Zero-profile expandable intervertebral spacer devices for distraction and spinal fusion and a universal tool for their placement and expansion

Information

  • Patent Grant
  • 10016284
  • Patent Number
    10,016,284
  • Date Filed
    Tuesday, November 21, 2017
    6 years ago
  • Date Issued
    Tuesday, July 10, 2018
    5 years ago
Abstract
A unique, universal Zero-Profile Expandable Intervertebral Spacer (ZP-EIS) device for fusion and distraction throughout the entire spine is provided which can be inserted via anterior, anterolateral, lateral, far lateral or posterior surgical approaches dependent on the need and preference. Multiple ZP-EIS embodiments each with unique mechanisms of calibrated expansion are provided. Two of these embodiments incorporate bi-directional fixating transvertebral (BDFT) screws and five other embodiments do not incorporate BDFT screws. A tool for implantation into the intervertebral device and calibrated device expansion is also disclosed.
Description
FIELD OF DISCLOSURE

The present invention relates to unique, universal Zero-Profile Expandable Intervertebral Spacer (ZP-EIS) devices for fusion and distraction throughout the entire spine which can be inserted via anterior, anterolateral, lateral, far lateral or posterior surgical approaches dependent on the need and preference. Multiple ZP-EIS embodiments each with unique mechanisms of calibrated expansion are presented. Two of these embodiments incorporate bi-directional fixating transvertebral (BDFT) screws and five other embodiments do not incorporate BDFT screws. A universal tool for their intervertebral placement and device expansion is also described.


The ZP-EIS embodiments with incorporated BDFT screws can be used as stand-alone intervertebral devices. These exemplary embodiments combine the dual functions of intervertebral calibrated expandable distraction, and segmental vertebral body spinal fusion. These embodiments can include bone cavities which can be filled with bone fusion material(s) to promote segmental spinal fusion.


The calibrated ZP-EIS embodiments without incorporated BDFT screws can also be used as stand-alone devices for calibrated intervertebral expansion and segmental vertebral body fusion. The exemplary devices can include bone cavities which can be filled with bone fusion material. If desirable, the exemplary devices can be supplemented with other forms of screw stabilization.


The exemplary ZP-EIS embodiments, especially those with incorporated BDFT screws, may obviate the need for supplemental pedicle screw fixation in many situations. The exemplary embodiments allow nuanced, fine-tuned incremental and calibrated distraction of the disc space to allow nerve root decompression in a minimally invasive and safe manner, as well as promoting segmental spinal fusion.


In the related applications in the Cross-Reference to Related Applications, Applicants first introduced the terminology “zero-profile” relating to spinal fusion devices. Applicants also have described zero-profile non-expandable and expandable stand-alone intervertebral spinal fusion device embodiments with incorporated BDFT screws. As described in greater detail below, exemplary embodiments of advanced ZP-EIS devices with BDFT screws are provided which have an improved contoured body with tapered edges to more precisely insert into and conform to the biconcave disc space. The present application also provides exemplary embodiments of more advanced ZP-EIS devices without accompanying BDFT screws each with very unique calibrated expandable mechanisms allowing minimally invasive intervertebral expansion, vertebral body distraction and segmental spinal fusion. An exemplary embodiment of a universal tool also is described that can be adapted to implant one or more (e.g., all) of the intervertebral device embodiments herein described into the intervertebral space, and mechanically expand them.


BACKGROUND

The history and evolution of instrumented spinal fusion in the entire human spine has been reviewed in Applicants' copending applications set forth in the Cross-Reference to Related Applications (for example in U.S. Ser. No. 11/536,815, filed on Sep. 29, 2006, and Ser. No. 11/208,644, filed on Aug. 23, 2005). Currently, the majority of spinal fusion techniques are typically supplemented with posterior pedicle screw placement and/or anterior (or lateral) plating. Complications of pedicle screw placement in the spine may include duration of procedure, significant tissue dissection and muscle retraction, misplaced screws with neural and/or vascular injury, excessive blood loss, need for transfusions, prolonged recovery, incomplete return to work, and excess rigidity leading to adjacent segmental disease requiring further fusions and re-operations. Recent advances in pedicle screw fixation including minimally invasive and image-guided technology, and the development of flexible rods, imperfectly may address some but not all of these issues.


Anterior/and or lateral plating because of the plates' elevated profiles can be complicated by esophageal, or major vascular injury. The zero-profile devices described herein with reference to the exemplary embodiments avoid these complications.


Current non-expandable intervertebral spacers must be manufactured with different heights, and the most appropriate sized spacer is selected for insertion. In these situations, the vertebral bodies are forcefully distracted to allow placement of an imperfectly fitting spacer. These are most often supplemented with pedicle screw and/or or plate fixation.


SUMMARY

The exemplary embodiments described herein can allow a more precisely tailored complimentary fit between spacer and disc space, allowing the spacer to expand gradually in a calibrated manner, and to incrementally achieve the precise fit and degree of distraction desirable. Thus, the process according to the present invention can be more individualized for every patient and apply less forceful disruption to the intervertebral space thereby improving safety and enhancing effectiveness of the placement of intervertebral spacers. The exemplary embodiments are zero-profile, and thus, do not damage or indent overlying soft tissue or vascular structures further decreasing morbidity.


Herein described are exemplary embodiments of multiple ZP-EIS devices which combine in a single construct the dual functions of calibrated expandable intervertebral spacer distraction maintaining disc space height, and simultaneous segmental vertebral body spinal fusion.


To achieve safe, effective zero-profile and minimally invasive segmental spinal fusion, the exemplary embodiments of the present invention use of novel zero-profile calibrated expandable spacer (ZP-EIS) devices with or without BDFT screws which can be strategically inserted into the intervertebral disc space via anterior, anterio-lateral, lateral, far lateral or posterior surgical approaches.


In Applicants' applications set forth in the Cross-Reference to Related Applications, exemplary embodiments are directed to expanding intervertebral spacers which incorporated BDFT screws. One of these embodiments includes two sliding triangular bases to house two screws driven in two opposing directions which can be expanded in two simultaneous directions, height and depth, by turning a built-in screw adjuster. This was facilitated by a combined external drill/screw guide/cage expander to further enhance trajectory precision and to simultaneously expand the screw box in height and depth to custom-fit the individual disc space height. Applicants' copending applications set forth in the Cross-Reference to Related Applications further describe an exemplary embodiment of a universal tool and the adaptability of the tool, for example, to exemplary embodiments of sliding boxes, as well as to the exemplary embodiments described herein, including those with and without BDFT screws.


The evolved zero-profile expandable intervertebral spacer (ZP-EIS) embodiments with incorporated BDFT screws presented herein are more finely tapered and contoured to more easily allow insertion and conformation to the biconcave disc space.


The exemplary embodiments of ZP-EIS devices without incorporated BDFT screws described herein have the ability to incrementally and uniformly separate and distract the vertebral bodies. Each embodiment has a very unique mechanically designed mechanism of incremental expansion. The devices are all designed with cavities for bone fusion giving the surgeon the option to use these as stand-alone fusion/spacer devices or as supplemental devices if other screw fixation is deemed necessary. These innovations represent a continued evolution of our concept of zero-profile calibrated expandable intervertebral distraction/fusion spacers described in Applicants' applications, for example, as set forth in the Cross-Reference to Related Applications.


In the exemplary ZP-EIS embodiments with incorporated BDFT screws, a rostral-directed screw is passed through one built-in screw guide of the device which then is inserted and screwed into the superior vertebral body. Next, a caudally directed screw is passed through an adjacent built-in screw guide, which then is inserted and screwed into the inferior vertebral body. One of many novels features of this design is the built-in prescribed angles of the integral screw guides which allow the transvertebral penetration into the vertebral bodies. This is a truly amazing feat accomplished particularly in the posterior or lateral/far lateral lumbar spine considering the small anatomically restricted work zone within which to work, which is very narrowly prescribed by obtuse angulations between screw and intervertebral bone surfaces, and by nerve root, facet joint and pedicle. Applicants' applications set forth in the Cross-Reference to Related Applications included an angled screw driver specifically designed to fit these devices if a straight screw driver impedes screw placement. Hence, these external tools can provide the means in any circumstance to accomplish precision screw trajectory.


The exemplary zero-profile embodiments of the present invention can provide enhanced individualized intervertebral conformation, and multiple methods of finely calibrating intervertebral expansion, and vertebral body distraction further reducing morbidity and enabling more minimally invasive surgical methods of vertebral body distraction and segmental fusion compared to Applicants' applications set forth in the Cross-Reference to Related Applications.


The exemplary embodiments of box casings can include perforations to allow bone packing for fusion. These exemplary devices can prevent subsidence. In an exemplary embodiment, both the inside of the denuded intervertebral space, and the devices can be packed with autologous or allograft bone, BMP, DBX or similar osteoconductive material.


