range of about ninety degrees (90°) from the first position to the second position. The propeller preferably includes a threaded screw for engaging a threaded borehole formed in the plate portion. The trailing surface of the plate portion preferably includes tapered recesses that form guide ramps for the first and second ends of the propeller as the propeller is being rotated from the first position to the second position and so that in the second position, the propeller lies flush with the trailing surface of the plate portion.





BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS

The foregoing summary, as well as the following detailed description of preferred embodiments of the application, will be better understood when read in conjunction with the appended drawings. For the purposes of illustrating the implant of the present application, there is shown in the drawings preferred embodiments. It should be understood, however, that the application is not limited to the precise arrangements and instrumentalities shown. In the drawings:



FIG. 1A illustrates an anterior perspective view of an implant according to a first preferred embodiment of the present application;



FIG. 1B illustrates a side elevational view of the implant of FIG. 1A;



FIG. 1C illustrates a top plan view of the implant of FIG. 1A;



FIG. 1D illustrates an anterior elevational view of the implant of FIG. 1A;



FIG. 1E illustrates a cross-sectional view of the implant of FIG. 1A, taken along line 1E-1E of FIG. 1C;



FIG. 1F illustrates a cross-sectional view of the implant of FIG. 1A, taken along line 1F-1F of FIG. 1A;



FIG. 2A illustrates an anterior perspective view of a plate portion of the implant of FIG. 1A;



FIG. 2B illustrates a cross-sectional view of the plate portion of FIG. 2A, taken along line 2B-2B of FIG. 2A;



FIG. 2C illustrates a magnified, cross-sectional view of a retention mechanism used in connection with the implant of FIG. 1A;



FIG. 2D illustrates a perspective view of the retention mechanism of FIG. 2C;



FIGS. 2E-2J illustrate various alternate views of the implant shown in FIG. 1A incorporating various alternate designs of a stop member configured for embedding at least partially into the vertebral bodies during impaction;



FIG. 3A illustrates a top plan view of an exemplary removal instrument for contacting and recoiling the retention mechanism of FIG. 2D to enable removal of the bone fixation elements from the implant;



FIG. 3B illustrates a magnified, cross-sectional view of the removal instrument of FIG. 3A, taken along line 3B-3B of FIG. 3A;



FIG. 4A illustrates an anterior perspective view of an implant according to a second preferred embodiment of the present application, the retention mechanism being in a first position;



FIG. 4B illustrates a side elevational view of the implant shown in FIG. 4A, the retention mechanism being in the first position;



FIG. 4C illustrates an anterior perspective view of the implant shown in FIG. 4A, the retention mechanism being in a second position;



FIG. 4D illustrates a side elevational view of the implant shown in FIG. 4A, the retention mechanism being in the second position;



FIG. 5A illustrates an anterior perspective view of the implant shown in FIG. 4A inserted into an intervertebral disc space between adjacent vertebral bodies, the retention mechanism being in the first position wherein the retention mechanism acts as a stop preventing over-insertion of the implant into the disc space;



FIG. 5B illustrates an anterior perspective view of the implant shown in FIG. 4A inserted into an intervertebral disc space between adjacent vertebral bodies, the retention mechanism being in the second position;



FIG. 6A illustrates a top perspective view of the implant shown in FIG. 4A, the plate portion incorporating an optional thread blocking mechanism;



FIG. 6B illustrates an alternate top perspective view of the implant shown in FIG. 6A illustrating the optional thread blocking mechanism in contact with an implanted bone fixation element;



FIG. 7A illustrates an anterior exploded perspective view of the plate portion used in connection with the implant of FIG. 4A, the retention mechanism incorporating a second exemplary coupling mechanism for engaging the plate portion;



FIG. 7B illustrates a cross-section view of the plate portion and retention mechanism shown in FIG. 7A, taken along line 7B-7B of FIG. 7A;



FIG. 8 illustrates a partial cross-sectional view of a plate portion used in connection with the implant of FIG. 4A, the retention mechanism incorporating a third exemplary coupling mechanism for engaging the plate portion;



FIG. 9A illustrates an anterior perspective view of the implant shown in FIG. 4A, the implant incorporating a second exemplary spacer portion;



FIG. 9B illustrates a top perspective view of the implant shown in FIG. 9A with an optional porous PEEK portion omitted;



FIG. 9C illustrates a cross-sectional view of the implant shown in FIG. 9A, taken along line 9C-9C in FIG. 9A with the optional porous PEEK portion omitted;



FIGS. 10A-10E illustrate various views of an exemplary insertion instrument and method for inserting the implant of FIG. 4A; and



FIGS. 11A-11C illustrate various views of an exemplary inserter and drill guide instrument for inserting an implant.





DETAILED DESCRIPTION OF THE INVENTION

Certain terminology is used in the following description for convenience only and is not limiting. The words “right”, “left”, “lower” and “upper” designate directions in the drawings to which reference is made. The words “inwardly” or “distally” and “outwardly” or “proximally” refer to directions toward and away from, respectively, the geometric center of the implant and related parts thereof. The words, “anterior”, “posterior”, “superior,” “inferior” and related words and/or phrases designate preferred positions and orientations in the human body to which reference is made and are not meant to be limiting. The terminology includes the above-listed words, derivatives thereof and words of similar import.


Similar reference numerals will be utilized throughout the application to describe similar or the same components of each of the preferred embodiments of the implant described herein and the descriptions will focus on the specific features of the individual embodiments that distinguish the particular embodiment from the others.


Preferred embodiments of the present application are directed to an implant 10, 200 (“10-200”). It should be understood that while the various embodiments of the implant 10-200 will be described in connection with spinal surgery, those skilled in the art will appreciate that the implant 10-200, as well as the components thereof, may be used for implantation into other parts of the body, including, for example, long bones or bones in knee, hip, shoulder, or other joint replacement or for bone augmentation.


The various embodiments of the implant 10-200 are preferably sized and configured to be implanted between adjacent vertebral bodies V. The implant 10-200 may be sized and configured to replace all or substantially all of an intervertebral disc space D between adjacent vertebral bodies V or only part of the intervertebral disc space D. In addition, the preferred implant 10-200 may be configured to replace an entire vertebral body V and related disc spaces D or multiple disc spaces D in a patient's spine, as would be apparent to one having ordinary skill in the art based upon a review of the present application. The implant 10-200 may be adapted for use in the anterior, antero-lateral, direct lateral, extra-foraminal, transforaminal, and posterior approaches for insertion into the spine.


The implant 10-200 of each of the preferred embodiments includes an interbody spacer portion 20, 220, 220′ (“20-220”) and a plate portion 50, 250, 250′, 250″, 250′″ (“50-250”). The spacer portion 20-220 is preferably sized and configured for implantation into the intervertebral disc space D between adjacent vertebral bodies V. The spacer portion 20-220 of each of the preferred embodiments includes a top surface 22, a bottom surface 24, a first side surface 26, a second side surface 28, a leading surface 30 and a trailing surface 32. The top and bottom surfaces 22, 24 are suitable for contacting and are adapted for being secured relative to the end plates of adjacent vertebral bodies V. The spacer portion 20-220 is preferably sized and configured to maintain and/or restore a desired intervertebral disc height between the adjacent vertebral bodies V. Accordingly, the top and bottom surfaces 22, 24 may include a series of teeth, ridges, spikes or other similar projections 25 to aid in securing the implant 10-200 to the endplates of the adjacent vertebral bodies V.


The top and bottom surfaces 22, 24 may also include a curved or a tapered surface to help provide an anatomical shape for mating with the patient's spine or to orient the endplates of the adjacent vertebral bodies V in a desired manner. The particular surface shape and curvature, taper or alternate surface feature in the anterior-posterior direction, as well as the particular surface shape and curvature, taper or alternate surface feature in the medial-lateral direction will depend upon the location where the implant 10-200 is intended to be implanted and/or surgeon preferences or whether the implant 10-200 is utilized in another area in the body.


The spacer portion 20-220 may also include one or more boreholes, openings, windows or channels 34 for receiving bone graft material. For example, the implant 10-200 may include one or more vertical openings, windows or channels extending through the spacer portion 20-220 from the top surface 22 to the bottom surface 24 for insertion of bone graft material, such that bone growth is promoted through the vertical openings, windows or channels 34 following implantation of the implant 10-200. One or more boreholes, openings, windows or channels 34 is especially preferred if the spacer portion 20-220 is constructed of a non-allograft or non-bone-growth material, such as Polyetheretherketone (“PEEK”).


The plate portion 50-250 is preferably coupled to the spacer portion 20-220 to provide increased implant stability during healing as well as to optimally orient the trajectory of bone fixation elements 70 during implantation.


The plate portion 50-250 of each of the preferred embodiments includes a top surface 52, a bottom surface 54, a first side surface 56, a second side surface 58, a leading surface 60 and a trailing surface 62. The plate portion 50-250 preferably contacts the trailing surface 32 of the spacer portion 20-220 and preferably does not extend beyond or does not increase greatly the vertical or lateral perimeter of the spacer portion 20-220. In this manner, the implant 10-200 has a low profile. Additionally, in this manner, the plate portion 50-250 is preferably entirely implanted within the intervertebral disc space D between the adjacent vertebral bodies V such that the plate portion 50-250 has little or no external profile (e.g., the plate portion 50-250 does not extend anterior beyond an edge of the disc space D). In this manner, little or no structure protrudes outside of the bounds of the disc space D or the profile of the vertebral bodies V, thereby limiting dysphasia and patient discomfort. In use, the plate portion 50-250 may be sized and configured so that the top and bottom surfaces 52, 54 of the plate portion 50-250 contact the endplates of the adjacent vertebral bodies V. Alternatively, the plate portion 50-250 may be sized and configured so that only the spacer portion 20-220 contacts the adjacent vertebral bodies V. For example, the height of the plate portion 50-250 may be small enough so that it does not contact the vertebral bodies V when connected to the spacer portion 20-220 in an implanted position.


The plate portion 50-250 may be coupled to the spacer portion 20-220 by any coupling mechanism now or hereafter known. For example, the spacer portion 20-220 may include one or more recesses 36 formed in the side or trailing surfaces for engaging one or more projections 64 extending from the plate portion 50-250. Preferably the spacer portion 20 includes a recess 36 formed in each of the side surfaces 26, 28 thereof for engaging projections 64 extending from the plate portion 50-250. The recesses 36 may extend completely from the top surface 22 to the bottom surface of the spacer portion 20 or may extend only partially from either the top or bottom surface 20, 22. Other coupling mechanisms for coupling the plate portion 50-250 to the spacer portion 20-220 are disclosed in International Application No. PCT/US2008/082473 filed on Nov. 5, 2008 and entitled, “Low Profile Intervertebral Implant”, the contents of which are hereby incorporated by reference in their entirety.


The trailing surface 62 of the plate portion 50-250 preferably includes a tool engagement feature 80 for engaging one or more insertion tools. The tool engagement feature 80 may be in any form now or hereafter known for such purpose including one or more recesses formed in the trailing surface 62 of the plate portion 50-250, the recesses extending from top and bottom surfaces 52, 54, respectively, for engaging arms of the insertion tool. Alternatively, the tool engagement feature 80 may be a threaded bore (not shown) formed in the trailing surface 62 of the plate portion 50-250 for engaging a threaded stem extending from the insertion tool, etc.


The implant 10-200 preferably includes one or more bone fixation holes 40 for receiving one or more bone fixation elements 70, preferably bone screws so that, in use, after the implant 10-200 has been inserted into the intervertebral disc space D between adjacent vertebral bodies V, the implant 10-200 may be secured to the adjacent vertebral bodies V. The bone fixation elements 70 preferably include a threaded shaft 72 and a partially spherical head portion 74 that is generally smooth where it contacts the bone fixation hole 40. The threaded shaft 72 may be self-drilling, i.e. does not necessitate the drilling of pilot holes, but are not so limited. The bone fixation elements 70 are not limited to bone screws 70 and may be comprised of a helical nail, a distally expanding nail or screw, etc. The bone fixation holes 40 are preferably sized and configured so that the head portion 74 of the bone fixation elements 70 do not protrude proximally beyond the trailing surface 62 of the plate portion 50, when the bone fixation elements 70 have been fully implanted.


The bone fixation holes 40 preferably include a curved or frusta-spherical surface for contacting an underside of the generally smooth or frusta-spherical surface of the head portion 74 of the bone fixation elements 70 so that the bone fixation elements 70 can polyaxially rotate with respect to the plate portion 50-250 and a variety of trajectory angles can be chosen for the bone fixation elements 70 according to surgeons' preferences or needs as well as to enable the implant 10-200 to settle during healing.


The plate portion 50-250 preferably includes first and second bone fixation holes 40 for receiving first and second bone fixation elements 70 with the first bone fixation element 70 being angled upwardly for engaging the superior vertebral body V and the second bone fixation element 70 being angled downwardly for engaging the inferior vertebral body V. That is, the bone fixation holes 40 preferably have a longitudinal axis 41 that is oriented obliquely with respect to the implant 10-200 so that the bone fixation elements 70 form a fastener angle with respect to the top and bottom surfaces 22, 24 of the spacer portion 20 wherein bone fixation angle may be in the range between twenty degrees (20°) and sixty degrees (60°), and more preferably between thirty degrees (30°) and fifty degrees (50°). The bone fixation angle may be the same for all of the holes 40 or may be different for each of the holes 40. In addition, the bone fixation holes 40 may be directed inwardly toward the center of the implant 10-200 or outwardly away from the center of the implant 10-200, preferably at a lateral bone fixation angle α so that the bone fixation elements 70 extend laterally inward toward a center plane of the implant 10-200 or laterally outward away from the center plane of the implant 10-200. The lateral bone fixation angle α may be in the range between plus sixty degrees (60°) and minus sixty degrees (−60°), preferably between zero degrees (0°) and plus or minus thirty degrees (30°), and more preferably about plus or minus fifteen degrees (15°). The lateral bone fixation angle α may be the same for all holes 40 or may be different for each hole 40. However, as would be understood by one of ordinary skill in the art based upon a reading of this disclosure, a plurality of potential angles is possible since the bone fixation elements 70 are polyaxial, as will be described in greater detail below.


It should be understood however that the implant 10-200 may include three, four, five or more bone fixation holes 40 configured to receive a corresponding number of bone fixation elements 70 in any number of configurations. In addition, the number of bone fixation elements 70 extending from the top and bottom surfaces 22, 24 may be varied and the number of bone fixation elements 70 extending from the top surface 22 need not equal the number of bone fixation elements 70 extending from the bottom surface 24.


Exit openings for the bone fixation holes 40 preferably are formed at least partially in the top or bottom surfaces 52, 54 of the plate portion 50-250. The exit openings may also be formed at least partially or entirely in the top or bottom surfaces 22, 24 of the spacer portion 20-220. The bone fixation holes 40 may also include a partially spherical interior volume to accommodate the partially spherical geometry of the head portion 74 of the bone fixation elements 70 to enable a range of polyaxial orientations to be chosen for the bone fixation elements 70 with respect to the vertebral bodies V.


The implant 10-200 preferably also includes a retention mechanism for reducing the likelihood that the bone fixation elements 70 may postoperatively uncouple from the implant 10-200 and migrate from the disc space D. In use, the retention mechanism preferably covers at least a portion of the bone fixation holes 40 and hence the bone fixation elements 70 to prevent the bone fixation elements 70 from backing-out, as will be described in greater detail below.


The implant 10-200 including the spacer portion 20-220 and the plate portion 50-250 may be constructed of any suitable biocompatible material or combination of materials including, but not limited to one or more of the following metals such as titanium, titanium alloys, stainless steel, aluminum, aluminum alloy, magnesium, etc., polymers such as, PEEK, porous PEEK, carbon fiber PEEK, resorbable polymers, PLLA, etc., allograft, synthetic allograft substitute, ceramics in the form of bioglass, tantalum, Nitinol, or alternative bone growth material or some composite material or combination of these materials.


The spacer portion 20-220 may be formed of a different material than the plate portion 50-250. For example, the plate portion 50-250 may be formed of a metallic material such as, a titanium or a titanium alloy, and the spacer portion 20-220 may be formed of a non-metallic material such as, a polymer such as, PEEK, an allograft, a bioresorbable material, a ceramic, etc. Alternatively, the plate portion 50-250 and the spacer portion 20-220 may be formed from the same material. In addition, the plate portion 50-250 and spacer portion 20-220 may be integrally formed, pre-assembled or separately provided to a surgeon and assembled in the operating room.


As will be appreciated by one of ordinary skill in the art, the implant 10-200, or portions thereof, may also be coated with various compounds to increase bony on-growth or bony in-growth, to promote healing or to allow for revision of the implant 10-200, including hydroxyapatite, titanium-nickel, vapor plasma spray deposition of titanium, or plasma treatment to make the surface hydrophilic.


Referring to FIGS. 1A-2J, the intervertebral implant 10 of a first preferred embodiment includes the spacer portion 20, the plate portion 50, first and second bone fixation elements 70 and the retention mechanism. In the first preferred embodiment, the retention mechanism is in the form of a spring biased snapper element 110. More preferably, the plate portion 50 includes a borehole 112 in communication with each of the bone fixation holes 40 for receiving a spring 114 and a snapper element 116. The borehole 112 defines a longitudinal axis that intersects the longitudinal axis 41 of the bone fixation hole 40 and hence the bone fixation element 70. The intersection angle may be transverse, perpendicular or acute.


The snapper 116 preferably includes a first end 118 for contacting or interacting with the head portion 74 of the bone fixation element 70 and a second end 120 for receiving, contacting or interacting with the spring 114. The spring 114 is preferably sized and configured to bias the snapper 116 so that the snapper 116 protrudes into the bone fixation hole 40 and over the head portion 74 of the bone fixation element 70, once the bone fixation element 70 has been inserted into the bone fixation hole 40 to prevent back-out. The spring-biased snapper 116 is preferably secured within the borehole 112 via a pin or set screw 125. That is, the snapper 116 may include a groove or a recess 126 formed therein for mating with a pin or set screw 125, which is located within a borehole 125a. The interaction of the pin or set screw 125 and the groove or recess 126 preventing the snapper 116 from falling out of the borehole 112. For example, the snapper 116 preferably includes a rounded milled slot 126 and the pin or set screw 125 may be threaded and preferably includes a form fit so that the snapper 116 may be received and caught inside of the slot 126 formed in the snapper 116. Other mechanism for securing the spring-biased snapper 116 to the plate portion 50 may be used.


In the first preferred embodiment, the plate portion 50 also includes first and second stops 65, wherein the first stop 65 protrudes superiorly from the top surface 52 of the plate portion 50 for contacting the superior vertebral body V and the second stop 65 protrudes inferiorly from the bottom surface 54 of the plate portion 50 for contacting the inferior vertebral body V. Incorporation of more or less stops 65 is envisioned. Incorporation of the first and second stops 65 facilitates fully seating the implant 10 with respect to the adjacent vertebral bodies V regardless of the irregular anatomy of a patient's spine, which often characterizes the outer surface of the vertebral bodies V. The stops 65 are preferably integrally formed on the plate portion 50.


In use, the stops 65 are configured to abut the anterior aspects of the vertebral bodies V during implantation, although the stops 65 may abut the lateral or antero-lateral aspects of the vertebral bodies V depending upon the surgical procedure and insertion path being utilized. The stops 65 assist in preventing over-insertion of the implant 10 during implantation and assist in securing the position of the implant 10 during insertion of the bone fixation elements 70, as will be described in greater detail below. In part, due to the disposition of the stops 65, the implant 10 generally has a zero-profile external to the disc space D at least along a cranial-caudal midline, because the trailing surface 62 of the plate portion 50 can be designed to be convex to match the disc space D. Referring to FIGS. 2E-2J, a distal surface 65a of the stops 65 can be configured to embed at least partially into the vertebral bodies V during impaction to further reduce the profile of the plate portion 50 exterior to the disc space D, if so desired. For example, as shown in FIG. 2E, the distal surface 65a of the stops 65 may include a pyramid shaped projection or tooth 66 extending therefrom for embedding at least partially into the vertebral bodies V during impaction. Alternatively, the distal surface 65a of the stops 65 may include a plurality of projections or teeth 67 (as shown in FIG. 2F), a vertical blade type projection 68 (as shown in FIGS. 2G and 2H) or a transverse blade type projection 69 (as shown in FIGS. 2I and 2J) extending therefrom for embedding at least partially into the vertebral bodies V during impaction.


In operation, a surgeon prepares a pathway or channel to the disc space D, performs at least a partial discectomy, and inserts the implant 10 including the spacer portion 20 and the plate portion 50 into the disc space D until the stops 65 contact the adjacent vertebral bodes V. After the surgeon has chosen a desirable entry angle for the bone fixation elements 70, the surgeon advances the first and second bone fixation elements 70 into and through the bone fixation holes 40 at the selected angle, with or without the prior formation of pilot holes. Advancement of the bone fixation elements 70 into the bone fixation holes 40 causes the head portion 74 of the bone fixation elements 70 to contact the inner spherical portions of the bone fixation holes 40 and tends to draw the vertebral bodies V into alignment as opposed to resulting in the over-insertion of the implant 100 since the stops 65 guide the movement of the vertebral bodies V during bone fixation manipulation. That is, because the stops 65 contact the adjacent vertebral bodies V and prevents over-insertion of the implant 10 into the disc space D, advancement of the bone fixation elements 70 tends to pull and/or reposition the adjacent vertebral bodies V together to promote fusion. The bone fixation elements 70 are advanced until the vertebral bodies V are optimally aligned and the head portions 74 of the bone fixation elements 70 are advanced into the spherical portions of the bone fixation holes 70.


As the bone fixation elements 70 advance through the bone fixation holes 40, the underside of the head portion 74 of the bone fixation elements 70 contact the first end 118, preferably a tapered end portion 117, of the snapper elements 116 that protrude into the bone fixation holes 40, thereby urging the snapper elements 116 to recoil upon the spring 114 and retracting the snapper elements 116 from the bone fixation holes 40 so that the bone fixation elements 70 can be implanted. Once the head portions 74 of the bone fixation elements 70 advance past the tapered end portion 117 of the snapper elements 116, the spring 114 forces the snapper elements 116 back to their initial position in which the snapper elements 116 protrude at least partially into the bone fixation holes 40. In this position, the first end 118 of the snapper element 116 is designed to cover at least a portion, contact and/or interact with the top surface of the head portions 74 of the bone fixation elements 70 to block the head portions 74 of the bone fixation elements 70 and limit the bone fixation elements 70 from backing-out of the bone fixation holes 40. Specifically, the first end 118 of the snapper element 110 preferably extends into the bone fixation hole 40 such that the head portion 74 of the bone fixation element 70 is unable to move out of the bone fixation hole 40 without impacting the first end 118.


Post implantation, the bone fixation elements 70 are preferably free to toggle to allow for settling during postoperative healing. Referring to FIGS. 3A and 3B, if a surgeon decides the placement of the implant 10 is not optimal, adjustments can be made by compressing the snapper elements 116 with a blunt instrument or a sleeve thereby allowing the bone fixation elements 70 to be removed. For example, a removal instrument 1000 may include an inner shaft 1010 for engaging the bone fixation element 70 and an outer shaft 1020 for contacting and recoiling the snapper element 116 so that the bone fixation element 70 may be removed from the plate portion 50.


Referring to FIGS. 4A-5B, the intervertebral implant 200 of a second preferred embodiment includes the interbody spacer portion 220, the plate portion 250, first and second bone fixation elements 70 and the retention mechanism. In the second preferred embodiment, the retention mechanism is in the form of a propeller 310 moveable, more preferably rotatable, between a first position (illustrated in FIGS. 4A, 4B and 5A) and a second position (illustrated in FIGS. 4C, 4D and 5B). In the first position, the propeller 310 does not interfere with first and second bone fixation holes 40 so that the first and second bone fixation elements 70 can be inserted into the adjacent vertebral bodies V. In the second position, the propeller 310 blocks or covers at least a portion of the bone fixation holes 40 and hence at least a portion of the implanted bone fixation elements 70 to prevent backing-out.


The propeller 310 is preferably preassembled or pre-attached to the plate portion 250. The propeller 310 may be attached to the plate portion 250 by any coupling mechanism now or hereafter known in the art including those described below. In the second preferred embodiment, the propeller 310 is preassembled to the plate portion 250 via a retaining screw 320 that interfaces with a threaded borehole (not shown) disposed between the bone fixation holes 40 formed in the plate portion 250. The retaining screw 320 may extend into and be threadably coupled to the spacer portion 220, but is not so limited. Alternatively, the retaining screw 320 may be securely coupled with respect to the plate portion 250 by a cross-pinned shaft, a rivet, a helical wedge attached to the shaft of the retaining screw 320, etc. The propeller 310 includes first and second ends 312, 314 defining a longitudinal axis that is generally transverse to the longitudinal axis of the retaining screw 320.


The propeller 310 and the retaining screw 320 are preferably rotatable through a range of about ninety degrees (90°) from the first position to the second position. In the first position, the longitudinal axis of the propeller 310 is oriented generally parallel to a longitudinal axis of the implant 200 and generally parallel to the cranial-caudal axis of the spine so that the propeller 310 does not interfere with the bone fixation holes 40 or bone fixation elements 70 to enable insertion of the bone fixation elements 70 into the adjacent vertebral bodies V. In the second position, the longitudinal axis of the propeller 310 is generally oriented perpendicular to the cranial-caudal axis of the spine so that the propeller 310 blocks or covers at least a portion of the bone fixation holes 40 and the bone fixation elements 70 to prevent backing-out. That is, in the second position, the propeller 310 covers at least a portion of the head portion 74 of the bone fixation elements 70 while in the first position, the propeller 310 permits insertion of the bone fixation elements 70 into the bone fixation holes 40 and into the adjacent vertebral bodies V.


The retaining screw 320 preferably includes an engagement feature 321 for engaging an insertion instrument 500, as will be described in greater detail below, to rotate the retaining screw 320 and the propeller 310 to and between the first and second positions. The retaining screw 320 and the propeller 310 are coupled to one another and preferably rotate together via a two point interference fit between the outer diameter of the retaining screw 320 and the diameter of a counterbore (not shown) through the propeller 310.


The plate portion 250 preferably includes a tapered recess 330 that forms a guide ramp so that in the second position, the propeller 310 preferably lies flush with the trailing surface 62 of the plate portion 250 (as best shown in FIG. 4D). Accordingly, in the first position (FIGS. 4A and 4B), the propeller 310 extends from the trailing surface 62 of the plate portion 250 and in the second position (FIGS. 4C and 4D), the anterior surface of the propeller 310 lies generally flush or somewhat recessed with respect to the trailing surface 62. Therefore, in an implanted configuration when the propeller 310 is in the second position, the entire implant 200, including the propeller 310, lies within the bounds of the patient's spine or posteriorly relative to the anterior aspect of the vertebrae V.


In operation, a surgeon prepares a pathway or channel to the disc space D, performs at least a partial discectomy, and inserts the implant 200 including the spacer portion 220 and the plate portion 250 into the disc space D with the propeller 310 in the first position. In the first position, the propeller 310 is sized to act as a stop during implantation of the implant 200 to prevent over-insertion of the implant 200, as well as to secure the position of the implant 200 during the insertion of the bone fixation elements 70. Specifically, the ends 312, 314 of the propeller 310 contact and/or engage the adjacent vertebral bodies V to mechanically block further insertion of the implant 200 into the disc space D (as best shown in FIG. 5A).