The zero-profile EIS embodiments, in particular those with incorporated BDFT screws, can provide as strong or stronger segmental fusion as pedicle screws without the complications arising from pedicle screw placement which include screw misplacement with potential nerve and/or vascular injury, violation of healthy facets, possible pedicle destruction, blood loss, and overly rigid fusions. In the case of the posterior Lumbar spine by placing screws across the intervertebral space from vertebral body to vertebral body, engaging anterior and middle spinal columns, and not the vertebral bodies via the transpediclar route, the healthy facet joints, if they exist, are preserved. Because the exemplary techniques accomplish both anterior and middle column fusion, without rigidly fixating the posterior column, the exemplary embodiments in essence create a flexible fusion. This exemplary devices therefore can provide a flexible fusion device because the preserved posterior facet joints retain their function achieving at least a modicum of mobility and hence a less rigid (i.e. a flexible) fusion.


The very advantage of transpedicular screws which facilitate a strong solid fusion by rigidly engaging all three spinal columns is the same mechanical mechanism whereby complete inflexibility of all columns is incurred thereby leading to increasing rostral and caudal segmental stress which leads to an increased rate of re-operation.


Transvertebral fusion also leads to far less muscle retraction, blood loss, and significant reduction in operating room (O.R.) time. Thus, the complication of pedicular screw pull-out and hence high re-operation rate associated with the conventional flexible fusion pedicle screws/rods is obviated.


Although the exemplary embodiments can be supplemented with transpedicular screws, there would be no absolute need for supplemental pedicle screw fixation with these operative techniques. The expandable spacers without BDFT screws can be supplemented with other screw stabilization if desired.


Because the exemplary embodiments are zero-profile, these devices also obviate the morbidity involved with profiled anterior or lateral plating. Multi-level fusions can be performed with all of the exemplary embodiments described herein.


Currently failed anterior lumbar arthroplasties are salvaged by combined anterior and posterior fusions. The exemplary ZP-EIS embodiments with incorporated BDFT screws could be utilized as a one-step salvage operation for failed/extruded anteriorly placed lumbar artificial discs obviating the above salvage procedure which has far greater morbidity.





BRIEF DESCRIPTION OF DRAWINGS

These and other aspects and features of embodiments of the present invention will be better understood after a reading of the following detailed description, together with the attached drawings, wherein:



FIGS. 1A-1B illustrate an exemplary embodiment (Embodiment I) of a non-tapered sliding base ZP-EIS device with incorporated BDFT screws in sagittal-oblique (FIG. 1A), and exploded (FIG. 1B) views.



FIGS. 2A-2D illustrate an exemplary embodiment (Embodiment II) of a tapered sliding base ZP-EIS device with incorporated BDFT screws in closed (FIG. 2A), semi-expanded (FIG. 2B), and fully expanded (FIG. 2C) positions, and in an exploded view (FIG. 2D).



FIGS. 3A-3D illustrate an exemplary embodiment (Embodiment III) of a scissors jack driven ZP-EIS device without incorporated BDFT screws in closed (FIG. 3A), semi-expanded (FIG. 3B), and fully expanded (FIG. 3C) positions, and in exploded view (FIG. 3D).



FIGS. 4A-4C illustrate an exemplary embodiment (Embodiment IV) of a tapered thread driven ZP-EIS device without incorporated BDFT screws in closed (FIG. 4A), semi-expanded/fully expanded positions (FIG. 4B), and in cross-sectional view (FIG. 4C).



FIGS. 5A-5D illustrate an exemplary embodiment (Embodiment V) of a dry anchor driven ZP-EIS device without incorporated BDFT screws in closed (FIG. 5A), semi-expanded (FIG. 5B), and fully expanded (FIG. 5C) positions, and in an exploded view (FIG. 5D).



FIGS. 6A-6D illustrate an exemplary embodiment (Embodiment VI) of a modified wedge driven ZP-EIS device without incorporated BDFT screws in closed (FIG. 6A), semi-expanded (FIG. 6B), and fully expanded (FIG. 6C) positions, and in an exploded view (FIG. 6D).



FIGS. 7A-7D illustrate an exemplary embodiment (Embodiment VII) of a worm drive ZP-EIS device without incorporated BDFT screws in closed (FIG. 7A), semi-expanded (FIG. 7B), and fully expanded (FIG. 7C) positions, and in an exploded view (FIG. 7D).



FIGS. 7E(i) and 7E(ii) illustrate top, perspective views of an intervertebral cage construct according to an exemplary embodiment of the invention.



FIG. 8A-8C illustrate a positioning tool/screw guide/box expander in oblique perspective (FIG. 8A), lateral (FIG. 8B), and exploded (FIG. 8C) views according to an exemplary embodiment, which is shown coupled to the exemplary non-tapered sliding base ZP-EIS device illustrated in FIGS. 1A-1B.



FIGS. 8D(i) and 8D(ii) illustrate superior oblique perspective views of the positioning tool/drill guide/box expander component, according to an exemplary embodiment, which may be optionally used for the exemplary embodiments illustrated in FIGS. 1A-1B and 2A-2D.



FIGS. 8E-8G illustrate sequential steps Step I (FIG. 8E), step II (FIG. 8F), and step III (FIG. 8G)) of the positioning tool/screw guide/box expander assembly according to an exemplary embodiment.



FIGS. 8H-8I illustrate three-dimensional views of positioning tools, according to exemplary embodiments, for impaction and placement of two transvertebral screws, for example, of the exemplary embodiments illustrated in FIGS. 1A-1B and 2A-2D.



FIGS. 8J-8K illustrate the insertion of expandable Lumbar bi-directional screw box with two BDFT screws into the Lumbar spine in oblique (FIG. 8J) and lateral (FIG. 8K) views.





DETAILED DESCRIPTION OF THE INVENTION

The present invention now is described more fully hereinafter with reference to the accompanying drawings, in which embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.


1. The Medical Device


Referring now to the drawings, FIGS. 1A-8K illustrate exemplary embodiments of ZP-EIS devices that can solve the above described problems and others in the spine by insertion of the ZP-EIS devices into the denuded intervertebral disc space according to the features illustrated in the exemplary embodiments (I-VII).



FIGS. 1A-1B illustrate three-dimensional views of a ZP-EIS device 100 according to embodiment I, with two BDFT screws 101, 102.


The expandable ZP-EIS device 100 includes of top and bottom triangular sliding bases 103, 104 (FIGS. 1A-1B). The superior and inferior segments of the height/depth adjusting screw 105 are integrated and connected to the two separate top and bottom triangular bases 103, 104, respectively. By turning this adjusting (rotation) screw 105 back and forth, i.e. clock-wise, and counter clockwise, the sliding rails 106 of the top triangular base 103 (FIGS. 1A-1B) slide up and down the rail inserts 107 on the bottom triangular base 104 (FIGS. 1A-1B). This action will simultaneously alter the intervertebral height and depth of the device 100 allowing individualized custom fitting of the ZPEIS device 100 conforming to the dimensions of the disc space.


A transvertebral screw 101 penetrates the top base 103, and a transvertebral screw 102 traverses the bottom base 104 of the screw box (device 100). The two screws 101, 102 traverse the screw box 100 in opposing directions, bi-directionally. The external edges of the triangular bases 103, 104 in contact with vertebral body surfaces can include ridges 107, which facilitates the ZP-EIS device 100 incorporation into and fusion with the superior and inferior vertebral bodies (FIGS. 1A-1B). Both top and bottom ZP-EIS bases 103, 104 can be perforated with holes 108 to allow bone placement for fusion. In an exemplary embodiment, the entire construct, furthermore, can be hollow to allow filling with bone filling material. Hence, the exemplary device functions as both an intervertebral bone fusion spacer and bi-directional transvertebral screw fusion device.



FIGS. 2A-2D illustrate a ZP-EIS device 200 according to exemplary embodiment II. This exemplary device 200 incorporates BDFT screws and employs a fusion wedge mechanism of expansion.


The device 200 includes a contoured top 208 and bottom 206 housing which have tapered edges and are coupled to each other by a diagonal dovetail interface 204 which constrains the components 208, 206 to translate linearly relative to each other. The linear translation causes a vertical separation of the top 208 and bottom 206 housing surfaces which are parallel to each other. The position is secured and adjusted by a threaded rotation screw 220 coupled to a nut 224 and a retaining ring 222 and passed through the top 208 and bottom 206 housing pieces. As the threaded rotation screw 220 is rotated further into the nut 224, the housing pieces 208, 206 expand vertically.


By turning this adjusting (rotation) screw 220 back and forth i.e. clock-wise, and counter clockwise, the sliding rails 210 of the top housing piece 208 slide up and down the rail inserts 212 on the bottom housing piece 206. This action will simultaneously alter the intervertebral height and depth of the device 200 allowing individualized custom fitting of the ZP-EIS conforming to the dimensions of the disc space. A transvertebral screw 101 penetrates the top housing piece 208, and a transvertebral screw 102 traverses the bottom housing piece 206 of the device 200. The two screws 101, 102 traverse the device 200 in opposing directions, bi-directionally. The external edges of the housing pieces in contact with vertebral body surfaces include ridges 216. This facilitates the ZP-EIS device 200 incorporation into and fusion with the superior and inferior vertebral bodies (FIGS. 2A-2D). Both top and bottom ZP-EIS housing bases 208, 206 are perforated with holes 214 to allow bone placement for fusion. The entire device 200, furthermore, can be hollow to allow bone filling. Hence, the exemplary device 200 functions as both an intervertebral bone fusion spacer and bi-directional transvertebral screw fusion device.