After the surgeon has chosen a desirable entry angle for the bone fixation elements 70, the surgeon advances the first and second bone fixation elements 70 into and through the bone fixation holes 40 at the selected angle, with or without the prior formation of pilot holes. Advancement of the bone fixation elements 70 into the bone fixation holes 40 causes the head portion 74 of the bone fixation elements 70 to contact the inner spherical portions of the bone fixation holes 40 and tends to draw the vertebral bodies V into alignment as opposed to resulting in the over-insertion of the implant 200 since the propeller 310 preferably guides the movement of the vertebral bodies V during bone fixation manipulation. The bone fixation elements 70 are advanced until the vertebral bodies V are optimally aligned and the head portions 74 of the bone fixation elements 70 are advanced into the spherical portions of the bone fixation holes 70. The retaining screw 320 and the propeller 310 are then rotated ninety degrees (90°) from the first position to the second position, guided by the recesses 330 formed in the trailing surface 62 of the plate portion 250, by mating an insertion instrument to the instrument engagement feature 321 on the retaining screw 320. As the retaining screw 320 is rotated from the first position to the second position, the retaining screw 320 preferably advances distally, based on the pitch of the threading formed on its shaft, and the propeller 310 rotates down the guide ramp formed by the recesses 330 and comes to rest therein while overlying the head portions 74 of the bone fixation elements 70. The shape of the guide ramp formed by the recesses 330 preferably stops the propeller 310 from over rotating past the second position, such that the ends of the propeller 310 at least partially cover the head portions 74 of the bone fixation elements 70. As such, the bone fixation elements 70 are prevented from backing-out of the plate portion 250 and the spacer portion 220 by the propeller 310.


Post implantation, the bone fixation elements 70 are preferably free to toggle to allow for settling during postoperative healing. If a surgeon decides the placement of the implant 200 is not optimal, adjustments can be made by rotating the propeller 310 back to the first position, thereby unblocking the head portions 74 of the bone fixation elements 70 and allowing adjustments thereto.


Referring to FIGS. 6A and 6B, a second preferred embodiment of the plate portion 250′ for use with implant 200 is illustrated. In the second preferred embodiment of the plate portion 250′, the bone fixation holes 40 include a protruding thread blocking mechanism 350 that is sized and configured to permit the threaded advancement of the first and second bone fixation elements 70 with respect to the bone fixation holes 40 until the proximal most thread 73 formed on the shaft 72 of the bone fixation element 70 advances distally past the thread blocking mechanism 350, at which point the distal surface of the thread blocking mechanism 350 contacts a proximal side of the proximal most thread 73 to inhibit the first and second bone fixation elements 70 from backing-out of the bone fixation holes 40. The thread blocking mechanism 350 may assume the form of a raised ridge or interrupted ring of material or a variety of other protruding features configured to allow the proximal most thread 73 of the bone fixation element 70 to advance to a point from which retreat in the opposite direction is inhibited. Alternatively, the thread blocking mechanism 350 can be disposed within the bone fixation holes 40 to block the proximal surface of the head portions 74 of the bone fixation elements 70, as opposed to the proximal most threads 73. Alternatively, the thread blocking mechanism 350 can be configured to engage a corresponding indentation (not shown) formed on the sides of the head portions 74 of the bone fixation elements 70.


The bone fixation elements 70 may further include an undercut 75 between the proximal most thread 73 and the distal portion of the head portion 74 for enabling the bone fixation element 70 to generally rotate freely after being fully seated in the bone fixation hole 40 to thereby permit lagging of the vertebral bodies V with respect to the implant 200 during implantation.


In operation, the implant 200 is positioned between the adjacent vertebral bodies V and the bone fixation elements 70 are advanced into the bone fixation holes 40 until the proximal most thread 73 formed on the shaft portion 72 of the bone fixation elements 70 advance past the protruding thread blocking mechanism 350. The bone fixation elements 70 are fully seated with respect to the plate portion 250′ in this position. The distal surface of the thread blocking mechanism 350 contacts the proximal side of the proximal most thread 73 formed on the shaft portions 72 of the bone fixation elements 70 to limit the bone fixation elements 70 from backing-out of the bone fixation holes 40. The bone fixation elements 70 are generally free to rotate after being fully seated due to the inclusion of the undercuts 75 between the proximal most thread 73 and the head portion 74 of each bone fixation elements 70 to permit lagging of the vertebral bodies V with respect to the implant 200 during implantation. The propeller 310 can then be utilized in conjunction with the thread blocking mechanism 350 to secure the position of the implant 200 during the insertion of the bone fixation elements 270, as well as to add additional back-out prevention. Alternatively, it is envisioned that the thread blocking mechanism 350 can be incorporated into the first preferred embodiment of the implant 10.


Referring to FIGS. 7A and 7B, a third preferred embodiment of the plate portion 250″ for use with the implant 200 is illustrated. The third preferred embodiment of the plate portion 250″ includes an alternate coupling mechanism for coupling the propeller 310″ to the plate portion 250″. In this embodiment, the propeller 310″ includes a plurality of slots 317″ extending from a distal end 316″ of the propeller 310″ so that the propeller 310″ includes a plurality of spring-like fingers 315″ oriented along an axis that extends distally, generally perpendicular to the longitudinal axis of the ends 312″, 314″ of the propeller 310″. The spring fingers 315″ preferably include an outwardly extending flange 318″ at the distal end 316″ thereof. The plate portion 250″ preferably includes a non-threaded borehole 263″ disposed between the bone fixation holes 40. The non-threaded borehole 263″ preferably includes one or more ramps 263a″ and one or more steps 263b″ for interfacing with the spring fingers 315″ for securing the propeller 310″ to the plate portion 250″.


An optional retaining clip 340″, such as a wishbone clip formed of, for example, elgiloy, may be mounted in the borehole 263″ to further assist in securing the propeller 310″ to the plate portion 250″ by allowing insertion of the propeller 310″ into the borehole 263″ while providing additional protection against the propeller 310″ from backing-out of the borehole 263″.


In operation, the propeller 310″ is assembled to the plate portion 250″ by inserting the spring fingers 315″ into the borehole 263″ until the propeller 310″ snaps into the borehole 263″, retaining the propeller 310″ therein. That is, as the spring fingers 315″ advance into the borehole 263″, the tapered flanges 318″ formed on the distal end 316″ of the propeller 310″ and the spring fingers 315″ compress so that the fingers 315″ pass through the optional retaining clip 340″ after which the spring fingers 315″ partially spring back outwardly. The retaining clip 340″ may additionally flex slightly outwardly as the flange 318″ passes therethrough, after which the retaining clip 340″ springs back to its initial configuration. As the spring fingers 315″ continue to advance into the borehole 263″, the fingers 315″ pass over the step 263b″ and subsequently flex outwardly to their non-deflected configuration adjacent the ramp 263a″. In this manner, the propeller 310″ is prevented from backing-out through the borehole 263″ via interaction between the flanges 318″ and the step 263b″.


Referring to FIG. 8, a fourth preferred embodiment of the plate portion 250′″ for use with the implant 200 is illustrated. The fourth preferred embodiment of the plate portion 250′″ includes a third alternate coupling mechanism for coupling the propeller 310′″ to the plate portion 250′″. In this embodiment, the non-threaded borehole 263′″ includes a first ramp 263a′″, a first step 263b′″, a second preferred helical ramp 263c′″, and a second step 263d″″ as one moves from the trailing surface 62 of the plate portion 250′″. The configuration of the propeller 310′″ is substantially identical to the propeller 310″ of the second exemplary coupling mechanism described above.


In operation, the propeller 310′″ is assembled to the plate portion 250′″ by inserting the spring fingers 315′″ into the non-threaded borehole 263′″ until the propeller 310′″ snaps into the borehole 263′″, which retains the propeller 310′″ therein. As the spring fingers 315′″ advance into the borehole 263′″, the spring fingers 315′″ compress as the tapered flanges 318′″ pass along the first ramp 263a′″ and over the first step 263b′″, at which point the spring fingers 315′″ and the flanges 318′″ partially spring outwardly thereby securing the propeller 310′″ to the plate portion 250′″. The propeller 310′″ is prevented from backing-out through the borehole 263′″ via interaction between the flanges 318′″ and the first step 263a′″. In addition, as the propeller 310′″ is moved from the first position to the second position, the spring fingers 315′″ further advance into the borehole 263′″, wherein the flange 318′″ is guided by the preferred helically formed second ramp 263c′″, until the flange 318′″ passes over the second step 263d′″. The spring fingers 315′″ and the flanges 318′″ flex outwardly into their non-deflected configuration to block the propeller 310′″ from backing-out through the borehole 263′″ via interaction between the flanges 318′″ and the second step 263d′″.


Referring to FIGS. 9A-9C, an alternate embodiment of the spacer portion 220′ for use with the first and second preferred embodiments of the intervertebral implant 10-200 (second preferred embodiment illustrated) includes a centralized porous PEEK region 422 concentrically surrounded by a conventional PEEK portion 420.


In operation, the implant 200 is implanted and secured within the disc space D in a similar manner as previously described. The central porous PEEK portion 422 of the spacer portion 220′ has a porosity that provides a suitable pathway through which blood is able to flow and bone is able to grow to assist in promoting fusion with and between the adjacent vertebral bodies V. The porous PEEK portion 422 may extend from the top surface 22 to the bottom surface 24 of the spacer portion 220′. Alternatively, the spacer portion 220′ may include a bridge 424. When the spacer portion 220′ includes the bridge 424, first and second blind boreholes 426, 428 preferably extend from the top and bottom surfaces 22, 24, respectively, to the bridge 424. The blind boreholes 426, 428 may include tapered sidewalls 430 such that a diameter of the blind boreholes 426, 428 increases toward the center of the spacer portion 220′. The bridge 424 may be formed of the same material as the rest of the spacer portion 220′, but is preferably constructed of porous PEEK. Alternately, the bridge 424 may be removable, e.g., capable of being popped out of the spacer portion 220′ to provide an axial throughbore. In operation, the blind boreholes 426, 428 are preferably filled with bone graft or other fusion promoting material and the implant 200′ is implanted into the disc space D between the adjacent vertebral bodies V. The optional tapered sidewalls 430 of the blind bores 426, 428 facilitate securing the position of the implant 200′ within the disc space D as fusion occurs into the blind boreholes 426, 428.


Referring to FIGS. 10A-10E, an exemplary insertion instrument 500 and method for inserting the implant 200 will now be described. In connection with the exemplary method, the propeller 310 will be described and illustrated as unattached to the plate portion 250. However the exemplary method can be easily adapted to operate with the propeller 310 pre-attached to the plate portion 250 or adapted to operate with the first preferred embodiment of the implant 10, as would be apparent to one having ordinary skill in the art based upon a review of the present application.


The insertion instrument 500 is configured to couple to the propeller 310, to couple to the plate portion 250, to insert the implant 200 at least partially into the disc space D, to permit insertion of the bone fixation elements 70 into the bone fixation holes 40, to secure the propeller 310 to the plate portion 250, if necessary, and to rotate the propeller 310 from the first position to the second position, if necessary.


The insertion instrument 500 preferably includes an inner shaft 520 and an outer tubular member 530. The inner shaft 520 preferably includes a distal engagement feature 525, such as a star drive, for interfacing with the engagement feature 321 formed on the retaining screw 320. The outer tubular member 530 preferably includes a distal engagement feature 535 for interfacing with a corresponding engagement feature (not shown) formed on the plate portion 250. Accordingly, the instrument 500 retains the propeller 310 by securing the engagement feature 525 formed on the inner shaft 520 of the instrument 500 to the propeller 310. The instrument 500 retains the implant 200 by grasping the plate portion 250 with the engagement feature 535 formed on the outer tubular member 530.


The inner shaft 520 is configured to translate within the outer tubular member 530 along a longitudinal axis 501 of the instrument 500. Accordingly, the inner shaft 520, and hence the propeller 310, may be translated proximally with respect to the outer tubular member 530, and hence with respect to the implant 200. For embodiments where the propeller 310 is unattached to the plate portion 250 and where the plate portion 250 does not include one or more stops, the instrument 500 may also include one or more stops (not shown) to prevent over-insertion of the implant 200 into the disc space D as well as to secure the position of the implant 200 with respect to the disc space D during the implantation of the bone fixation elements 70.


In operation, the surgeon inserts the implant 200 into the disc space D by using the instrument 500 to advance the implant 200 into the disc space D between the adjacent vertebral bodies V until one or more stops (not shown) abut the anterior (or lateral or antero-lateral) aspects of the vertebral bodies V. The bone fixation elements 70 are then inserted through the bone fixation holes 40 and into the vertebral bodies V while lagging of the implant 200 is limited by the interaction of the stops with the vertebral bodies V.


If unattached, the propeller 310 and the retaining screw 320 may then be advanced into a corresponding borehole 263 formed in the plate portion 250 by translating the inner shaft 520 distally with respect to the outer tubular member 530. The inner shaft 250 is then rotated so that the propeller 310 moves from its first position to its second position to prevent back-out of the implanted bone fixation elements 70. The instrument 500 is then decoupled from the propeller 310 and the retaining screw 320.


Referring to FIGS. 11A-11C, an optional inserter and drill guide instrument 600 can be utilized to insert any of the previously described implants 10-200 and to align the trajectory of an awl, drill, driver instrument, etc. for pilot hole formation and/or bone fixation element insertion. The inserter and drill guide instrument 600 includes a pair of arms 610, 615 extending from a pair of handles 620, 625 that are coupled at a pivot point 630. The arms 610, 615 include aiming barrels 612, 616 at their distal ends, respectively, for aligning the trajectory of the awl, drill, bone fixation elements, etc. The barrels 612, 616 include guide ribs 613, 617, respectively, disposed on their outer surface for interfacing with a key 625 formed in the bone fixation holes 40 of the implant 200. The interfacing guide ribs 613, 617 and keys 625 are configured to limit rotation of the implant 10-200 relative to the instrument 600, a feature that is especially preferred for implants 10-200 having only two bone fixation holes 40.


In operation, the arms 610, 615 of the inserter and drill guide instrument 600 are opened by squeezing the handles 620, 625 together and the barrels 612, 616 are inserted into the bone fixation holes 40 formed in the plate portion 250 such that the guide ribs 613, 617 interface with the keys 625. Upon secure grasping of the implant 10-200, the arms 610, 615 are locked into place and the instrument 600 may be used to insert the implant 10-200 into an at least partially cleared out disc space D between the vertebral bodies V. The barrels 612, 616 can then be used to align the trajectory of an awl, drill, etc. to form pilot holes for the bone fixation elements 70 or may align the trajectory of the bone fixation elements 70 in the case where self-drilling bone fixation elements 70 are utilized. Subsequent to the implantation of the bone fixation elements 70, the arms 610, 615 are unlocked and the inserter and drill guide instrument 600 is decoupled from the implant assembly.