The device 200 can include a tapered edge 226 (shown for example in FIGS. 2A-2B), which allows easier introduction and insertion of the device 200 into the disc space.



FIGS. 3A-3D illustrate a ZP-EIS device 300 according to exemplary embodiment III, which employs a scissor jack expansion mechanism.


In this embodiment the top 302 and bottom 304 housing are attached by one internal linkage arm 310, and two external linkage arms 308. The device 300 can include indentations 306 on each lateral side close to the top of the device 300 to mate with the prongs of the universal tool (for example, as described in FIGS. 8A-8I) to assist in grasping, inserting and impacting the device 300. A lead screw or rotation screw 314 is mounted in the bottom housing 304 and secured in place with a retaining ring 316. When the lead (rotation) screw 314 is rotated by an external tool (for example, as described in FIGS. 8A-8I), the screw 314 causes the linear displacement of the separation block 318 which is hinged to the internal linkage 310. The horizontal motion of the separation block causes the top 302 and bottom 304 housing pieces to separate vertically. The separation distance depends on the amount of rotation of the lead (rotation) screw 314, and is limited by the freedom of the separation block 318 to move within the bottom housing 304. The exemplary embodiment can include a plurality of pins, such as eight pins 320, 322, 324, to secure the external linkage arms 308 to the top 302 and bottom 304 housing units and to the separation block 318. The top housing 302 and bottom housing 304 can include one or more cavities 312 for bone incorporation/fusion.



FIGS. 4A-4C illustrate a ZP-EIS device 400 according to exemplary embodiment IV, which employs a tapered thread mechanism of expansion.


The exemplary device 400 can include a top housing 402 and bottom housing 404, which can be attached by one or more pins, such as two pins 412, which allow rotation of the top housing 402 and bottom housing 404 relative to each other about the axis of the pins 412. The top housing 402 and/o bottom housing 404 can include indentations 406 on their lateral sides close to the top of the device 400 to mate with the prongs of a tool or universal tool (e.g., prongs 806 in FIGS. 8A-8I) to assist in grasping, inserting and impacting the device 400. The bottom housing 404 can include a mount for the rotation screw 410 (FIG. 4C), which can control the relative angular orientation of the two housing pieces 402, 404. When the screw 410 is rotated by an external tool (e.g. as shown in FIGS. 8A-8I), the screw 410 engages the internal teeth/ridges 414 of the top housing 402 and acts as a wedge to rotate the top housing 402 away from the bottom housing 404. More particularly, the device 400 can include a sloped ridge 414, as exemplary illustrated in FIG. 4C. When the rotating screw 410 advances, the top housing 402 rotates further and further away from the bottom housing 404. The device 400 can include one or more bone cavities in the top housing 402 and bottom housing 404 for bone fusion.



FIGS. 5A-5D illustrate exemplary embodiments of a ZP-EIS device according to embodiment V, which employs an anchor mechanism of expansion.


The top housing 502 and bottom housing 504 can be coupled or attached by one or more pins, such as two pins 512, which allow rotation of the top housing 502 and bottom housing 504 relative to each other about the axis of the pins 512. The top housing 502 and/or the bottom housing 504 can include indentations 506 on their lateral sides close to the top of the device 500 to mate with the prongs of a tool or universal tool (e.g. see FIGS. 8A-8I) to assist in grasping, inserting and impacting the device 500. The bottom housing 504 can include, for example, a mount for the lead (rotation) screw 510, which can control the relative angular orientation of the two housing pieces 502, 504. The lead (rotation) screw 510 can be secured with one or more retaining rings, such as two retaining rings 518. When the screw 510 is rotated by an external tool (not illustrated)(e.g., such as the tool shown in FIGS. 8A-8I), the screw 510 causes lateral motion of a translation nut 516, which is attached to two linkage bars 514 to a second nut 516 fixed to the bottom housing. A plurality of pins, such as six pins 512, can secure the linkage bars or arms 514 to each other and to translation nuts 516. When the translation nuts 516 move, the linkage bars or arms 514 extend outside of the bottom housing 504, pushing against the top housing 502. Alternatively, in other embodiments, the linkage bars or arms 514 can be replaced by a solid material such as spring steel which can bend to produce the same effect. The device 500 can include one or more bone cavities that can be incorporated into the top housing 502 and the bottom housing 504 for bone fusion.



FIGS. 6A-6D illustrate exemplary embodiments of a ZP-EIS device 600 according to embodiment VI which employs a modified wedge expansion mechanism.


The device 600 includes a top housing 602 and a bottom housing 604 that can be attached or coupled by one or more pins, such as two pins 612, which allow rotation of the top housing 602 and the bottom housing 604 relative to each other about the axis of the pins 612. The top housing 602 and/or the bottom housing 604 can include indentations 606 on their lateral sides close to the top of the device 600 to mate with the prongs of a tool, such as prongs 806 of the universal tool shown in FIGS. 8A-8I, to assist in grasping, inserting and impacting the device 600. The bottom housing 604 can include a mount for the lead (rotation) screw 610, which can control the relative angular orientation of the two housing pieces 602, 604. The lead (rotation) screw 610 can be secured with one or more retaining rings, such as two retaining rings 618. When the screw 610 is rotated by an external tool (e.g., the tool shown in FIGS. 8A-8I), the screw 610 causes lateral motion of a wedge-shaped translation nut 616. The nut 616 engages an inner tapered surface of the top housing 602 and forces the top housing piece 602 to rotate away from the bottom housing 604. The device 600 can include one or more bone cavities 608 incorporated into the top housing 602 and/or bottom housing 604 for bone fusion.



FIGS. 7A-7D illustrate exemplary embodiments of a ZP-EIS device 700 according to embodiment VII, which employs a worm drive (gear) mechanism.


According to the invention, the device 700 includes a worm drive design that allows a user to rotate a worm gear/drive 712 with an external tool (FIG. 8) to control the translation of the top housing 702 relative to the bottom housing 704a, 704b. The worm gear drive 712 engages a spur gear mount 714 which has internal threading for engaging a corresponding part, such as a threaded stud of bolt 720, to couple the spur gear mount 714 to the top housing 702. The top housing 702 can include a plurality of pins, such as four pins 712, which extend into the bottom housing 704a, 704b. These pins 712 prevent the top housing 702 from rotating with the spur gear 714, and constrain the spur gear 714 to translate linearly. The bottom housing 704 can include two halves 704a, 704b to secure the worm drive 710 and spur mount 714 in place. A worm retaining ring and a spur retaining ring 716 also can be used to secure the worm gear drive 710 and the spur gear mount 714. The device 700 can include one or more bone cavities 708 that are incorporated into the top housing 702 and/or bottom housing 704a, 704b for bone fusion. The top housing 702 and/or bottom housing 704a, 704b can include one or more indentations 706 on its lateral sides close to the top of the device 700 to mate with prongs of a tool, such as prongs 806 of the universal tool 800 in FIGS. 8A-8I, to assist in grasping, inserting and impacting the device 700.



FIGS. 8A-8C illustrate three-dimensional views of exemplary embodiments of the external drill/screw guide-box expander universal tool 800 which can be used to assist in both screw trajectory and box expansion of an expandible device, such as the exemplary embodiments of devices illustrated in embodiments I and II, and for device expansion of the devices illustrated in embodiments III-VII. The same universal tool 800 can be utilized for all the exemplary embodiments illustrated in embodiments I-VII. In some embodiments, the external drill/screw guide 850 may not be needed or used for embodiments II-VII. The prongs 806 can be inserted into the indentations (e.g., 202, 306, 406, 506, 606, 706) of the sides of the devices (e.g., 100, 200, 300, 400, 500, 600, 700) according to one or all of the exemplary embodiments illustrated in embodiments I-VII, and implant the device into the intervertebral space. Once implanted and impacted, an Allen key (e.g., as shown in FIG. 8) can be used to expand the device (e.g., 100, 200, 300, 400, 500, 600, 700) by turning the adjustment (rotation) screw (e.g., 105, 220, 314, 410, 510, 610, 710).


The exemplary tool can include, among other things, an Allen key 801, a spring 802, a handle 803, a griper 804 and a screw guide 805. The Allen key 801, when inserted in the insertion 814 and turned, can turn the rotation screws (e.g., 105, 220, 314, 410, 510, 610, 710) of one or all of the exemplary embodiments I-VII. The griper 804 includes griper prongs 806, which insert into grooves 509 of the screw guide 805 and the screw box indentations (e.g., 202) in the exemplary embodiment illustrated in embodiment I (as shown in FIGS. 8A-8D), as well as in similar indentations (e.g., 306, 406, 506, 606, 706) of devices (e.g., 100, 200, 300, 400, 500, 600, 700) illustrated in embodiments II-VII (not shown).