While the foregoing description and drawings represent the preferred embodiments of the present invention, it will be understood that various additions, modifications, combinations and/or substitutions may be made therein without departing from the spirit and scope of the present invention as defined in the accompanying claims. In particular, it will be clear to those skilled in the art that the present invention may be embodied in other specific forms, structures, arrangements, proportions, and with other elements, materials, and components, without departing from the spirit or essential characteristics thereof. One skilled in the art will appreciate that the invention may be used with many modifications of structure, arrangement, proportions, materials, and components and otherwise, used in the practice of the invention, which are particularly adapted to specific environments and operative requirements without departing from the principles of the present invention. In addition, features described herein may be used singularly or in combination with other features. The presently disclosed embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims, and not limited to the foregoing description.

Claims
  • 1. An implant for insertion into an intervertebral disc space between superior and inferior vertebral bodies, the implant comprising: a spacer portion including a top surface configured to contact the superior vertebral body, and a bottom surface configured to contact the inferior vertebral body;a plate portion configured to be coupled to the spacer portion, the plate portion including a bone fixation hole and a borehole, the bone fixation hole sized and adapted for receiving a bone fixation element, the bone fixation hole being angled so that the bone fixation element engages one of the superior and inferior vertebral bodies, wherein the borehole is in communication with the bone fixation hole; anda spring-biased snapper element disposed in the borehole and configured to prevent the bone fixation element from backing-out of the bone fixation hole, wherein the spring biased snapper element is biased toward a first position whereby at least a portion of the spring-biased snapper element protrudes into the bone fixation hole so that once the bone fixation element is inserted into the bone fixation hole, the spring-biased snapper element at least partially covers the bone fixation element to prevent the bone fixation element from backing-out;a mechanism that is located at least partially within the borehole, the mechanism moveable with respect to the spring biased snapper element and configured to be positioned at least partially within the borehole such that the mechanism: 1) permits movement of the spring biased snapper element toward the first position; and 2) prevents the spring biased snapper element from exiting the borehole entirely; anda stop that protrudes from the plate portion and is configured to abut one of the superior and inferior vertebral bodies so as to prevent over-insertion of the implant into the intervertebral disc space.
  • 2. The implant of claim 1, wherein the spring-biased snapper element is movable between the first position and a second position, the spring-biased snapper element being removed from the bone fixation hole in the second position.
  • 3. The implant of claim 2, wherein insertion of the bone fixation element into the bone fixation hole causes the spring biased snapper element to move from the first position to the second position.
  • 4. The implant of claim 1, wherein the spring biased snapper element includes a spring and a snapper element, the snapper element protrudes into the bone fixation hole when the spring-biased snapper element is in the first position, and the spring biases the spring-biased snapper element to the first position.
  • 5. The implant of claim 1, further comprising a pin that secures the spring biased snapper element within the borehole.
  • 6. The implant of claim 1, wherein the plate portion further includes a thread blocking mechanism that is configured to permit advancement of the bone fixation element into the bone fixation hole to a desired depth, and once the fixation element has reached the desired depth the thread blocking mechanism inhibits the bone fixation element from backing out of the bone fixation hole.
  • 7. The implant of claim 1, wherein the spacer portion defines a recess that receives a projection of that extends from the plate portion.
  • 8. The implant of claim 1, wherein the spacer portion further includes a centralized region comprising a first material concentrically surrounded by a portion comprising a second material that is different from the first material.
  • 9. The implant of claim 8, wherein the first material is more porous than the second material.
  • 10. The implant of claim 1, wherein the mechanism is configured to be actuated from a first configuration to a second configuration, such that when the mechanism is in the first configuration the mechanism is located at least partially within the borehole, and when the mechanism is in the second configuration the spring-biased snapper element is capable of being inserted into or removed from the borehole.
  • 11. The implant of claim 1, wherein the spring-biased snapper element comprises a pair of spring-biased snapper elements and the bone fixation hole comprises a pair of bone fixation holes that are configured to receive respective bone fixation elements such that the bone fixation elements extend into different ones of the superior and inferior vertebral bodies.
  • 12. The implant of claim 1, wherein the plate portion defines a leading surface and a trailing surface with respect to a direction of insertion into the intervertebral disc space, and the stop is confined to a location that is between the leading surface and the trailing surface with respect to the direction of insertion.
  • 13. The implant of claim 1, wherein the top and bottom surfaces of the spacer portion are opposite each other along a direction, and the stop protrudes from the plate portion along the direction.
  • 14. The implant of claim 12, wherein the stop has different thicknesses along its length, the thicknesses measured along the direction of insertion.
  • 15. The implant of claim 1, wherein the stop is devoid of any bone fixation holes configured to receive a bone fixation element.
  • 16. The implant of claim 1, wherein the stop is a first stop that projects in an upward direction, and the plate portion further comprises a second stop that projects in a downward direction, the top surface being spaced from the bottom surface in the upward direction, and the bottom surface being spaced from the top surface in the downward direction.
  • 17. The implant of claim 1, wherein the plate portion defines a recess configured to receive an implant insertion tool.
CROSS REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 15/217,198, filed Jul. 22, 2016, which is a continuation of U.S. patent application Ser. No. 14/689,614, filed Apr. 17, 2015, now U.S. Pat. No. 9,414,935 issued on Aug. 16, 2016, which is a continuation of U.S. patent application Ser. No. 12/613,866, filed Nov. 6, 2009, now U.S. Pat. No. 9,192,419 issued on Nov. 24, 2015, which claims benefit of U.S. Provisional Patent Application No. 61/139,920, filed Dec. 22, 2008, and U.S. Provisional Patent Application No. 61/112,441, filed Nov. 7, 2008, the contents of all of which are hereby incorporated by reference as if set forth in their entireties herein.

US Referenced Citations (881)
Number Name Date Kind
424836 Thompson Apr 1890 A
438892 Lippy Oct 1890 A
1105105 Sherman Jul 1914 A
1200797 Barbe Oct 1916 A
2151919 Jacobson Mar 1939 A
2372888 James Apr 1945 A
2621145 Sano Dec 1952 A
2782827 Rosan Feb 1957 A
2906311 Boyd Sep 1959 A
2972367 Wootton Feb 1961 A
3062253 Miliheiser Nov 1962 A
3272249 Houston Sep 1966 A
3350103 Ahlstone Oct 1967 A
3426364 Lumb Feb 1969 A
3561075 Selinko Feb 1971 A
3579831 Stevens et al. May 1971 A
3707303 Petri Dec 1972 A
3810703 Pasbrig May 1974 A
3867728 Stubstad et al. Feb 1975 A
3899897 Boerger et al. Aug 1975 A
3945671 Gerlach Mar 1976 A
4017946 Soja Apr 1977 A
4056301 Norden Nov 1977 A
4123132 Hardy et al. Oct 1978 A
4135506 Ulrich Jan 1979 A
4278120 Hart et al. Jul 1981 A
4280875 Werres Jul 1981 A
4285377 Hart Aug 1981 A
4288902 Franz Sep 1981 A
4297063 Hart Oct 1981 A
4298993 Kovaleva et al. Nov 1981 A
4299902 Soma et al. Nov 1981 A
4349921 Kuntz Sep 1982 A
4388921 Sutter et al. Jun 1983 A
4394370 Jefferies Jul 1983 A
4450591 Rappaport May 1984 A
4484570 Sutter et al. Nov 1984 A
4488543 Tornier Dec 1984 A
4501269 Bagby Feb 1985 A
4503848 Caspar et al. Mar 1985 A
4512038 Alexander et al. Apr 1985 A
4545374 Jacobson Oct 1985 A
4553890 Gulistan Nov 1985 A
4599086 Doty Jul 1986 A
4627853 Campbell et al. Dec 1986 A
4640524 Sedlmair Feb 1987 A
4648768 Hambric Mar 1987 A
4678470 Nashef et al. Jul 1987 A
4708377 Hunting Nov 1987 A
4711760 Blaushild Dec 1987 A
4714469 Kenna Dec 1987 A
4717115 Schmitz et al. Jan 1988 A
4743256 Brantigan May 1988 A
4781721 Grundei Nov 1988 A
4793335 Frey et al. Dec 1988 A
4804290 Balsells Feb 1989 A
4812094 Grube Mar 1989 A
4829152 Rostoker et al. May 1989 A
4834757 Brantigan May 1989 A
4858603 Clemow et al. Aug 1989 A
4872452 Alexson Oct 1989 A
4878915 Brantigan Nov 1989 A
4904261 Dove et al. Feb 1990 A
4917704 Frey et al. Apr 1990 A
4932973 Gendler Jun 1990 A
4936851 Fox et al. Jun 1990 A
4946378 Hirayama et al. Aug 1990 A
4950296 McIntyre Aug 1990 A
4955908 Frey et al. Sep 1990 A
4961740 Ray et al. Oct 1990 A
4976576 Mahaney et al. Dec 1990 A
4978350 Wagenknecht Dec 1990 A
4994084 Brennan Feb 1991 A
4997432 Keller Mar 1991 A
5006120 Carter Apr 1991 A
5010783 Sparks et al. Apr 1991 A
5017069 Stengel May 1991 A
5020949 Davidson et al. Jun 1991 A
5026373 Ray et al. Jun 1991 A
5030220 Howland Jul 1991 A
5047058 Roberts et al. Sep 1991 A
5053049 Campbell Oct 1991 A
5062850 MacMillan et al. Nov 1991 A
5071437 Steffee Dec 1991 A
5084051 Toermaelae et al. Jan 1992 A
5085660 Lin Feb 1992 A
5096150 Westwood Mar 1992 A
5108438 Stone Apr 1992 A
5112354 Sires May 1992 A
5116374 Stone May 1992 A
5118235 Dill Jun 1992 A
5139424 Yli-Urpo Aug 1992 A
5147404 Downey Sep 1992 A
5163949 Bonutti Nov 1992 A
5163960 Bonutti Nov 1992 A
5180381 Aust et al. Jan 1993 A
5192327 Brantigan Mar 1993 A
5197971 Bonutti Mar 1993 A
5201736 Strauss Apr 1993 A
5207543 Kirma May 1993 A
5211664 Tepic et al. May 1993 A
5235034 Bobsein et al. Aug 1993 A
5238342 Stencel Aug 1993 A
5258031 Salib et al. Nov 1993 A
5269785 Bonutti Dec 1993 A
5275601 Gogolewski et al. Jan 1994 A
5281226 Davydov et al. Jan 1994 A
5282861 Kaplan Feb 1994 A
5284655 Bogdansky et al. Feb 1994 A
5290312 Kojimoto et al. Mar 1994 A
5295994 Bonutti Mar 1994 A
5298254 Prewett et al. Mar 1994 A
5304021 Oliver et al. Apr 1994 A
5306307 Senter et al. Apr 1994 A
5306308 Gross et al. Apr 1994 A
5306309 Wagner et al. Apr 1994 A
5314476 Prewett et al. May 1994 A
5314477 Marnay May 1994 A
5329846 Bonutti Jul 1994 A
5330535 Moser et al. Jul 1994 A
5331975 Bonutti Jul 1994 A
5345927 Bonutti Sep 1994 A
5348788 White Sep 1994 A
5368593 Stark Nov 1994 A
5380323 Howland Jan 1995 A
5385583 Cotrel Jan 1995 A
5397364 Kozak et al. Mar 1995 A
5403317 Bonutti Apr 1995 A
5403348 Bonutti Apr 1995 A
5405391 Henderson et al. Apr 1995 A
5411348 Balsells May 1995 A
5423817 Lin Jun 1995 A
5425772 Brantigan Jun 1995 A
5431658 Moskovich Jul 1995 A
5439684 Prewett et al. Aug 1995 A
5441538 Bonutti Aug 1995 A
5443514 Steffee Aug 1995 A
5443515 Cohen et al. Aug 1995 A
5454365 Bonutti Oct 1995 A
5458638 Kuslich et al. Oct 1995 A
5458641 Ramirez Jimenez Oct 1995 A
5458643 Oka et al. Oct 1995 A
5464426 Bonutti Nov 1995 A
5478342 Kohrs Dec 1995 A
5484437 Michelson Jan 1996 A
5487744 Howland Jan 1996 A
5489308 Kuslich et al. Feb 1996 A
5496348 Bonutti Mar 1996 A
5507818 McLaughlin Apr 1996 A
5514153 Bonutti May 1996 A
5514180 Heggeness et al. May 1996 A
5520690 Errico et al. May 1996 A
5522846 Bonutti Jun 1996 A
5522899 Michelson Jun 1996 A
5527343 Bonutti Jun 1996 A
5531746 Errico et al. Jul 1996 A
5534012 Bonutti Jul 1996 A
5534030 Navarro et al. Jul 1996 A
5534031 Matsuzaki et al. Jul 1996 A
5534032 Hodorek Jul 1996 A
5545222 Bonutti Aug 1996 A
5545842 Balsells Aug 1996 A
5549612 Yapp et al. Aug 1996 A
5549630 Bonutti Aug 1996 A
5549631 Bonutti Aug 1996 A
5549679 Kuslich Aug 1996 A
5550172 Regula et al. Aug 1996 A
5554191 Lahille et al. Sep 1996 A
5556430 Gendler Sep 1996 A
5556431 Buttner-Janz Sep 1996 A
5569305 Bonutti Oct 1996 A
5569308 Sottosanti Oct 1996 A
5570983 Hollander Nov 1996 A
5571109 Bertagnoli Nov 1996 A
5571190 Ulrich et al. Nov 1996 A
5571192 Schoenhoeffer Nov 1996 A
5577517 Bonutti Nov 1996 A
5578034 Estes Nov 1996 A
5584862 Bonutti Dec 1996 A
5593409 Michelson Jan 1997 A
5593425 Bonutti et al. Jan 1997 A
5597278 Peterkort Jan 1997 A
5601553 Trebing et al. Feb 1997 A
5601554 Howland et al. Feb 1997 A
5607428 Lin Mar 1997 A
5607474 Athanasiou et al. Mar 1997 A
5609635 Michelson Mar 1997 A
5609636 Kohrs et al. Mar 1997 A
5609637 Biedermann et al. Mar 1997 A
5616144 Yapp et al. Apr 1997 A
5620448 Puddu Apr 1997 A
5624462 Bonutti Apr 1997 A
5642960 Salice Jul 1997 A
5645596 Kim et al. Jul 1997 A
5645606 Oehy et al. Jul 1997 A
5653708 Howland Aug 1997 A
5662710 Bonutti Sep 1997 A
5667520 Bonutti Sep 1997 A
5669909 Zdeblick et al. Sep 1997 A
5674296 Bryan et al. Oct 1997 A
5676666 Oxland et al. Oct 1997 A
5676699 Gogolewski et al. Oct 1997 A
5681311 Foley et al. Oct 1997 A
5683216 Erbes Nov 1997 A
5683394 Rinner Nov 1997 A
5683463 Godefroy et al. Nov 1997 A
5685826 Bonutti Nov 1997 A
5694951 Bonutti Dec 1997 A
5702449 McKay Dec 1997 A
5702451 Biedermann et al. Dec 1997 A
5702453 Rabbe et al. Dec 1997 A
5702455 Saggar Dec 1997 A
5707390 Bonutti Jan 1998 A
5713899 Marnay et al. Feb 1998 A
5713900 Benzel et al. Feb 1998 A
5716325 Bonutti Feb 1998 A
5725531 Shapiro Mar 1998 A
5725588 Errico et al. Mar 1998 A
5728159 Stroever et al. Mar 1998 A
5733306 Bonutti Mar 1998 A
5735853 Olerud Apr 1998 A
5735875 Bonutti et al. Apr 1998 A
5735905 Parr Apr 1998 A
5755796 Ibo et al. May 1998 A
5755798 Papavero et al. May 1998 A
5766251 Koshino Jun 1998 A
5766252 Henry et al. Jun 1998 A
5766253 Brosnahan, III Jun 1998 A
5772661 Michelson Jun 1998 A
5776194 Mikol et al. Jul 1998 A
5776196 Matsuzaki et al. Jul 1998 A
5776197 Rabbe et al. Jul 1998 A
5776198 Rabbe et al. Jul 1998 A
5776199 Michelson Jul 1998 A
5778804 Read Jul 1998 A
5782915 Stone Jul 1998 A
5782919 Zdeblick et al. Jul 1998 A
5785710 Michelson Jul 1998 A
5800433 Benzel et al. Sep 1998 A
5827318 Bonutti Oct 1998 A
5836948 Zucherman et al. Nov 1998 A
5845645 Bonutti Dec 1998 A
5860973 Michelson Jan 1999 A
5860997 Bonutti Jan 1999 A
5861041 Tienboon Jan 1999 A
5865845 Thalgott Feb 1999 A
5865849 Stone Feb 1999 A
5872915 Dykes et al. Feb 1999 A
5876402 Errico et al. Mar 1999 A
5876452 Athanasiou et al. Mar 1999 A
5879389 Koshino Mar 1999 A
5885299 Winslow et al. Mar 1999 A
5888196 Bonutti Mar 1999 A
5888219 Bonutti Mar 1999 A
5888222 Coates et al. Mar 1999 A
5888223 Bray, Jr. Mar 1999 A
5888224 Beckers et al. Mar 1999 A
5888227 Cottle Mar 1999 A
5895426 Scarborough et al. Apr 1999 A
5899939 Boyce et al. May 1999 A
5902303 Eckhof et al. May 1999 A
5902338 Stone May 1999 A
5904683 Pohndorf et al. May 1999 A
5904719 Errico et al. May 1999 A
5906616 Pavlov et al. May 1999 A
5910315 Stevenson et al. Jun 1999 A
5911758 Oehy et al. Jun 1999 A
5920312 Wagner et al. Jul 1999 A
5922027 Stone Jul 1999 A
5928267 Bonutti et al. Jul 1999 A
5931838 Vito Aug 1999 A
5935131 Bonutti Aug 1999 A
5941900 Bonutti Aug 1999 A
5944755 Stone Aug 1999 A
5951558 Fiz Sep 1999 A
5954722 Bono Sep 1999 A
5954739 Bonutti Sep 1999 A
5958314 Draenert Sep 1999 A
5964807 Gan et al. Oct 1999 A
5968098 Winslow Oct 1999 A
5972031 Biedermann et al. Oct 1999 A
5972368 McKay Oct 1999 A
5976141 Haag et al. Nov 1999 A
5976187 Richelsoph Nov 1999 A
5980522 Koros et al. Nov 1999 A
5981828 Nelson et al. Nov 1999 A
5984967 Zdeblick et al. Nov 1999 A
5989289 Coates et al. Nov 1999 A
6001099 Huebner Dec 1999 A
6008433 Stone Dec 1999 A
6010525 Bonutti et al. Jan 2000 A
6013853 Athanasiou et al. Jan 2000 A
6017305 Bonutti Jan 2000 A
6017345 Richelsoph Jan 2000 A
6025538 Yaccarino et al. Feb 2000 A
6033405 Winslow et al. Mar 2000 A
6033438 Bianchi et al. Mar 2000 A
6039762 McKay Mar 2000 A
6042596 Bonutti Mar 2000 A
6045579 Hochschuler et al. Apr 2000 A
6045580 Scarborough et al. Apr 2000 A
6056749 Kuslich May 2000 A
6059817 Bonutti et al. May 2000 A
6066175 Henderson et al. May 2000 A
6077292 Bonutti Jun 2000 A
6080158 Lin Jun 2000 A
6080193 Hochschuler et al. Jun 2000 A
6086593 Bonutti Jul 2000 A
6086614 Mumme Jul 2000 A
6090998 Grooms et al. Jul 2000 A
6096080 Nicholson et al. Aug 2000 A
6096081 Grivas et al. Aug 2000 A
6099531 Bonutti Aug 2000 A
6102928 Bonutti Aug 2000 A
6110482 Khouri et al. Aug 2000 A
6113637 Gill et al. Sep 2000 A
6113638 Williams et al. Sep 2000 A
6120503 Michelson Sep 2000 A
6123731 Boyce et al. Sep 2000 A
6129763 Chauvin et al. Oct 2000 A
6132472 Bonutti Oct 2000 A
6136001 Michelson Oct 2000 A
6139550 Michelson Oct 2000 A
RE36974 Bonutti Nov 2000 E
6143030 Schroder Nov 2000 A
6143033 Paul et al. Nov 2000 A
6146421 Gordon et al. Nov 2000 A
6156070 Incavo et al. Dec 2000 A
6159215 Urbahns et al. Dec 2000 A
6159234 Bonutti et al. Dec 2000 A
6171236 Bonutti Jan 2001 B1
6171299 Bonutti Jan 2001 B1
6174313 Bonutti Jan 2001 B1
6187023 Bonutti Feb 2001 B1
6193721 Michelson Feb 2001 B1
6193756 Studer et al. Feb 2001 B1
6193757 Foley et al. Feb 2001 B1
6200347 Anderson et al. Mar 2001 B1
6203565 Bonutti et al. Mar 2001 B1
6206922 Zdeblick et al. Mar 2001 B1
6217617 Bonutti Apr 2001 B1
6224602 Hayes May 2001 B1
6231592 Bonutti et al. May 2001 B1
6231610 Geisler May 2001 B1
6235033 Brace et al. May 2001 B1
6235034 Bray May 2001 B1
6235059 Benezech et al. May 2001 B1
6241731 Fiz Jun 2001 B1
6241769 Nicholson et al. Jun 2001 B1
6245108 Biscup Jun 2001 B1
6258089 Campbell et al. Jul 2001 B1
6258125 Paul et al. Jul 2001 B1
6261291 Talaber et al. Jul 2001 B1
6261586 McKay Jul 2001 B1
6264695 Stoy Jul 2001 B1
6270528 McKay Aug 2001 B1
6277136 Bonutti Aug 2001 B1
6287325 Bonutti Sep 2001 B1
6306139 Fuentes Oct 2001 B1
6322562 Wolter Nov 2001 B1
6331179 Freid et al. Dec 2001 B1
6342074 Simpson Jan 2002 B1
6358266 Bonutti Mar 2002 B1
6361565 Bonutti Mar 2002 B1
6364880 Michelson Apr 2002 B1
6368343 Bonutti et al. Apr 2002 B1
6371986 Bagby Apr 2002 B1
6371987 Weiland et al. Apr 2002 B1
6371988 Pafford et al. Apr 2002 B1
6371989 Chauvin et al. Apr 2002 B1
6375681 Truscott Apr 2002 B1
6383186 Michelson May 2002 B1
6387130 Stone et al. May 2002 B1
6395031 Foley et al. May 2002 B1
6398811 McKay Jun 2002 B1
6413259 Lyons et al. Jul 2002 B1
6423063 Bonutti Jul 2002 B1
6432106 Fraser Aug 2002 B1
6443987 Bryan Sep 2002 B1
6447512 Landry et al. Sep 2002 B1
6447516 Bonutti Sep 2002 B1
6447546 Bramlet et al. Sep 2002 B1
6451042 Bonutti Sep 2002 B1
6454771 Michelson Sep 2002 B1
6458158 Anderson et al. Oct 2002 B1
6461359 Tribus et al. Oct 2002 B1