As shown in FIG. 8C, each longitudinal end of the screw box 100 can include a slot or indentation 108 formed adjacent to an edge of an upper surface of the screw box 100 for engaging a protuberant extension of a tool, such as the protuberant extension 807 of the tool 800.



FIG. 8D illustrates a superior oblique view of the screw guide 805 demonstrating insertions 809 for griper prong 086, built-in trajectory guides 811, 812 for insertion of screws 101 and 102, and the Allen key 801. This exemplary embodiment can be limited, for example, to use with the devices of embodiments I and II, which includes BDFT screws.



FIGS. 8E-8G illustrate three-dimensional views of the sequential steps necessary for the external guide assembly. FIG. 8E illustrates the insertion of the Allen key 801 into the handle 803. FIG. 5F illustrates the insertion of the handle 803 through the spring 802 and griper 804. FIG. 8G illustrates insertion of the griper 804 into the screw guide 805. The griper prongs 806 can include medially oriented male protuberant extensions 807 that engage the slot or indentation of a device, such as indentation 108 of device 100, thereby perfectly aligning the prongs 805 of the tool 800 with the device (e.g., 100, 200, 300, 400, 500, 600, 700). This exemplary embodiment can be limited, for example, to use with the devices of embodiments I and II.



FIG. 8H illustrates a three-dimensional view of another exemplary embodiment of a positioning tool 800 for impaction and placement of two transvertebral screws 201, 202 for example, for use with the exemplary embodiments I and II.


With reference again to FIGS. 8A-8K, the screw guide 805 can include insertions 809 for receiving the griper prong 806, built-in trajectory guides 811, 812 for insertion of screws 101 and 102, and the Allen key 801.


The driver assembly 850 can include a screw driver 851, a flexible shaft 852 and a square recess bit 853. This exemplary device can facilitate turning the screws 101, 102 into the bone. The flexible shaft 852 can facilitate the avoidance of spinous processes which might hinder the screw driving if the shaft 852 were straight. The positioning tool 800 can have a rectangular handle, as shown for example in Embodiment I, or a circular handle, as exemplary shown in Embodiment II. This exemplary embodiment can serve to position a screw box within the intervertebral space, and screws 101, 102 within the screw box or device. Once positioned, the screw box or device (e.g., 100, 200, 300, 400, 500, 600, 700) can be impacted by tapping the handle 803 with a mallet (not shown). The griper handle 803 inserts into the screw guide and the screw box or device (e.g., 100, 200, 300, 400, 500, 600, 700), which maintains alignment.


2. The Surgical Method


Exemplary embodiments of a surgical method for utilizing the exemplary devices described herein, will now be described. The procedures can be performed open, microscopic, closed tubular or endoscopic. Fluoroscopic guidance can be used with any of these procedures.


An exemplary embodiment of a ZP-EIS device, as illustrated in embodiments (I-VII), can be inserted into the intervertebral space (for example as shown in FIGS. 8J and 8K) after an adequate discectomy is performed in any disc space throughout the entire spine upon their exposure anteriorly, anterio-laterally, laterally, far laterally or posteriorly.


For exemplary embodiments I-II of the ZP-EIS devices can be inserted into the disc space by a tool or universal tool, such as the universal tool 800 in FIGS. 8A-8I. In operation, the grab prongs of tool 800 can attach to the insets or indentations (e.g., 202, 306, 406, 506, 606, 706) on the side of the devices. Once in the disc space, the rotation screw (e.g., 105, 220, 314, 410, 510, 610, 710) of each embodiment is turned by rotating the Allen key 801 of the tool 800 to expand the device (e.g., 100, 200, 300, 400, 500, 600, 700) to the desirable disc height achieving the desirable intervertebral distraction deemed necessary for the individual patient and disc space. Once this is achieved, BDFT screws 101, 102 are inserted and screwed into the vertebral body above and below securing the device (e.g., 100, 200, 300, 400, 500, 600, 700) to the vertebral bodies with screws 101, 102. Prior to implantation of the device (e.g., 100, 200, 300, 400, 500, 600, 700), the bone cavities of each device can be filled with any type of bone fusion material.


For the exemplary embodiments III-VII, the ZP-EIS device (e.g., 100, 200, 300, 400, 500, 600, 700) can be inserted into the disc space by the same universal tool, such as tool 800. The grabs prongs 806 of the tool 800 attach to the insets or indentations (e.g., 202, 306, 406, 506, 606, 706) on the side of the devices (e.g., 100, 200, 300, 400, 500, 600, 700) on the side of the devices (e.g., 100, 200, 300, 400, 500, 600, 700). Once in the disc space, the rotation screw (e.g., 105, 220, 314, 410, 510, 610, 710) is turned by rotating the Allen key 801 of the tool 800 expanding the device (e.g., 100, 200, 300, 400, 500, 600, 700) to the desirable disc height achieving the desirable intervertebral distraction deemed necessary for the individual patient and disc space. Prior to implantation of the device (e.g., 100, 200, 300, 400, 500, 600, 700) the bone cavities of each device (e.g., 100, 200, 300, 400, 500, 600, 700) can be filled with any type of bone fusion material.


The exemplary embodiments of the present invention may provide effective and safe techniques that overcome the problems associated with current transpedicular and/or plated fusion technology employed for many degenerative stable and unstable spine diseases. These exemplary embodiments may replace much pedicle screw-based and plated based instrumentation in many but not all degenerative spine conditions.


The speed and simplicity of the surgical implantation of the exemplary embodiments of the ZP-EIS devices far exceeds that of conventional pedicle screw technology. Furthermore, the exemplary embodiments of zero-profile devices can provide markedly significantly decreased risk of misguided screw placement, and hence decreased risk of neural and vascular injury, and blood loss. The exemplary embodiments can provide decreased recovery and back to work time. The exemplary embodiments of devices may lead to similar if not equal fusion with significantly less morbidity, and hence overall make the exemplary devices a major advance in the evolution of spinal instrumented technology leading to advances in the care of the spinal patient.


According to the exemplary embodiments, such as the embodiments in embodiments I and II, an intervertebral fusion device is provided that uses a threaded rod mechanism located at the peripheral of the box to control expansion of the device. The device can include a cavity within the walls for placement of bone material for fusion.


In another embodiment, an intervertebral fusion device can include a threaded rod which can obstruct (inhibit) expansion of the device when it is not being turned. The threaded rod can be disposed at the front anterior part of the box or device.


In yet another embodiment, an intervertebral fusion device can include a threaded rod, which exerts a clamping force to expand the device until the device properly accommodates the dimensions of the intervertebral disc space and distracts the space based on individual anatomy and surgical judgment. The device can include a cavity for bone in-between the walls of the box.


In another embodiment, an expandable intervertebral fusion device can includes indentations on its sides to accommodate a placement tool.


In another embodiment, an expandable intervertebral fusion device can be adjusted by using a threaded rod as a wedge to pivot components within the device. The threaded rod can be accessible from the front anterior of the box or device.


In another embodiment, an expandable fusion device can include a threaded rod to expand a spacer. The threaded rod can be used as a wedge to mechanically separate the pieces. The threaded rod can be accessible from the front anterior of the box or device.


In another embodiment, an expandable fusion device can include wedge components which translate relative to each other along a contact. The degree of expansion can be determined by an adjustment rod located at the peripheral of the box or device.


In another embodiment, an expandable fusion device includes components which are mechanically linked together. The expansion of the device is controlled by the user via an adjustment rod coupled to a mechanical transmission that causes mechanical components within the device to separate. The threaded rod is accessible from the front anterior of the box or device.


In another embodiment, an expandable fusion device can be provide wherein the position of the device is secured and adjusted by a threaded rod that is mechanically linked to housing pieces. When the threaded rod is rotated, the threaded rod forces the pieces to separate.


In another embodiment, an intervertebral fusion device is provide wherein the two internal screw guides are in the top housing unit.


In another embodiment, an intervertebral fusion expansile device is provided wherein the center of the two internal screw guides could be in quadrants I and III or II and IV.


In another embodiment, an expandable fusion device can be provided that uses a threaded rod (rotation screw) to expand the device using a metal driver as the wedge to mechanically separate the pieces.


In another embodiment, an expandable fusion device can be adjusted by using a threaded rod (rotation screw) as a wedge to offset the opposing cages.


In another embodiment, an expandable intervertebral fusion device can be provided wherein its position is secured and adjusted by a threaded rod (rotation screw) coupled to a nut and passed through the top and bottom housing pieces. As the threaded rod is rotated further into the nut, the pieces separate.


In another embodiment, an expandable intervertebral fusion device can include a tapered edge to allow contoured insertion into the disc space.