6464713 Bonutti Oct 2002 B2
6468289 Bonutti Oct 2002 B1
6468293 Bonutti et al. Oct 2002 B2
6468311 Boyd et al. Oct 2002 B2
6471724 Zdeblick et al. Oct 2002 B2
6475230 Bonutti et al. Nov 2002 B1
6482233 Aebi et al. Nov 2002 B1
6500195 Bonutti Dec 2002 B2
6503250 Paul Jan 2003 B2
6503267 Bonutti et al. Jan 2003 B2
6503277 Bonutti Jan 2003 B2
6511509 Ford et al. Jan 2003 B1
6524312 Landry et al. Feb 2003 B2
6543455 Bonutti Apr 2003 B2
6558387 Errico et al. May 2003 B2
6558423 Michelson May 2003 B1
6558424 Thalgott May 2003 B2
6562073 Foley May 2003 B2
6565605 Goble et al. May 2003 B2
6569187 Bonutti et al. May 2003 B1
6569201 Moumene et al. May 2003 B2
6575975 Brace et al. Jun 2003 B2
6575982 Bonutti Jun 2003 B1
6576017 Foley et al. Jun 2003 B2
6579290 Hardcastle et al. Jun 2003 B1
6585750 Bonutti et al. Jul 2003 B2
6592531 Bonutti Jul 2003 B2
6592609 Bonutti Jul 2003 B1
6592624 Fraser et al. Jul 2003 B1
6602291 Ray et al. Aug 2003 B1
6605090 Trieu et al. Aug 2003 B1
6607534 Bonutti Aug 2003 B2
6616671 Landry et al. Sep 2003 B2
6620163 Michelson Sep 2003 B1
6620181 Bonutti Sep 2003 B1
6623486 Weaver et al. Sep 2003 B1
6629998 Lin Oct 2003 B1
6630000 Bonutti Oct 2003 B1
6635073 Bonutti Oct 2003 B2
6638309 Bonutti Oct 2003 B2
6638310 Lin et al. Oct 2003 B2
6645212 Goldhahn et al. Nov 2003 B2
6652525 Assaker et al. Nov 2003 B1
6652532 Bonutti Nov 2003 B2
6656181 Dixon et al. Dec 2003 B2
6679887 Nicholson et al. Jan 2004 B2
6682561 Songer et al. Jan 2004 B2
6682563 Scharf Jan 2004 B2
6695846 Richelsoph et al. Feb 2004 B2
6695851 Zdeblick et al. Feb 2004 B2
6702821 Bonutti Mar 2004 B2
6702856 Bonutti Mar 2004 B2
6706067 Shimp et al. Mar 2004 B2
6709456 Langberg et al. Mar 2004 B2
6712818 Michelson Mar 2004 B1
6719803 Bonutti Apr 2004 B2
6730127 Michelson May 2004 B2
6736850 Davis May 2004 B2
6736853 Bonutti May 2004 B2
6743257 Castro Jun 2004 B2
6761738 Boyd Jul 2004 B1
6761739 Shepard Jul 2004 B2
6770078 Bonutti Aug 2004 B2
6770096 Bolger et al. Aug 2004 B2
6776938 Bonutti Aug 2004 B2
6786909 Dransfeld et al. Sep 2004 B1
6800092 Williams et al. Oct 2004 B1
6800093 Nicholson et al. Oct 2004 B2
6805714 Sutcliffe Oct 2004 B2
6808537 Michelson Oct 2004 B2
6824564 Crozet Nov 2004 B2
6833006 Foley et al. Dec 2004 B2
6835198 Bonutti Dec 2004 B2
6837905 Lieberman Jan 2005 B1
6849093 Michelson Feb 2005 B2
6855167 Shimp et al. Feb 2005 B2
6855168 Crozet Feb 2005 B2
6860885 Bonutti Mar 2005 B2
6860904 Bonutti Mar 2005 B2
6863673 Gerbec et al. Mar 2005 B2
6872915 Koga et al. Mar 2005 B2
6884242 Lehuec et al. Apr 2005 B2
6890334 Brace et al. May 2005 B2
6896701 Boyd et al. May 2005 B2
6899735 Coates et al. May 2005 B2
6902578 Anderson et al. Jun 2005 B1
6905517 Bonutti Jun 2005 B2
6908466 Bonutti et al. Jun 2005 B1
6916320 Michelson Jul 2005 B2
6923756 Sudakov et al. Aug 2005 B2
6932835 Bonutti et al. Aug 2005 B2
6953477 Berry Oct 2005 B2
6962606 Michelson Nov 2005 B2
6964664 Freid et al. Nov 2005 B2
6964687 Bernard et al. Nov 2005 B1
6972019 Michelson Dec 2005 B2
6972035 Michelson Dec 2005 B2
6974479 Trieu Dec 2005 B2
6984234 Bray Jan 2006 B2
6989029 Bonutti Jan 2006 B2
6990982 Bonutti Jan 2006 B1
7001385 Bonutti Feb 2006 B2
7001432 Keller et al. Feb 2006 B2
7018412 Ferreira et al. Mar 2006 B2
7018416 Hanson et al. Mar 2006 B2
7033394 Michelson Apr 2006 B2
7041135 Michelson May 2006 B2
7044968 Yaccarino et al. May 2006 B1
7044972 Mathys et al. May 2006 B2
7048755 Bonutti et al. May 2006 B2
7048765 Grooms et al. May 2006 B1
7060097 Fraser et al. Jun 2006 B2
7066961 Michelson Jun 2006 B2
7070557 Bonutti Jul 2006 B2
7077864 Byrd et al. Jul 2006 B2
7087073 Bonutti Aug 2006 B2
7094251 Bonutti et al. Aug 2006 B2
7104996 Bonutti Sep 2006 B2
7112223 Davis Sep 2006 B2
7119999 Fraser et al. Sep 2006 B2
7114500 Bonutti Oct 2006 B2
7128753 Bonutti et al. Oct 2006 B1
7134437 Bonutti Nov 2006 B2
7135024 Cook et al. Nov 2006 B2
7135043 Nakahara et al. Nov 2006 B2
7137984 Michelson Nov 2006 B2
7147652 Bonutti et al. Dec 2006 B2
7147665 Bryan et al. Dec 2006 B1
7163561 Michelson Jan 2007 B2
7172627 Fiere et al. Feb 2007 B2
7172672 Silverbrook Feb 2007 B2
7208013 Bonutti Apr 2007 B1
7217273 Bonutti May 2007 B2
7217290 Bonutti May 2007 B2
7226452 Zubok et al. Jun 2007 B2
7226482 Messerli et al. Jun 2007 B2
7232463 Falahee Jun 2007 B2
7232464 Mathieu et al. Jun 2007 B2
7238203 Bagga et al. Jul 2007 B2
7255698 Michelson Aug 2007 B2
7276082 Zdeblick et al. Oct 2007 B2
7311719 Bonutti Dec 2007 B2
7320708 Bernstein Jan 2008 B1
7323011 Shepard et al. Jan 2008 B2
7329263 Bonutti et al. Feb 2008 B2
7398623 Martel et al. Jul 2008 B2
7429266 Bonutti et al. Sep 2008 B2
7442209 Michelson Oct 2008 B2
7462200 Bonutti Dec 2008 B2
7481831 Bonutti Jan 2009 B2
7485145 Purcell Feb 2009 B2
7491237 Randall et al. Feb 2009 B2
7510557 Bonutti Mar 2009 B1
7534265 Boyd et al. May 2009 B1
7594932 Aferzon et al. Sep 2009 B2
7601173 Messerli et al. Oct 2009 B2
7608107 Michelson Oct 2009 B2
7615054 Bonutti Nov 2009 B1
7618456 Mathieu et al. Nov 2009 B2
7621960 Boyd et al. Nov 2009 B2
7625380 Drewry et al. Dec 2009 B2
7635390 Bonutti Dec 2009 B1
7637951 Michelson Dec 2009 B2
7655042 Foley et al. Feb 2010 B2
7704279 Moskowitz et al. Apr 2010 B2
7708740 Bonutti May 2010 B1
7708741 Bonutti May 2010 B1
7727283 Bonutti Jun 2010 B2
7749229 Bonutti Jul 2010 B1
7776067 Jackson Aug 2010 B2
7780670 Bonutti Aug 2010 B2
7806896 Bonutti Oct 2010 B1
7806897 Bonutti Oct 2010 B1
7828852 Bonutti Nov 2010 B2
7833271 Mitchell et al. Nov 2010 B2
7837736 Bonutti Nov 2010 B2
7846188 Moskowitz et al. Dec 2010 B2
7846207 Lechmann et al. Dec 2010 B2
7854750 Bonutti et al. Dec 2010 B2
7862616 Lechmann et al. Jan 2011 B2
7875076 Mathieu et al. Jan 2011 B2
7879072 Bonutti et al. Feb 2011 B2
7892236 Bonutti Feb 2011 B1
7892261 Bonutti Feb 2011 B2
7896880 Bonutti Mar 2011 B2
7931690 Bonutti Apr 2011 B1
7942903 Moskowitz et al. May 2011 B2
7959635 Bonutti Jun 2011 B1
7985255 Bray et al. Jul 2011 B2
7993403 Foley et al. Aug 2011 B2
8062303 Berry et al. Nov 2011 B2
8100976 Bray et al. Jan 2012 B2
8105383 Michelson Jan 2012 B2
8128669 Bonutti Mar 2012 B2
8128700 Delurio et al. Mar 2012 B2
8133229 Bonutti Mar 2012 B1
8162977 Bonutti et al. Apr 2012 B2
8182532 Anderson et al. May 2012 B2
8187329 Theofilos May 2012 B2
8211148 Zhang et al. Jul 2012 B2
8273127 Jones et al. Sep 2012 B2
8308804 Krueger Nov 2012 B2
8328872 Duffield et al. Dec 2012 B2
8343220 Michelson Jan 2013 B2
8343222 Cope Jan 2013 B2
8353913 Moskowitz et al. Jan 2013 B2
8382768 Berry et al. Feb 2013 B2
8425522 Bonutti Apr 2013 B2
8425607 Waugh et al. Apr 2013 B2
8444696 Michelson May 2013 B2
8465546 Jodaitis et al. Jun 2013 B2
8486066 Bonutti Jul 2013 B2
8540774 Kueenzi et al. Sep 2013 B2
8545567 Krueger Oct 2013 B1
8613772 Bray et al. Dec 2013 B2
8623030 Bonutti Jan 2014 B2
8632552 Bonutti Jan 2014 B2
8641726 Bonutti Feb 2014 B2
8641743 Michelson Feb 2014 B2
8641768 Duffield et al. Feb 2014 B2
8690944 Bonutti Apr 2014 B2
8739797 Bonutti Jun 2014 B2
8747439 Bonutti et al. Jun 2014 B2
8764831 Lechmann et al. Jul 2014 B2
8784495 Bonutti Jul 2014 B2
8795363 Bonutti Aug 2014 B2
8814902 Bonutti Aug 2014 B2
8834490 Bonutti Sep 2014 B2
8840629 Bonutti Sep 2014 B2
8845699 Bonutti Sep 2014 B2
8858557 Bonutti Oct 2014 B2
8956417 Bonutti Feb 2015 B2
9005295 Kueenzi et al. Apr 2015 B2
9044322 Bonutti Jun 2015 B2
9044341 Bonutti Jun 2015 B2
9050152 Bonutti Jun 2015 B2
9149365 Lawson et al. Oct 2015 B2
9192419 McDonough et al. Nov 2015 B2
9220604 McDonough et al. Dec 2015 B2
9241809 McDonough et al. Jan 2016 B2
9364340 Lawson et al. Jun 2016 B2
9414935 McDonough et al. Aug 2016 B2
9463097 Lechmann et al. Oct 2016 B2
9744049 Kueenzi et al. Aug 2017 B2
9848992 McDonough et al. Dec 2017 B2
9867718 Schmura et al. Jan 2018 B2
9883950 Bertagnoli et al. Feb 2018 B2
10010432 Schmura et al. Jul 2018 B2
10130492 Schmura et al. Nov 2018 B2
10492922 Mathieu et al. Dec 2019 B2
10507117 McDonough et al. Dec 2019 B2
10702394 Schmura et al. Jul 2020 B2
20010001129 McKay et al. May 2001 A1
20010005796 Zdeblick et al. Jun 2001 A1
20010010021 Boyd et al. Jul 2001 A1
20010016777 Biscup Aug 2001 A1
20010020186 Boyce et al. Sep 2001 A1
20010023371 Bonutti Sep 2001 A1
20010031254 Bianchi et al. Oct 2001 A1
20010039456 Boyer et al. Nov 2001 A1
20010041941 Boyer et al. Nov 2001 A1
20010049560 Paul et al. Dec 2001 A1
20020004683 Michelson Jan 2002 A1
20020010511 Michelson Jan 2002 A1
20020016595 Michelson Feb 2002 A1
20020022843 Michelson Feb 2002 A1
20020029055 Bonutti Mar 2002 A1
20020029084 Paul et al. Mar 2002 A1
20020040246 Bonutti Apr 2002 A1
20020049497 Mason Apr 2002 A1
20020065517 Paul May 2002 A1
20020082597 Fraser Jun 2002 A1
20020082603 Dixon et al. Jun 2002 A1
20020082803 Schiffbauer Jun 2002 A1
20020091447 Shimp et al. Jul 2002 A1
20020095155 Michelson Jul 2002 A1
20020095160 Bonutti Jul 2002 A1
20020099376 Michelson Jul 2002 A1
20020099378 Michelson Jul 2002 A1
20020099444 Boyd et al. Jul 2002 A1
20020106393 Bianchi et al. Aug 2002 A1
20020107571 Foley Aug 2002 A1
20020111680 Michelson Aug 2002 A1
20020128712 Michelson Sep 2002 A1
20020128717 Alfaro et al. Sep 2002 A1
20020147450 Lehuec et al. Oct 2002 A1
20020161444 Choi et al. Oct 2002 A1
20020169508 Songer et al. Nov 2002 A1
20020193880 Fraser Dec 2002 A1
20030004576 Thalgott Jan 2003 A1
20030009147 Bonutti Jan 2003 A1
20030023260 Bonutti Jan 2003 A1
20030040798 Michelson Feb 2003 A1
20030045939 Casutt Mar 2003 A1
20030065396 Michelson Apr 2003 A1
20030078666 Ralph et al. Apr 2003 A1
20030078668 Michelson Apr 2003 A1
20030125739 Bagga et al. Jul 2003 A1
20030135277 Bryan et al. Jul 2003 A1
20030149484 Michelson Aug 2003 A1
20030153975 Byrd et al. Aug 2003 A1
20030167092 Foley Sep 2003 A1
20030181981 Lemaire Sep 2003 A1
20030195626 Huppert Oct 2003 A1
20030195632 Foley et al. Oct 2003 A1
20030199881 Bonutti Oct 2003 A1
20030199983 Michelson Oct 2003 A1
20040010287 Bonutti Jan 2004 A1
20040078078 Shepard Apr 2004 A1
20040078081 Ferree Apr 2004 A1
20040092929 Zindrick May 2004 A1
20040093084 Michelson May 2004 A1
20040097794 Bonutti May 2004 A1
20040098016 Bonutti May 2004 A1
20040102848 Michelson May 2004 A1
20040102850 Shepard May 2004 A1
20040126407 Falahee Jul 2004 A1
20040133278 Marino et al. Jul 2004 A1
20040138689 Bonutti Jul 2004 A1
20040138690 Bonutti Jul 2004 A1
20040143270 Zucherman et al. Jul 2004 A1
20040143285 Bonutti Jul 2004 A1
20040172033 Bonutti Sep 2004 A1
20040176853 Sennett et al. Sep 2004 A1
20040193181 Bonutti Sep 2004 A1
20040199254 Louis et al. Oct 2004 A1
20040210219 Bray Oct 2004 A1
20040210310 Trieu Oct 2004 A1
20040210314 Michelson Oct 2004 A1
20040220668 Eisermann et al. Nov 2004 A1
20040230223 Bonutti et al. Nov 2004 A1
20040249377 Kaes et al. Dec 2004 A1
20040254644 Taylor Dec 2004 A1
20040260427 Wimsatt Dec 2004 A1
20050015149 Michelson Jan 2005 A1
20050021042 Marnay et al. Jan 2005 A1
20050021143 Keller Jan 2005 A1
20050033433 Michelson Feb 2005 A1
20050049593 Duong et al. Mar 2005 A1
20050049595 Suh et al. Mar 2005 A1
20050065605 Jackson Mar 2005 A1
20050065607 Gross Mar 2005 A1
20050065608 Michelson Mar 2005 A1
20050071008 Kirschman Mar 2005 A1
20050085913 Fraser et al. Apr 2005 A1
20050101960 Fiere et al. May 2005 A1
20050113918 Messerli et al. May 2005 A1
20050113920 Foley et al. May 2005 A1
20050125029 Bernard et al. Jun 2005 A1
20050149193 Zucherman et al. Jul 2005 A1
20050154391 Doherty et al. Jul 2005 A1
20050159813 Molz, IV Jul 2005 A1
20050159818 Blain Jul 2005 A1
20050159819 McCormack et al. Jul 2005 A1
20050171606 Michelson Aug 2005 A1
20050171607 Michelson Aug 2005 A1
20050177236 Mathieu et al. Aug 2005 A1
20050216059 Bonutti et al. Sep 2005 A1
20050222683 Berry Oct 2005 A1
20050240267 Randall et al. Oct 2005 A1
20050240271 Zubok et al. Oct 2005 A1
20050261767 Anderson et al. Nov 2005 A1
20050267534 Bonutti et al. Dec 2005 A1
20050283236 Razian Dec 2005 A1
20060020342 Ferree et al. Jan 2006 A1
20060030851 Bray et al. Feb 2006 A1
20060079901 Ryan et al. Apr 2006 A1
20060079961 Michelson Apr 2006 A1
20060085071 Lechmann et al. Apr 2006 A1
20060089717 Krishna et al. Apr 2006 A1
20060129240 Lessar et al. Jun 2006 A1
20060136063 Zeegers Jun 2006 A1
20060142765 Dixon et al. Jun 2006 A9
20060167495 Bonutti et al. Jul 2006 A1
20060195189 Link et al. Aug 2006 A1
20060195193 Bloemer Aug 2006 A1
20060206208 Michelson Sep 2006 A1
20060229725 Lechmann et al. Oct 2006 A1
20060235470 Bonutti et al. Oct 2006 A1
20060265009 Bonutti Nov 2006 A1
20070088358 Yuan et al. Apr 2007 A1
20070088441 Duggal et al. Apr 2007 A1
20070093819 Albert Apr 2007 A1
20070106384 Bray et al. May 2007 A1
20070118125 Orbay et al. May 2007 A1
20070123987 Bernstein May 2007 A1
20070162130 Rashbaum et al. Jul 2007 A1
20070168032 Muhanna et al. Jul 2007 A1
20070177236 Kijima et al. Aug 2007 A1
20070208378 Bonutti et al. Sep 2007 A1
20070219365 Joyce et al. Sep 2007 A1
20070219635 Mathieu et al. Sep 2007 A1
20070225806 Squires et al. Sep 2007 A1
20070225812 Gill Sep 2007 A1
20070250167 Bray et al. Oct 2007 A1
20070270961 Ferguson Nov 2007 A1
20080033440 Moskowitz et al. Feb 2008 A1
20080039873 Bonutti et al. Feb 2008 A1
20080047567 Bonutti Feb 2008 A1
20080051890 Waugh et al. Feb 2008 A1
20080058822 Bonutti Mar 2008 A1
20080065140 Bonutti Mar 2008 A1
20080082169 Gittings et al. Apr 2008 A1
20080103519 Bonutti May 2008 A1
20080108916 Bonutti et al. May 2008 A1
20080114399 Bonutti May 2008 A1
20080119933 Aebi et al. May 2008 A1
20080132949 Aferzon et al. Jun 2008 A1
20080133013 Duggal et al. Jun 2008 A1
20080140116 Bonutti Jun 2008 A1
20080140117 Bonutti et al. Jun 2008 A1
20080161925 Brittan et al. Jul 2008 A1
20080177307 Moskowitz et al. Jul 2008 A1
20080188940 Cohen et al. Aug 2008 A1
20080200984 Jodaitis et al. Aug 2008 A1
20080206297 Roeder Aug 2008 A1
20080234822 Govil et al. Sep 2008 A1
20080249569 Waugh et al. Oct 2008 A1
20080249575 Waugh Oct 2008 A1
20080249622 Gray Oct 2008 A1
20080249625 Waugh Oct 2008 A1
20080269806 Zhang et al. Oct 2008 A1
20080275455 Berry et al. Nov 2008 A1
20080281425 Thalgott et al. Nov 2008 A1
20080306596 Jones et al. Dec 2008 A1
20080312742 Abernathie Dec 2008 A1
20090076608 Gordon Mar 2009 A1
20090088849 Armstrong et al. Apr 2009 A1
20090099601 Aferzon et al. Apr 2009 A1
20090099661 Bhattacharya et al. Apr 2009 A1
20090105830 Jones et al. Apr 2009 A1
20090132051 Moskowitz et al. May 2009 A1
20090192613 Wing et al. Jul 2009 A1
20090210062 Thalgott et al. Aug 2009 A1
20090210064 Lechmann et al. Aug 2009 A1
20090234455 Moskowitz et al. Sep 2009 A1
20090326580 Anderson et al. Dec 2009 A1
20100016901 Robinson Jan 2010 A1
20100125334 Krueger May 2010 A1
20100145459 McDonough et al. Jun 2010 A1
20100145460 McDonough et al. Jun 2010 A1
20100305704 Messerli et al. Dec 2010 A1
20100312346 Kueenzi et al. Dec 2010 A1
20110087327 Lechmann et al. Apr 2011 A1
20110118843 Mathieu et al. May 2011 A1
20110137417 Lee Jun 2011 A1
20110166660 Laurence Jul 2011 A1
20110230971 Donner et al. Sep 2011 A1
20110238184 Zdeblick et al. Sep 2011 A1
20110295371 Moskowitz et al. Dec 2011 A1
20120010623 Bonutti Jan 2012 A1
20120101581 Mathieu et al. Apr 2012 A1
20120109309 Mathieu et al. May 2012 A1
20120109310 Mathieu et al. May 2012 A1
20120109311 Mathieu et al. May 2012 A1
20120109312 Mathieu et al. May 2012 A1
20120109313 Mathieu et al. May 2012 A1
20120179259 McDonough et al. Jul 2012 A1
20120197401 Duncan et al. Aug 2012 A1
20120215226 Bonutti Aug 2012 A1
20120215233 Bonutti et al. Aug 2012 A1
20120221017 Bonutti Aug 2012 A1
20120323330 Kueenzi et al. Dec 2012 A1
20130073046 Zaveloff et al. Mar 2013 A1
20130073047 Laskowitz et al. Mar 2013 A1
20130166032 McDonough et al. Jun 2013 A1
20130173013 Anderson et al. Jul 2013 A1
20130226185 Bonutti Aug 2013 A1
20130237989 Bonutti Sep 2013 A1
20130268008 McDonough et al. Oct 2013 A1
20130289729 Bonutti Oct 2013 A1
20140018854 Bonutti et al. Jan 2014 A1
20140025110 Bonutti et al. Jan 2014 A1
20140025111 Bonutti et al. Jan 2014 A1
20140025112 Bonutti Jan 2014 A1
20140025168 Klimek et al. Jan 2014 A1
20140100663 Messerli et al. Apr 2014 A1
20140121777 Rosen et al. May 2014 A1
20140180422 Klimek et al. Jun 2014 A1
20140214166 Theofilos Jul 2014 A1
20140228963 Bonutti Aug 2014 A1
20140243985 Lechmann et al. Aug 2014 A1
20140257380 Bonutti Sep 2014 A1
20140257487 Lawson et al. Sep 2014 A1
20140277456 Kirschman Sep 2014 A1
20140309560 Bonutti Oct 2014 A1
20140336770 Petersheim et al. Nov 2014 A1
20140343573 Bonutti Nov 2014 A1
20140371859 Petersheim et al. Dec 2014 A1
20150257893 Mazzuca et al. Sep 2015 A1
20150320571 Lechmann et al. Nov 2015 A1
20160113774 Schmura Apr 2016 A1
20180000607 Schmura et al. Jan 2018 A1
20180271672 Schmura et al. Sep 2018 A1
20200281740 Schmura et al. Sep 2020 A1
Foreign Referenced Citations (123)
Number Date Country
2004232317 Nov 2004 AU
2111598 Jun 1994 CA
2317791 Aug 1999 CA
2821678 Nov 1979 DE
3042003 Jul 1982 DE
3933459 Apr 1991 DE
4242889 Jun 1994 DE
4409392 Sep 1995 DE
4423257 Jan 1996 DE
19504867 Feb 1996 DE
29913200 Sep 1999 DE
202004020209 May 2006 DE
0179695 Apr 1986 EP
0298233 Jan 1989 EP
0302719 Feb 1989 EP
0505634 Sep 1992 EP
0577178 Jan 1994 EP
0639351 Feb 1995 EP
0425542 Mar 1995 EP
0504346 May 1995 EP
0517030 Sep 1996 EP
0897697 Feb 1999 EP
0605799 Apr 1999 EP
0641547 May 1999 EP
0966930 Dec 1999 EP
0968692 Jan 2000 EP
0974319 Jan 2000 EP
1124512 Aug 2001 EP
1194087 Apr 2002 EP
1393689 Mar 2004 EP
1402836 Mar 2004 EP
1033941 Aug 2004 EP
0906065 Sep 2004 EP
1051133 Oct 2004 EP
1103236 Aug 2006 EP
1459711 Jul 2007 EP
1847240 Oct 2007 EP
2552659 Apr 1985 FR
2697996 May 1994 FR
2700947 Aug 1994 FR
2703580 Oct 1994 FR
2727003 May 1996 FR
2747034 Oct 1997 FR
2753368 Mar 1998 FR
0157668 Jan 1921 GB
0265592 Aug 1927 GB
2148122 May 1985 GB
2207607 Feb 1989 GB
2239482 Jul 1991 GB
2266246 Oct 1993 GB
03-505416 Nov 1991 JP
09-280219 Oct 1997 JP
2006-513752 Apr 2006 JP
2229271 May 2004 RU
2244527 Jan 2005 RU
2307625 Oct 2007 RU
1465040 Mar 1989 SU
8803417 May 1988 WO
8810100 Dec 1988 WO
8909035 Oct 1989 WO
9000037 Jan 1990 WO
9201428 Feb 1992 WO
9206005 Apr 1992 WO
9301771 Feb 1993 WO
9508964 Apr 1995 WO
9515133 Jun 1995 WO
9520370 Aug 1995 WO
9521053 Aug 1995 WO
9526164 Oct 1995 WO
9639988 Dec 1996 WO
9640015 Dec 1996 WO
9720526 Jun 1997 WO
9723175 Jul 1997 WO
9725941 Jul 1997 WO
9725945 Jul 1997 WO
9737620 Oct 1997 WO
9739693 Oct 1997 WO
9817208 Apr 1998 WO
9817209 Apr 1998 WO
9855052 Dec 1998 WO
9856319 Dec 1998 WO
9856433 Dec 1998 WO
9909896 Mar 1999 WO
9909903 Mar 1999 WO
9927864 Jun 1999 WO
9929271 Jun 1999 WO
9932055 Jul 1999 WO
9938461 Aug 1999 WO
9938463 Aug 1999 WO
9956675 Nov 1999 WO
9963914 Dec 1999 WO
0007527 Feb 2000 WO
0007528 Feb 2000 WO
0025706 May 2000 WO
0030568 Jun 2000 WO
0040177 Jul 2000 WO
0041654 Jul 2000 WO
0059412 Oct 2000 WO
0066044 Nov 2000 WO
0066045 Nov 2000 WO
0074607 Dec 2000 WO
0103615 Jan 2001 WO
0108611 Feb 2001 WO
0156497 Aug 2001 WO
0162190 Aug 2001 WO
0180785 Nov 2001 WO
0193742 Dec 2001 WO
0195837 Dec 2001 WO
2004069106 Aug 2004 WO
2005007040 Jan 2005 WO
2005020861 Mar 2005 WO
2006138500 Dec 2006 WO
0798288 Aug 2007 WO
2008014258 Jan 2008 WO
2008082473 Jul 2008 WO
2008102174 Aug 2008 WO
2008124355 Oct 2008 WO
2008154326 Dec 2008 WO
2009064644 May 2009 WO
2009158319 Dec 2009 WO
2010054181 May 2010 WO
2010054208 May 2010 WO
2012088238 Jun 2012 WO
Non-Patent Literature Citations (117)
Entry
Kozak, Anterior Lumbar Fusion Options, No. 300, Clin. Orth. Rel. Res., 45-51, 1994.
Kroppenstedt, Radiological Comparison of Instrumented Posterior Lumbar Interbody Fusion with One or Two Closed-3ox Plasmapore Coated Titanium Cages, 33(19) Spine, 2083-2088, Sep. 2008.
Lund, Interbody Cage Stabilisation in the Lumbar Spine, 80-8(2) J Bone Joint Surg., 351-359, Mar. 1998.
Lyu, Degradability of Polymers for Implantable Biomedical Devices, 10, Int. J. Mol. Sci., 4033-4065, 2009.
Malca, Cervical Interbody Xenografl with Plate Fixation, 21 (6) Spine, 685-690, Mar. 1996.
Marcolongo et al., “Trends in Materials for Spine Surgery”, Comprehensive Biomaterials, Biomaterials and Clinical Use, 6.610, Oct. 2011, 21 pages.
McAfee, Minimally Invasive Anterior Retroperitoneal Approach to the Lumbar Spine, 21(13) Spine, 1476-1484, 1998.
Memorandum Opinion, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, May 7, 2013, 33 pages.
Nasca, Newer Lumbar Interbody Fusion Techniques, 22(2) J. Surg. Ortho. Advances, 113-117, 2013.
Order, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, May 15, 2013, 4 pages.
Order, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, May 7, 2013, 7 pages.
Parlov et al., “Anterior Lumbar Interbody Fusion with Threaded Fusion Cages and Autologous Grafts”, Eur. Spine J., 1000, 9, 224-229.
PCB Evolution Surgical Technique Guide 2010.
PCT International Application No. PCT/US2009/063529: International Search Report and Written Opinion dated Apr. 14, 2010, 19 pages.
Plaintiffs' Responses and Objections to Defendant Globus Medical, Inc. 's First Set of Interrogatories (Nos. 1-11), United States District Court for the District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Nov. 14, 2011, 18 pages.
Plaintiffs' Supplemental Responses and Objections to Defendant Globus Medical Inc.'s Interrogatories Nos. 6-10 and Second Supplemental Responses and Objections to Interrogatory No. 5, United States District Court for the District of Delaware, Civil Action No. 11-cv-652-LPS, Sep. 1, 2012, 12 pages.
Polysciences Inc. Info Sheet 2012.
Porex Website, http://www.porex.com/technologies/materials/porous-plastics, Porous Elastic Materials, accessed Aug. 21, 2015, 2 pages.
Redacted version of “Defendant Globus Medical, Inc.'s Answering Brief in Opposition to Plaintiffs Motion for Summary Judgment of No Anticipation by the Kozak and Michelson References”, Mar. 12, 2013, 233 pages.
Redacted version of “Opening Brief in Support of Plaintiffs' Motion for Summary Judgment of No Anticipation by the Kozak and Michelson References”, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Feb. 13, 2013, 66 pages.
Redacted version of “Plaintiffs Reply Brief in Support of Plaintiffs Motion for Summary Judgment of No Anticipation by the Kozak and Michelson References”, Mar. 21, 2013, 11 pages.
Reply Report of Dr. Domagoj Carie Regarding the Invalidity of U.S. Patent No. 7,846,207, U.S. Pat. No. 7,862,616 and U.S. Pat. No. 7,875,076, In the United States District Court for the District of Delaware,Civil Action No. 1 :11-cv-00652-LPS, Jan. 4, 2013, 81 pages.
Russian Patent Application No. 2011-1122797: Decision to Grant dated Oct. 9, 2013, 20 page.
Samandouras, A New Anterior Cervical Instrumentation System Combinin an Intradiscal Cage with an Integrated plate, 26(10) Spine, 1188-1192, 2001.
Schleicher et al., “Biomechanical Comparison of Two Different Concepts for Stand alone anterior lumbar interbody fusion”, Eur Spine J , Sep. 2008, 17, 1757-1765.
Scholz et al., “A New Stand-Alone Cervical Anterior Interbody Fusion Device”, Spine, Jan. 2009, 34(2), 6 pages.
Second Expert Report of Wilson C. Hayes, Ph.D., United States District Court for the District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Dec. 14, 2012, 22 pages.
Sonntag, Controversy in Spine Care, Is Fusion Necessary Arter Anterior Cervical Discectomy 21(9) Spine, 1111-1113, May 1996.