In another embodiment, an intervertebral fusion device can be provided wherein the internal screw guides for screw insertion within the device are diagonal to each other within the xyz plane.


In another embodiment, an intervertebral fusion device wherein the internal screw guides can be adjacent and somewhat diagonal to each other within the xyz plane.


In another embodiment, an intervertebral fusion device can be provided wherein the majority each of the 2 screw holes can be in quadrant I and III or II and IV within the xyz plane.


In another embodiment, an intervertebral fusion device can be provided wherein the screw guides can have approximately the same xy coordinates and have different z coordinates or vice versa.


In another embodiment, an intervertebral fusion device can be provided wherein the center of the two internal screw guides could be in quadrants I and III or II and IV within the xyz plane.


In another embodiment, an intervertebral fusion device can be provided wherein one screw guide is in the top housing unit, and another screw guide is in the bottom housing unit.


In another embodiment, an intervertebral fusion device can be provided that uses a threaded rod (rotation screw) to engage a moveable component which engages a linkage to expand the device.


In another embodiment, an intervertebral fusion device can be provided that uses a threaded rod (rotation screw) to engage a wedge which engages its attaching linkages to expand the device.


In another embodiment, an expandable fusion device can be provided that can be adjusted using a threaded rod (rotation screw) coupled to a scissor-jack linkage.


In another embodiment, an expandable fusion device can be held together with fastener(s). These fasteners constrain the box to one degree of freedom. Part of the mechanism contains a mount for the rotation screw, which can control the movement of the pieces. As the screw is turned, it engages the teeth of the mechanism and acts as a wedge to rotate the pieces away from each other.


In another embodiment, an expandable fusion device adjusted by using a threaded rod (rotation screw) can be used as a wedge to offset the opposing cage surfaces.


In another embodiment, an expandable fusion device can be provided that uses a threaded rod (rotation screw) to expand the device using a metal driver as the wedge to mechanically separate the pieces.


In another embodiment, an expandable fusion device can be provided that can be adjusted by a threaded rod (rotation screw) coupled to a nut which translates to deform an elastomeric material used to force the expansion of the device.


In another embodiment, an expandable fusion device can be provided that has a threaded rod (rotation screw) that engages a wedge to control the expansion of the device.


In another embodiment, an expandable fusion device can be provided that can be contained by fasteners and retaining rings.


In another embodiment, an expandable fusion device can be provided that can be adjusted by a threaded rod (rotation screw) coupled to a wedge that can move the opposing cage surfaces.


In another embodiment, an expandable fusion device can be provided that uses a worm drive to turn a gear that acts as a wedge to expand the device.


In another embodiment, an expandable fusion device can be provided that includes fasteners and retaining rings containing and constraining the device pieces.


In another embodiment, an expandable fusion device can be provided that can be adjusted by a worm gear coupled to an internally threaded spur gear which, upon rotation, linearly advances a threaded component.


In another embodiment, a tool includes a handle, a gripper cooperating with the handle and having a plurality of prongs, a screw guide held in place the plurality of prongs, for controlling the direction of self-drilling screws that are screwed into the vertebral bodies, and an Allen key which expands expandable intervertebral devices.


The present invention has been described herein in terms of several preferred embodiments. However, modifications and additions to these embodiments will become apparent to those of ordinary skill in the art upon a reading of the foregoing description. It is intended that all such modifications and additions comprise a part of the present invention to the extent that they fall within the scope of the several claims appended hereto.

Claims
  • 1. An expandable interbody device comprising: a first housing extending from a first end to a second end, wherein the first housing has first and second end portions positioned at the first and second ends, respectively, and has first and second side portions extending between the first and second end portions, wherein the first housing has a first vertebral body engagement surface and has a first interior surface positioned on an opposite side of the first housing than the first vertebral body engagement surface;a second housing extending from a third end to a fourth end, wherein the second housing has third and fourth end portions positioned at the third and fourth ends, respectively, and has third and fourth side portions extending between the third and fourth end portions, wherein the second housing has a second vertebral body engagement surface and has a second interior surface positioned on an opposite side of the second housing than the second vertebral body engagement surface, wherein the first housing is aligned with the second housing such that the first end of the first housing is axially aligned with the third end of the second housing and the second end of the first housing is axially aligned with the fourth end of the second housing, wherein the first end portion of the first housing is hingedly connected to the third end portion of the second housing such that the first housing can pivot with respect to the second housing so as to move the second end portion of the first housing away from the fourth end portion of the second housing, wherein the second housing defines a slot in the fourth end portion between the third and fourth side portions that is sized to receive the second end portion of the first housing such that the second end of the first housing and the fourth end of the second housing are axially aligned;a wedge extending from a fifth end to a sixth end and having an angled wedge surface extending along at least a portion of a distance between the fifth end and the sixth end, wherein the wedge is positioned between the first housing and the second housing with the angled wedge surface facing the first interior surface of the first housing, wherein the first interior surface of the first housing has an angled housing surface shaped to engage the angled wedge surface of the wedge, wherein a distance from the fifth end to the sixth end of the wedge is less than a distance from the first end to the second end of the first housing and is less than a distance from the third end to the fourth end of the second housing, wherein the wedge is configured to slide within a spaced defined by the first and second housings in a direction toward the second and fourth ends of the first and second housings from a first wedge position that allows the first and second housings to pivot to a housing position that is substantially closed to a second wedge position whereby the angled wedge surface presses against the first interior surface of the first housing to hingedly open the first housing with respect to the second housing whereby the wedge remains axially confined within the space defined by the first and second housings in the first and second wedge positions; anda rotation screw operably connected to the wedge and to the second housing, wherein rotation of the rotation screw moves the wedge in an axially translating direction with respect to the first housing and the second housing within the space defined by the first and second housings from the first wedge position to the second wedge position.
  • 2. The device of claim 1, wherein the first housing defines a first bone material receiving area between the first and second end portions and the first and second side portions, and wherein the second housing defines a second bone material receiving area between the third and fourth end portions and the third and fourth side portions.
  • 3. The device of claim 1, and further comprising means for retaining the rotation screw.
  • 4. The device of claim 1, and further comprising means for mating with prongs of a tool.
  • 5. The device of claim 1, wherein the wedge comprises a threaded hole that engages with a threaded surface of the rotation screw.
  • 6. The device of claim 1, and further comprising first and second retaining rings connected to the rotation screw so as to retain the rotation screw in place when the rotation screw rotates.
  • 7. The device of claim 1, wherein the third and fourth side portions define first and second indentations configured to be grabbed by an insertion tool.
  • 8. A system comprising the device of claim 7, wherein the system further comprises: means for gripping and inserting the device.
  • 9. The system of claim 8, and further comprising: means for turning the rotation screw.
  • 10. The device of claim 1, and further comprising means for attaching the first housing to the second housing.
  • 11. The device of claim 1, wherein the first housing has a thickness that varies between the first end and the second end such that the first interior surface has at least one curved portion and at least one straight portion.
  • 12. The device of claim 1, wherein the wedge comprises substantially straight and parallel opposing side surfaces.
  • 13. A method of operating the device of claim 1, the method comprising: inserting the device in a target surgical location between two vertebrae; andturning the rotation screw to drive the wedge to pivot the first housing away from the second housing while the device is positioned between the vertebrae.
  • 14. An expandable interbody device comprising: a first housing extending from a first end to a second end, wherein the first housing has first and second end portions positioned at the first and second ends, respectively, and has first and second side portions extending between the first and second end portions, wherein the first housing has a first vertebral body engagement surface that is substantially convex and has a first interior surface positioned on an opposite side of the first housing than the first vertebral body engagement surface, wherein the first housing defines at least one first bone material receiving area between the first and second end portions and the first and second side portions;a second housing extending from a third end to a fourth end, wherein the second housing has third and fourth end portions positioned at the third and fourth ends, respectively, and has third and fourth side portions extending between the third and fourth end portions, wherein the second housing has a second vertebral body engagement surface that is substantially convex and has a second interior surface positioned on an opposite side of the second housing than the second vertebral body engagement surface, wherein the second housing defines at least one second bone material receiving area between the third and fourth end portions and the third and fourth side portions, wherein the first housing is aligned with the second housing such that the first end of the first housing is axially aligned with the third end of the second housing and the second end of the first housing is axially aligned with the fourth end of the second housing, wherein the first end portion of the first housing and the third end portion of the second housing are hingedly interconnected such that the first housing can pivot with respect to the second housing so as to move the second end portion of the first housing away from the fourth end portion of the second housing, wherein at least part of the first housing is positioned between the third and fourth side portions of the second housing;a wedge extending from a fifth end to a sixth end and having an angled wedge surface extending along at least a portion of a distance between the fifth end and the sixth end, wherein the wedge is positioned between the first housing and the second housing with the angled wedge surface facing the first interior surface of the first housing, wherein the first interior surface of the first housing has an angled housing surface shaped to engage the angled wedge surface of the wedge, wherein a distance from the fifth end to the sixth end of the wedge is less than a distance from the first end to the second end of the first housing and is less than a distance from the third end to the fourth end of the second housing, wherein the wedge is configured to slide within a spaced defined by the first and second housings in a direction toward the second and fourth ends of the first and second housings from a first wedge position that allows the first and second housings to pivot to a housing position that is substantially closed to a second wedge position whereby the angled wedge surface presses against the first interior surface of the first housing to hingedly open the first housing with respect to the second housing whereby the wedge remains axially confined within the space defined by the first and second housings in the first and second wedge positions; anda rotation screw operably connected to the wedge and to the second housing, wherein rotation of the rotation screw moves the wedge in an axially translating direction with respect to the first housing and the second housing within the space defined by the first and second housings from the first wedge position to the second wedge position.
  • 15. The device of claim 14, wherein the first end portion of the first housing and the third end portion of the second housing are hingedly interconnected via at least two pins.
  • 16. The device of claim 14, wherein the first housing has a thickness that varies between the first end and the second end such that the first interior surface has at least one curved portion and at least one straight portion.
  • 17. The device of claim 14, and further comprising means for attaching the first housing to the second housing.
  • 18. A method of operating the device of claim 14, the method comprising: inserting the device in a target surgical location between two vertebrae; andturning the rotation screw to drive the wedge to pivot the first housing away from the second housing while the device is positioned between the vertebrae.
  • 19. An expandable interbody device comprising: a first housing extending from a first end to a second end, wherein the first housing has first and second end portions positioned at the first and second ends, respectively, and has first and second side portions extending between the first and second end portions, wherein the first housing has a first vertebral body engagement surface and has a first interior surface positioned on an opposite side of the first housing than the first vertebral body engagement surface, wherein the first housing defines a first bone material receiving area between the first and second end portions and the first and second side portions;a second housing extending from a third end to a fourth end, wherein the second housing has third and fourth end portions positioned at the third and fourth ends, respectively, and has third and fourth side portions extending between the third and fourth end portions, wherein the second housing has a second vertebral body engagement surface and has a second interior surface positioned on an opposite side of the second housing than the second vertebral body engagement surface, wherein the second housing defines a second bone material receiving area between the third and fourth end portions and the third and fourth side portions, wherein the third and fourth side portions define first and second indentations configured to be grabbed by an insertion tool, wherein the first housing is aligned with the second housing such that the first end of the first housing is axially aligned with the third end of the second housing and the second end of the first housing is axially aligned with the fourth end of the second housing, wherein the first end portion of the first housing is hingedly connected to the third end portion of the second housing such that the first housing can pivot with respect to the second housing so as to move the second end portion of the first housing away from the fourth end portion of the second housing, wherein the second housing defines a slot in the fourth end portion between the third and fourth side portions that is sized to receive the second end portion of the first housing such that the second end of the first housing and the fourth end of the second housing are axially aligned;a wedge extending from a fifth end to a sixth end with an angled wedge surface extending along at least a portion of a distance between the fifth end and the sixth end and with first and second substantially straight and parallel opposing side surfaces, wherein the wedge is positioned between the first housing and the second housing with the angled wedge surface facing the first interior surface of the first housing, wherein the first interior surface of the first housing has an angled housing surface shaped to engage the angled wedge surface of the wedge, wherein a distance from the fifth end to the sixth end of the wedge is less than a distance from the first end to the second end of the first housing and is less than a distance from the third end to the fourth end of the second housing, wherein the wedge is configured to slide within a spaced defined by the first and second housings in a direction toward the second and fourth ends of the first and second housings from a first wedge position that allows the first and second housings to pivot to a housing position that is substantially closed to a second wedge position whereby the angled wedge surface presses against the first interior surface of the first housing to hingedly open the first housing with respect to the second housing whereby the wedge remains axially confined within the space defined by the first and second housings in the first and second wedge positions; anda rotation screw operably connected to the wedge and to the second housing, wherein rotation of the rotation screw moves the wedge in an axially translating direction with respect to the first housing and the second housing within the space defined by the first and second housings from the first wedge position to the second wedge position.
  • 20. The device of claim 19, and further comprising means for attaching the first housing to the second housing.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a Continuation Application of application Ser. No. 14/063,197, filed on Oct. 25, 2013, which is a Continuation-in-part Application of application Ser. No. 13/210,150, filed Aug. 15, 2011, now U.S. Pat. No. 9,867,719 issued Jan. 16, 2018, and a Continuation-in-part Application of application Ser. No. 13/210,157, filed Aug. 15, 2011, now U.S. Pat. No. 9,889,022 issued Feb. 13, 2018, and a Continuation-in-part Application of application Ser. No. 13/210,162, filed Aug. 15, 2011, now U.S. Pat. No. 9,895,238 issued Feb. 20, 2018 and a Continuation-in-part Application of co-pending application Ser. No. 13/210,168, filed Aug. 15, 2011, now U.S. Pat. No. 9,907,674 issued Mar. 6, 2018, and a Continuation-in-part Application of application Ser. No. 13/741,361, filed on Jan. 14, 2013, now U.S. Pat. No. 9,301,854 issued Apr. 5, 2016. Ser. No. 14/063,197, filed on Oct. 25, 2013, claims priority under U.S.C. § 119(e) of U.S. provisional application Nos. 61/801,783, filed Mar. 15, 2013 and 61/718,707, filed Oct. 25, 2012. Ser. No. 13/210,150, filed Aug. 15, 2011, is a Continuation of application Ser. No. 13/084,543, filed Apr. 11, 2011, now U.S. Pat. No. 8,353,913 issued on Jan. 15, 2013, and is a Continuation of Ser. No. 13/108,982, filed May 16, 2011, now U.S. Pat. No. 9,005,293 issued Apr. 14, 2015. Ser. No. 13/210,157, filed Aug. 15, 2011, is a Continuation of application Ser. No. 13/084,543, filed Apr. 11, 2011, now U.S. Pat. No. 8,353,913 issued on Jan. 15, 2013, and is a Continuation of Ser. No. 13/108,982, filed May 16, 2011, now U.S. Pat. No. 9,005,293 issued Apr. 14, 2015. Ser. No. 13/210,162, filed Aug. 15, 2011, is a Continuation of application Ser. No. 13/084,543, filed Apr. 11, 2011, now U.S. Pat. No. 8,353,913 issued on Jan. 15, 2013, and is a Continuation of Ser. No. 13/108,982, filed May 16, 2011, now U.S. Pat. No. 9,005,293 issued Apr. 14, 2015. Ser. No. 13/210,168, filed Aug. 15, 2011, is a Continuation of application Ser. No. 13/084,543, filed Apr. 11, 2011, now U.S. Pat. No. 8,353,913 issued on Jan. 15, 2013, and is a Continuation of Ser. No. 13/108,982, filed May 16, 2011, now U.S. Pat. No. 9,005,293 issued Apr. 14, 2015. Ser. No. 13/741,361, filed Jan. 14, 2013, is a Continuation of application Ser. No. 13/084,543, filed Apr. 11, 2011, now U.S. Pat. No. 8,353,913 issued on Jan. 15, 2013, and is a Continuation of Ser. No. 13/108,982, filed May 16, 2011, now U.S. Pat. No. 9,005,293 issued Apr. 14, 2015. Ser. No. 13/084,543, filed Apr. 11, 2011, is a Continuation of application Ser. No. 11/842,855, filed Aug. 21, 2007, now U.S. Pat. No. 7,942,903 issued May 17, 2011. Ser. No. 13/108,982, filed May 16, 2011, is a Continuation of application Ser. No. 11/842,855, filed Aug. 21, 2007, now U.S. Pat. No. 7,942,903 issued May 17, 2011, which is a Continuation-in-part of application Ser. No. 11/536,815, filed Sep. 29, 2006, now U.S. Pat. No. 7,846,188 issued Dec. 7, 2010, which is a Continuation-in-part of application Ser. No. 11/208,644, filed Aug. 23, 2005, now U.S. Pat. No. 7,704,279 issued Apr. 27, 2010, which claims priority under 35 U.S.C. § 119(e) of U.S. provisional application No. 60/670,231, filed on Apr. 12, 2005; the entire contents of all the above identified patent applications are hereby incorporated by reference.