Spruit et al., “The in Vitro Stabilizing Effect of Polyether-etherketone Cages Versus a Titanium Cage of similar design for anterior lumbar interbody fusion”, Eur. Spine J., Aug. 2005, 14 752-758.
Synthes History and Evolution of LBIF Brochure; Nov. 2015, 30 pages.
Synthes Spine Cervical Stand-Alone Devices Presentation Brochure; 2010, 40 pages.
Synthes Spine, “CorticoCancellous ACF Spacer. An allograft space or anterior fusion of the cervical spine,” brochure, Musculoskeletal Transplant Foundationm, 2003, 6 pages.
Synthes Spine, “SynFix-LR System, Instruments and Implants for Stand-Alone Anterior Lumbar Interbody Fusion(ALIF)”, Technique Guide dated 2008, pp. 2-40, Published by Synthes Spine (USA).
Synthes Spine, “Zero-P Instruments and Implants. Zero-Profile Anterior Cervical Interbody Fusion (ACIF) device”, Technique Guide dated 2008, pp. 2-32, Published by Synthes Spine (USA).
Takahama, A New Improved Biodegradable Tracheal Prosthesis Using Hydroxy Apatite and Barbon Fiber 35(3) ASAIO Trans, 291-293, Jul.-Sep. 1989.
Tamariz, Biodegradation of Medical Purpose Polymeric Materials and Their Impacton Biocompatibility, Chapter 1, Intech-bio degradation Life of Science, 2013; 28 pages.
Tan, A Modified Technique of Anterior Lumbar Fusion with Femoral Cortical Allograft, 5(3) J. Ortho. Surg. Tech., 83-93, 1990.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 10, 2013, 114 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv- 00652-LPS, Jun. 11, 2013, 98 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 12, 2013, 75 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 13, 2013, 94 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 14, 2013, 26 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 3, 2013, 98 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 4, 2013, 110 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 5, 2013, 99 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 6, 2013, 80 pages.
Trial Transcript, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 7, 2013, 97 pages.
U.S. Appl. No. 11/199,599: Amendment/Request for Reconsideration after Non-Final Rejection, dated Sep. 29, 2009, 30 pages.
U.S. Appl. No. 11/199,599: Appeal Brief, dated Apr. 15, 2010, 51 pages.
U.S. Appl. No. 11/199,599: Final Rejection, dated Dec. 24, 2009, 21 pages.
U.S. Appl. No. 11/199,599: Interview Summary included Draft Amendments, dated Sep. 24, 2009, 16 pages.
U.S. Appl. No. 11/199,599: Non-Final Rejection, dated Apr. 1, 2009, 20 pages.
U.S. Appl. No. 11/199,599: Preliminary Amendment, dated Jan. 9, 2008, 11 pages.
U.S. Provisional Application Filed on Dec. 19, 1997 by David J. Urbahns et al., entitled “Insertion Instruments and Method for Delivering a Vertebral Body Spacer”, U.S. Appl. No. 60/068,205.
U.S. Provisional Application Filed on Jan. 15, 1998 by David J. Urbahns et al., entitled “Insertion Instruments and Method for Delivering a Vertebral Body Spacer”, U.S. Appl. No. 60/071,527.
U.S. Provisional Application Filed on Nov. 16, 2007 by Thomas Kueenzi et al., entitled “Low profile intervertebral implant”, U.S. Appl. No. 60/988,661.
U.S. Provisional Application Filed on Sep. 16, 2011 by Jillian Zaveloff et al., entitled “Multi-Piece Intervertebral Implants”, U.S. Appl. No. 61/535,726.
Verbiest H., La Chirurgie Anterieure et Laterale du Rachis Cervical,16(S2) Neurochirurgie 1-212; 1970 (w/Translation).
Wang, Determination of Cortical Bone Porosity and Pore Size Distribution using a Low Field Pulsed NMR Approach, J. Orthop Res., Mar; 21(2):312-9 Mar. 2003.
Wang, Increased Fusion Rates with Cervical Plating for Two-Level Anterior Cervical Discectomy and Fusion, 25(1) Spine 41-45, Jan. 2000.
Watters, Anterior Cervical Discectomy with and without Fusion, 19(20) Spine 2343-2347 Oct. 1994.
Weiner, Spinde Update Lumbar Interbody Cages, 23(5) Spine, 634-640, Mar. 1998.
White, Relief of Pain by Anterior Cervical-Spine Fusion for Spondylosis, 55-A(3) J. Bone Joint Surg. 525-534, Apr. 1973.
Whitesides, Lateral Approach to the Upper Cervical Spine for Anterior Fusion, vol. 59, South Med J, 879-883, Aug. 1966.
Wilson, Anterior Cervical Discetomy without Bone Graft, 47(4) J. Neurosurg. 551-555, Oct. 1977.
Written Opinion, dated Mar. 20, 2009, for PCT International Application No. PCT/US08/82473, filed Nov. 5, 2008.
Younger, Morbidity at Bone Graft Donor Sites, 3(3) J. Orth. Trauma, 192-195, 1989.
AcroMed Carbon Fiber Interbody Fusion Devices; Jan. 1998, 8 pages.
Al-Sanabani, Application of Calcium Phosphate Materials in Dentistry, vol. 2013, Int. J. Biomaterials, 1-12, 2013.
Appendix 1 to Joint Claim Construction Brief,A- Synthes' Exhibits A-9, In the United States District Court for the District of Delaware Civil Action No. 1 :11-cv-00652-LPS, Jun. 8, 2012, 192 pages.
Appendix 2 to Joint Claim Construction Brief, Globus' Exhibits A-F, In the United States District Court for the District of Delaware Civil Action No. 1 :11-cv-00652-LPS, Jun. 8, 2012, 146 pages.
Appendix 3 to Joint Claim Construction Brief, Exhibits A-C, In the United States District Court for the District of Delaware Civil Action No. 1:11-cv-00652-LPS, Jun. 8, 2012, 38 pages.
Bailey, Stabilzation of the Cervical Spine by Anterior Fusion, 42-A(4), J. Bone Joint Surg., 565-594, Jun. 1960.
Banward, Iliac Crest Bone Gian Harvest Donor Site Morbidity, 20(9) Spine 1055-1060, May 1995.
Benezech, L'arthrodese Cervicale Par Voie Anterieure a L'Aide de Plaque-Cage P.C.B., 9(1) Rach is 1, 47, 1997 (w/Translation).
Brantigan 1/F Cage for PLIF Surgical Technique Guide; Apr. 1991, 22 pages.
Brantigan, A Carbon Fiber Implant to Aid Interbody Lumbar Fusion, 16(6S) Spine S277-S282, Jul. 1991.
Brantigan, Compression Strength of Donor Bone for Posterior Lumbar Interbody Fusion, 18(9) Spine 1213-1221, 1993.
Brantigan, Interbody Lumbar Fusion Using a Carbon Fiber Cage Implant Versus Allograft Bone, 19(13) Spine 1436-1444, 1994.
Brantigan, Intervertebral Fusion,Chapter 27, posterior Lumbar Interbody Fusion Using the Lumber Interbody Fusion Cage , 437-466, Jul. 2006.
Brantigan, Pseudarthrosis Rate After Allograft Posterior Lumbar Interbody Fusion with Pedicle Screw and Plate Fixation , 19(11) Spine 1270-1280, Jun. 1994.
Bray, “InterPlate Spine Fusion Device: Subsidence Control Without Stress Shielding”, Orthopaedic Product News, Sep./Oct. 2006, pp. 22-25.
Bray, InterPlate Vertebral Body Replacement; website accessed May 4, 2017; http://rsbspine.com/Products.aspx, 2 pages.
Carbon Fiber Composite Ramps for Lumbar Interbody Fusion; Apr. 1997, 2 pages.
Chadwick et al., “Radiolucent Structural Materials for Medical Application”, www.mddionline.com/print/238,, Jun. 2001, accessed Jul. 31, 2012, 9 pages.
Cloward, Gas-Sterilized Cadaver Bone Grafts for Spinal Fusion Operations, 5(1) Spine 4-10 Jan./Feb. 1980.
Cloward, The Anterior Approach for Removal of Ruptured Cervical Disks, vol. 15, J. Neuro. 302-617, 1958.
Dabrowski, Highly Porous Titanium Scaffolds for Orthopaedic Applications, J. Biomed Mater. Res. B. Appl. Biomat. Oct.;95(1):53-61, 2010.
Delecrin, Morbidite du Prelevement de Greffons osseuz au Niveau des Cretes Iliaques dans la Chirurgie Du Rachis; Justification du recours aux substituts osseuz, 13(3) Rachis 167-174, 2001 (w/Translation).
DePuy Motech Surgical Titanium Mesh Brochure; 1998, 13 pages.
Dereymaeker, Nouvelle Cure neuro-Chirurgicale de discopathies Cervicales, 2 Neurochimrgie 226-234; 1956 (w/Translation).
Dickman, Internal Fixation and Fusion of the Lumbar Spine Using Threaded Interbody Cages, 13(3) Barrow Quarterly 1997); http://www.thebarrow.org/Education And Resources/Barrow Quarterly/204837.
Enker, Interbody Fusion and Instrumentation, No. 300 Clin. Orth. Rel. Res. 90-101, Mar. 1994.
Expert Report of Dr. Domagoj Carie Regarding the Invalidity of U.S. Pat. No. 7,846,207, U.S. Pat. No. 7,862,616 and U.S. Pat. No. 7,875,076, In the United States District Court for the District of Delaware, Civil Action No. 1:11 -cv-00652-LPS, Nov. 5, 2012, 149 pages.
Expert Report of John F. Hall, M.D., United States District Court for the District of Delaware,Civil Action No.: 1 :11-cv-00652-LPS, Dec. 14, 2012, 27 pages.
Expert Report of Paul Ducheyne, Ph D. Concerning Patent Validity, United States District Court District of Delaware, Civil Action No. 1 :11-cv-00652-LPS,Dec. 13, 2012, 155pages.
Expert Report of Richard J. Gering, Ph.D., CLP In the United States District Court for the District of Delaware, Civil Action No. 1:11-CV-00652-LPS, Dec. 14, 2012, 39 pages.
Fassio, Use of Cervical Plate-Cage PCB and Results for Anterior Fusion in Cervical Disk Syndrome, 15(6) Rachis 355-361, Dec. 2003 Translation.
Fowler, Complications Associated with Harvesting Autogenous Iliac Bone Graft, 24(12) Am. J. Ortho. 895- 904, Dec. 1995.
Fuentes, Les Complications de la Chirurgie Par Voie Anterieure du Rachis Cervical, 8(1) Rachis 3 -14, 1996 (w/Translation).
Germay, Resultats Cliniques de Ceramiques D'hydroxyapatite dans les arthrodeses Inter-somatiques du Rachis Dervical Par Voie Anterieure. Etude Retrospective a Propose de 67 cas. 13(3), Rachis 189-195, 2001 (w/Translation).
Graham, Lateral Extracavitary Approach to the Thoracic and Thoracolumbar Spine, 20(7) Orthopedics, 605-610, Jul. 1997.
Gunatillake, Biodegradable Synthetic Polymers for Tissue Engineering, vol. 5, Eur. Cells Materials, 1-16, 2003.
Huttner, Spinal Stenosis & Posterior Lumbar Interbody Fusion, No. 193, Clinical Ortho ReL Res. 103-114, Mar. 1985.
International Patent Application No. PCT/CH2003/00089, International Search Report, dated Dec. 3, 2003, 3 pages.
International Patent Application No. PCT /US2011/066421; International Search Report and Written Opinion dated Jun. 14, 2012, 31 pages.
International Search Report, completed Aug. 16, 2007 for International Application No. PCT/US2007/005098, filed Feb. 27, 2007, 5 pgs.
International Search Report, dated Mar. 20, 2009, for PCT International Application No. PCT/US08/82473, filed Nov. 5, 2008.
Japanese Patent Application No. 2011-534926: Office Action dated Oct. 30, 2013, 7 pages.
Japanese Patent Application No. 2011-534928: Office Action dated Sep. 30, 2013, 11 pages.
Joint Claim Construction Brief, In the United States District Court for the District of Delaware, Civil Action No. 1:11-,v-00652-LPS, Jun. 14, 2012, 97 pages.
Jonbergen et al., “Anterior Cervicallnterbody fusion with a titanium box cage: Early radiological assessment of fusion and subsidence”. The Spine Journal 5, Jul. 2005, 645-649.
Jost, Compressive Strength of Interbody Cages in the Lumbar Spine: the Effect of Cage Shape, Posterior Instrumentation and Bone Density, 7 Eur. Spine J. 132-141, 1998.
Jury Trial Demanded, In the United States District Court for the District of Delaware, Case No. 1:11-cv-00652-LPS, filed Jul. 22, 2011,8 pages.
Jury Verdict Form, United States District Court District of Delaware, Civil Action No. 1:11-cv-00652-LPS, Jun. 14, 2013, 20 pages.
Kastner, Advanced X-Ray Tomographic Methods for Quantitative Charecterisation of Barbon Fibre Reinforced Polymers, 4th Annual Intern. Symposium on NDT in Aerospace, 2012, 9 pages.
Khan, Chapter 2—Implantable Medical Devices, Focal Controlled Drug Delivery, Advances in Delivery Science and Technology, A.J. Domb and W. Khan (eds.) 2014.
Related Publications (1)
Number Date Country
20200015980 A1 Jan 2020 US
Provisional Applications (2)
Number Date Country
61139920 Dec 2008 US
61112441 Nov 2008 US
Continuations (3)
Number Date Country
Parent 15217198 Jul 2016 US
Child 16558670 US
Parent 14689614 Apr 2015 US
Child 15217198 US
Parent 12613866 Nov 2009 US
Child 14689614 US