US Referenced Citations (308)
Number Name Date Kind
2360942 Ellerstein Oct 1944 A
4064881 Meredith Dec 1977 A
4554914 Kapp et al. Nov 1985 A
4599086 Doty Jul 1986 A
4636217 Ogilvie et al. Jan 1987 A
4904261 Dove et al. Feb 1990 A
4960420 Goble et al. Oct 1990 A
4997432 Keller Mar 1991 A
5005749 Aranyi Apr 1991 A
5062850 MacMillan et al. Nov 1991 A
5123926 Pisharodi Jun 1992 A
5290312 Kojimoto et al. Mar 1994 A
5405391 Henderson et al. Apr 1995 A
5413583 Wohlers May 1995 A
5454819 Knoepfler Oct 1995 A
5514180 Heggeness et al. May 1996 A
5653763 Errico et al. Aug 1997 A
5658336 Pisharodi Aug 1997 A
5660188 Groiso Aug 1997 A
5665122 Kambin Sep 1997 A
5667472 Finn et al. Sep 1997 A
5713912 Porter Feb 1998 A
5782832 Larsen et al. Jul 1998 A
5865848 Baker Feb 1999 A
5888223 Bray, Jr. Mar 1999 A
5916224 Esplin Jun 1999 A
5951574 Stefanchik et al. Sep 1999 A
5960522 Boe Oct 1999 A
5968054 Yeatts et al. Oct 1999 A
5976136 Bailey et al. Nov 1999 A
5980522 Koros et al. Nov 1999 A
6102950 Vaccaro Aug 2000 A
6126689 Brett Oct 2000 A
6190414 Young et al. Feb 2001 B1
6193757 Foley et al. Feb 2001 B1
6224602 Hayes May 2001 B1
6235034 Bray May 2001 B1
6299642 Chan Oct 2001 B1
6322562 Wolter Nov 2001 B1
6342074 Simpson Jan 2002 B1
6368350 Erickson et al. Apr 2002 B1
6368351 Glenn et al. Apr 2002 B1
6375682 Fleischmann et al. Apr 2002 B1
6419705 Glenn et al. Apr 2002 B1
6419704 Ferree Jul 2002 B1
6432106 Fraser Aug 2002 B1
6454807 Jackson Sep 2002 B1
6458159 Thalgott Oct 2002 B1
6491724 Ferree Dec 2002 B1
6527804 Gauchet et al. Mar 2003 B1
6533818 Weber et al. Mar 2003 B1
6558423 Michelson May 2003 B1
6572653 Simonson Jun 2003 B1
6579318 Varga et al. Jun 2003 B2
6582468 Gauchet Jun 2003 B1
6613055 Di Emidio Sep 2003 B2
6629998 Lin Oct 2003 B1
6641614 Wagner et al. Nov 2003 B1
6655243 Anderson et al. Dec 2003 B2
6716247 Michelson Apr 2004 B2
6719794 Gerber Apr 2004 B2
6723126 Berry Apr 2004 B1
6733532 Gauchet et al. May 2004 B1
6764491 Frey et al. Jul 2004 B2
6770094 Fehling et al. Aug 2004 B2
6824564 Crozet Nov 2004 B2
6835206 Jackson Dec 2004 B2
6852117 Orlowski Feb 2005 B2
6890355 Michelson May 2005 B2
6904308 Frisch et al. Jun 2005 B2
6953477 Berry Oct 2005 B2
6955671 Uchikubo Oct 2005 B2
6955691 Ayyanathan et al. Oct 2005 B2
6962606 Michelson Nov 2005 B2
6972019 Michelson Dec 2005 B2
6974480 Messerli et al. Dec 2005 B2
7030904 Adair et al. Apr 2006 B2
7033394 Michelson Apr 2006 B2
7037258 Chatenever et al. May 2006 B2
7070598 Lim et al. Jul 2006 B2
7077864 Byrd et al. Jul 2006 B2
7087055 Lim et al. Aug 2006 B2
7097615 Banik et al. Aug 2006 B2
7118579 Michelson Oct 2006 B2
7135043 Nakahara et al. Nov 2006 B2
7211112 Baynham et al. May 2007 B2
7214243 Taylor et al. May 2007 B2
7232464 Mathieu et al. Jun 2007 B2
7238203 Bagga et al. Jul 2007 B2
7320555 Chang et al. Jan 2008 B2
7326248 Michelson Feb 2008 B2
7410501 Michelson Aug 2008 B2
7442209 Michelson Oct 2008 B2
7442299 Lee et al. Oct 2008 B2
7445636 Michelson Nov 2008 B2
7615059 Watschke et al. Nov 2009 B2
7618456 Mathieu et al. Nov 2009 B2
7628816 Magerl et al. Dec 2009 B2
7655027 Michelson Feb 2010 B2
7655046 Dryer et al. Feb 2010 B2
7704279 Moskowitz et al. Apr 2010 B2
7722674 Grotz et al. May 2010 B1
7727246 Sixto et al. Jun 2010 B2
7753958 Gordon et al. Jul 2010 B2
7763078 Peterman et al. Jul 2010 B2
7776047 Fanger et al. Aug 2010 B2
7776093 Wolek et al. Aug 2010 B2
7799081 McKinley Sep 2010 B2
7803162 Marnay et al. Sep 2010 B2
D626233 Cipoletti et al. Oct 2010 S
7828849 Lim Nov 2010 B2
7846185 Carls et al. Dec 2010 B2
7846207 Lechmann et al. Dec 2010 B2
7850733 Baynham Dec 2010 B2
7862616 Lechmann et al. Jan 2011 B2
7875078 Wysocki et al. Jan 2011 B2
7887591 Aebi et al. Feb 2011 B2
7909869 Gordon et al. Mar 2011 B2
7942903 Moskowitz et al. May 2011 B2
7959675 Gately Jun 2011 B2
7972363 Moskowitz et al. Jul 2011 B2
7985255 Bray et al. Jul 2011 B2
8029512 Paltzer Oct 2011 B2
8034060 Keren et al. Oct 2011 B2
8062375 Glerum Nov 2011 B2
8105358 Phan Jan 2012 B2
8105367 Austin et al. Jan 2012 B2
8105382 Olmos et al. Jan 2012 B2
8114162 Bradley Feb 2012 B1
8123810 Gordon et al. Feb 2012 B2
8133232 Levy et al. Mar 2012 B2
8137405 Kostuik et al. Mar 2012 B2
8167949 Tyber et al. May 2012 B2
8187332 McLuen May 2012 B2
8267939 Cipoletti et al. Sep 2012 B2
8268000 Waugh et al. Sep 2012 B2
8273127 Jones et al. Sep 2012 B2
8328872 Duffield et al. Dec 2012 B2
8353913 Moskowitz et al. Jan 2013 B2
8382842 Greenhalgh et al. Feb 2013 B2
8394145 Weiman Mar 2013 B2
8398713 Weiman Mar 2013 B2
8403986 Michelson Mar 2013 B2
8403990 Dryer et al. Mar 2013 B2
8414651 Tyber et al. Apr 2013 B2
8419797 Biedermann et al. Apr 2013 B2
8425607 Waugh et al. Apr 2013 B2
8435298 Weiman May 2013 B2
8491659 Weiman Jul 2013 B2
8496706 Ragab et al. Jul 2013 B2
8518120 Glerum et al. Aug 2013 B2
8523944 Jimenez et al. Sep 2013 B2
8535380 Greenhalgh Sep 2013 B2
8540774 Kueenzi et al. Sep 2013 B2
8556979 Glerum et al. Oct 2013 B2
8568481 Olmos et al. Oct 2013 B2
8603170 Cipoletti et al. Dec 2013 B2
8613761 Lindemann et al. Dec 2013 B2
8628577 Jimenez Jan 2014 B1
8628578 Miller et al. Jan 2014 B2
8632595 Weiman Jan 2014 B2
8663329 Ernst Mar 2014 B2
8679183 Glerum et al. Mar 2014 B2
8685095 Miller et al. Apr 2014 B2
8685098 Glerum et al. Apr 2014 B2
8709086 Glerum Apr 2014 B2
8721723 Hansell et al. May 2014 B2
8728165 Parry et al. May 2014 B2
8778025 Ragab et al. Jul 2014 B2
8790405 Biedermann Jul 2014 B2
8795366 Varela Aug 2014 B2
8845731 Weiman Sep 2014 B2
8845732 Weiman Sep 2014 B2
8845734 Weimann Sep 2014 B2
8888853 Glerum et al. Nov 2014 B2
8888854 Glerum et al. Nov 2014 B2
8894711 Varela Nov 2014 B2
8894712 Varela Nov 2014 B2
8926704 Glerum et al. Jan 2015 B2
8940049 Jimenez et al. Jan 2015 B1
9034045 Davenport et al. May 2015 B2
9039771 Glerum et al. May 2015 B2
9119730 Glerum et al. Sep 2015 B2
9198772 Weimann Dec 2015 B2
9445919 Palmatier Sep 2016 B2
20020068976 Jackson Jun 2002 A1
20020068977 Jackson Jun 2002 A1
20020143338 Orbay et al. Oct 2002 A1
20030130737 McGahan et al. Jul 2003 A1
20040010315 Song Jan 2004 A1
20040087947 Lim et al. May 2004 A1
20040088054 Berry May 2004 A1
20040177531 DiBenedetto et al. Sep 2004 A1
20040186569 Berry Sep 2004 A1
20040193272 Zubok et al. Sep 2004 A1
20040220571 Assaker et al. Nov 2004 A1
20040249466 Liu et al. Dec 2004 A1
20040254644 Taylor Dec 2004 A1
20050027362 Williams et al. Feb 2005 A1
20050049590 Alleyne et al. Mar 2005 A1
20050113916 Branch May 2005 A1
20050113917 Chae et al. May 2005 A1
20050177235 Baynham et al. Aug 2005 A1
20050216084 Fleischmann Sep 2005 A1
20050256576 Moskowitz et al. Nov 2005 A1
20050261769 Moskowitz et al. Nov 2005 A1
20050273170 Navarro et al. Dec 2005 A1
20050278026 Gordon et al. Dec 2005 A1
20060155285 Anderson Jul 2006 A1
20060206207 Dryer Sep 2006 A1
20060241621 Moskowitz et al. Oct 2006 A1
20060241643 Lim et al. Oct 2006 A1
20060241770 Rhoda et al. Oct 2006 A1
20060247778 Ferree et al. Nov 2006 A1
20070049943 Moskowitz et al. Mar 2007 A1
20070167678 Moskowitz et al. Jul 2007 A1
20070198089 Moskowitz et al. Aug 2007 A1
20070213820 Magerl et al. Sep 2007 A1
20070250167 Bray et al. Oct 2007 A1
20070250172 Moskowitz et al. Oct 2007 A1
20070270968 Baynham et al. Nov 2007 A1
20070276498 Aebi et al. Nov 2007 A1
20080033440 Moskowitz et al. Feb 2008 A1
20080058938 Mujwid Mar 2008 A1
20080177307 Moskowitz et al. Jul 2008 A1
20080183293 Parry et al. Jul 2008 A1
20080249569 Waugh et al. Oct 2008 A1
20080249575 Waugh et al. Oct 2008 A1
20080249625 Waugh et al. Oct 2008 A1
20080281424 Parry et al. Nov 2008 A1
20080281425 Thalgott et al. Nov 2008 A1
20090030520 Biedermann et al. Jan 2009 A1
20090080997 Johnson Mar 2009 A1
20090105830 Jones et al. Apr 2009 A1
20090105831 Jones et al. Apr 2009 A1
20090112271 Moskowitz et al. Apr 2009 A1
20090112319 O'Neil et al. Apr 2009 A1
20090171461 Conner et al. Jul 2009 A1
20090182430 Tyber et al. Jul 2009 A1
20090187218 Schaffhausen Jul 2009 A1
20090210062 Thalgott et al. Aug 2009 A1
20090224023 Moskowitz et al. Sep 2009 A1
20090234455 Moskowitz et al. Sep 2009 A1
20090292361 Lopez et al. Nov 2009 A1
20090299478 Carls et al. Dec 2009 A1
20100057208 Dryer et al. Mar 2010 A1
20100145460 McDonough et al. Jun 2010 A1
20100168862 Edie et al. Jul 2010 A1
20100204795 Greenhalgh Aug 2010 A1
20100286780 Dryer et al. Nov 2010 A1
20100292796 Greenhalgh et al. Nov 2010 A1
20100286783 Ueda Dec 2010 A1
20100305704 Messerli et al. Dec 2010 A1
20100318189 Edie et al. Dec 2010 A1
20100324606 Moskowitz et al. Dec 2010 A1
20110015742 Hong Jan 2011 A1
20110029082 Hall Feb 2011 A1
20110054621 Lim Mar 2011 A1
20110093074 Glerum et al. Apr 2011 A1
20110125269 Moskowitz et al. May 2011 A1
20110137349 Moskowitz et al. Jun 2011 A1
20110172721 Frigg et al. Jul 2011 A1
20110172774 Varela Jul 2011 A1
20110178600 Moskowitz et al. Jul 2011 A1
20110208312 Moskowitz et al. Aug 2011 A1
20110288646 Moskowitz et al. Nov 2011 A1
20110295327 Moskowitz et al. Dec 2011 A1
20110295371 Moskowitz et al. Dec 2011 A1
20110307011 Moskowitz et al. Dec 2011 A1
20110319935 Moskowitz et al. Dec 2011 A1
20120010714 Moskowitz et al. Jan 2012 A1
20120035729 Glerum et al. Feb 2012 A1
20120109319 Perisic May 2012 A1
20120150304 Glerum et al. Jun 2012 A1
20120150305 Glerum et al. Jun 2012 A1
20120158146 Glerum et al. Jun 2012 A1
20120158147 Glerum et al. Jun 2012 A1
20120158148 Glerum et al. Jun 2012 A1
20120271419 Marik Oct 2012 A1
20120271423 Wallenstein et al. Oct 2012 A1
20120277865 Trieu et al. Nov 2012 A1
20120277870 Wolters et al. Nov 2012 A1
20120323330 Kueenzi et al. Dec 2012 A1
20120330419 Moskowitz et al. Dec 2012 A1
20130018468 Moskowitz et al. Jan 2013 A1
20130018469 Moskowitz et al. Jan 2013 A1
20130018470 Moskowitz et al. Jan 2013 A1
20130023991 Moskowitz et al. Jan 2013 A1
20130023992 Moskowitz et al. Jan 2013 A1
20130053962 Moskowitz et al. Feb 2013 A1
20130060339 Duffield et al. Mar 2013 A1
20130073044 Gamache Mar 2013 A1
20130144388 Emery et al. Jun 2013 A1
20130158663 Miller et al. Jun 2013 A1
20130158664 Palmatier et al. Jun 2013 A1
20130173002 Moskowitz et al. Jul 2013 A1
20130211526 Alheidt Aug 2013 A1
20130282017 Moskowitz et al. Oct 2013 A1
20140088714 Miller et al. Mar 2014 A1
20140121774 Glerum et al. May 2014 A1
20140249628 Weiman Sep 2014 A1
20140249629 Moskowitz et al. Sep 2014 A1
20140324171 Glerum et al. Oct 2014 A1
20150025637 Moskowitz et al. Jan 2015 A1
20150105824 Moskowitz et al. Apr 2015 A1
20150148847 Moskowitz et al. May 2015 A1
20160374830 Moskowitz et al. Dec 2016 A1
20170252178 Moskowitz et al. Sep 2017 A1
Foreign Referenced Citations (3)
Number Date Country
2727003 May 1996 FR
2004093749 Nov 2004 WO
2006091503 Aug 2006 WO
Non-Patent Literature Citations (7)
Entry
Vincent C. Traynelis, “Prosthetics and Biologics: The Wave of the Future,” Clinical Neurosurgery, vol. 50, Proceedings of the Congress of Neurological Surgeons, Philadelphia, PA 2002, Chapter 9, pp. 207-219.
E.K. Wai et al., “Disk Replacement Arthroplasties: Can the Success of Hip and Knee Replacements be Repeated in the Spine?,” Seminars in Spine Surgery, vol. 15, No. 4 Dec. 2003, pp. 473-482.
Richard D. Guyer et al., “Intervertebral Disc Prostheses,” Spine Journal, vol. 28, No. 15S, Supp. to Aug. 1, 2003, pp. S15-S23.
Dieter Grob et al., “Clinical Experience With the Dynesys Semirigid Fixation System for the Lumbar Spine,” Spine, vol. 30, No. 3, 2005, pp. 324-331.
International Search Report (ISR) and Written Opinion of the International Searching Authority, dated Dec. 3, 2007, International Application No. PCT/US 07/05005.
International Search Report (ISR) and Written Opinion of the International Searching Authority, dated May 21, 2008, International Application No. PCT/US2007/021015.
International Search Report (ISR) and Written Opinion of the International Searching Authority, dated Jul. 9, 2008, International Application No. PCT/US2007021013.
Related Publications (1)
Number Date Country
20180078383 A1 Mar 2018 US
Provisional Applications (3)
Number Date Country
61801783 Mar 2013 US
61718707 Oct 2012 US
60670231 Apr 2005 US
Continuations (13)
Number Date Country
Parent 14063197 Oct 2013 US
Child 15820232 US
Parent 13084543 Apr 2011 US
Child 13210150 US
Parent 13108982 May 2011 US
Child 13084543 US
Parent 13084543 Apr 2011 US
Child 13210157 US
Parent 13108982 May 2011 US
Child 13084543 US
Parent 13084543 Apr 2011 US
Child 13210162 US
Parent 13108982 May 2011 US
Child 13084543 US
Parent 13084543 Apr 2011 US
Child 13210168 US
Parent 13108982 May 2011 US
Child 13084543 US
Parent 13084543 Apr 2011 US
Child 13741361 US
Parent 13108982 May 2011 US
Child 13084543 US
Parent 11842855 Aug 2007 US
Child 13084543 US
Parent 11842855 Aug 2007 US
Child 13108982 US
Continuation in Parts (7)
Number Date Country
Parent 13210150 Aug 2011 US
Child 14063197 US
Parent 13210157 Aug 2011 US
Child 13210150 US
Parent 13210162 Aug 2011 US
Child 13210157 US
Parent 13210168 Aug 2011 US
Child 13210162 US
Parent 13741361 Jan 2013 US
Child 13210168 US
Parent 11536815 Sep 2006 US
Child 11842855 US
Parent 11208644 Aug 2005 US
Child 11536815 US