Composite interference screws and drivers

Information

  • Patent Grant
  • 9788935
  • Patent Number
    9,788,935
  • Date Filed
    Wednesday, July 22, 2015
    9 years ago
  • Date Issued
    Tuesday, October 17, 2017
    7 years ago
Abstract
The present disclosure relates to an anchor. The anchor includes a suture bridge having a proximal end and distal end. The distal end of the suture bridge has a thickness greater than a thickness of the proximal end of the suture bridge. At least two ribs extend from the proximal end of the suture bridge to a proximal end of the anchor. At least one open helical coil wraps around the at least two ribs and extends, substantially, from the proximal end of the suture bridge to the proximal end of the anchor. The at least one open helical coil defines an internal volume communicating with a region exterior to the anchor through apertures between turns of the at least one open helical coil. The at least two ribs are engagable with a grooved shaft of a driver.
Description
BACKGROUND

Field of Technology


The present disclosure relates to medical apparatuses and procedures in general, and more particularly to medical apparatuses and procedures for reconstructing a ligament.


Related Art


In many cases, ligaments are torn or ruptured as the result of an accident. Accordingly, various procedures have been developed to repair or replace such damaged ligaments.


For example, in the human knee, the anterior and posterior cruciate ligaments (i.e., the “ACL” and “PCL”) extend between the top end of the tibia and the bottom end of the femur. Often, the anterior cruciate ligament (i.e., the ACL) is ruptured or torn as the result of, for example, a sports-related injury. Consequently, various surgical procedures have been developed for reconstructing the ACL so as to restore substantially normal function to the knee.


In many instances, the ACL may be reconstructed by replacing the ruptured ACL with a graft ligament. More particularly, in such a procedure, bone tunnels are generally formed in both the top of the tibia and the bottom of the femur, with one end of the graft ligament being positioned in the femoral tunnel and the other end of the graft ligament being positioned in the tibial tunnel, and with the intermediate portion of the graft ligament spanning the distance between the bottom of the femur and the top of the tibia. The two ends of the graft ligament are anchored in their respective bone tunnels in various ways well known in the art so that the graft ligament extends between the bottom end of the femur and the top end of the tibia in substantially the same way, and with substantially the same function, as the original ACL. This graft ligament then cooperates with the surrounding anatomical structures so as to restore substantially normal function to the knee.


In some circumstances, the graft ligament may be a ligament or tendon which is harvested from elsewhere within the patient's body, e.g., a patella tendon with or without bone blocks attached, a semitendinosus tendon and/or a gracilis tendon.


As noted above, various approaches are well known in the art for anchoring the two ends of the graft ligament in the femoral and tibial bone tunnels.


In one well-known procedure, which may be applied to femoral fixation, tibial fixation, or both, the end of the graft ligament is placed in the bone tunnel, and then the graft ligament is fixed in place using a headless orthopedic screw, generally known in the art as an “interference” screw. More particularly, with this approach, the end of the graft ligament is placed in the bone tunnel and then the interference screw is advanced into the bone tunnel so that the interference screw extends parallel to the bone tunnel and simultaneously engages both the graft ligament and the side wall of the bone tunnel. In this arrangement, the interference screw essentially drives the graft ligament laterally, into engagement with the opposing side wall of the bone tunnel, whereby to secure the graft ligament to the host bone with a so-called “interference fit”. Thereafter, over time (e.g., several months), the graft ligament and the host bone grow together at their points of contact so as to provide a strong, natural joinder between the ligament and the bone.


Interference screws have proven to be an effective means for securing a graft ligament in a bone tunnel. However, the interference screw itself generally takes up a substantial amount of space within the bone tunnel, which can limit the surface area contact established between the graft ligament and the side wall of the bone tunnel. This in turn limits the region of bone-to-ligament in-growth, and hence can affect the strength of the joinder. By way of example but not limitation, it has been estimated that the typical interference screw obstructs about 50% of the potential bone-to-ligament integration region.


For this reason, substantial efforts have been made to provide interference screws fabricated from absorbable materials, so that the interference screw can eventually disappear over time and bone-to-ligament in-growth can take place about the entire perimeter of the bone tunnel. To this end, various absorbable interference screws have been developed which are made from biocompatible, bioabsorbable polymers, e.g., polylactic acid (PLA), polyglycolic acid (PGA), etc. These polymers generally provide the substantial mechanical strength needed to advance the interference screw into position, and to thereafter hold the graft ligament in position while bone-to-ligament in-growth occurs, without remaining in position on a permanent basis.


In general, interference screws made from such biocompatible, bioabsorbable polymers have proven clinically successful. However, these absorbable interference screws still suffer from several disadvantages. First, clinical evidence suggests that the quality of the bone-to-ligament in-growth is somewhat different than natural bone-to-ligament in-growth, in the sense that the aforementioned bioabsorbable polymers tend to be replaced by a fibrous mass rather than a well-ordered tissue matrix. Second, clinical evidence suggests that absorption generally takes a substantial period of time, e.g., on the order of three years or so. Thus, during this absorption time, the bone-to-ligament in-growth is still significantly limited by the presence of the interference screw. Third, clinical evidence suggests that, for many patients, absorption is never complete, leaving a substantial foreign mass remaining within the body. This problem is exacerbated somewhat by the fact that absorbable interference screws generally tend to be fairly large in order to provide them with adequate strength, e.g., it is common for an interference screw to have a diameter (i.e., an outer diameter) of 8-12 mm and a length of 20-25 mm.


Thus, there is a need for a new and improved interference fixation system which (i) has the strength needed to hold the graft ligament in position while bone-to-ligament in-growth occurs, and (ii) promotes superior bone-to-ligament in-growth.


SUMMARY

In one aspect, the present disclosure relates to an anchor. The anchor includes a suture bridge having a proximal end and distal end. The distal end of the suture bridge has a thickness greater than a thickness of the proximal end of the suture bridge. At least two ribs extend from the proximal end of the suture bridge to a proximal end of the anchor. At least one open helical coil wraps around the at least two ribs and extends, substantially, from the proximal end of the suture bridge to the proximal end of the anchor. The at least one open helical coil defines an internal volume communicating with a region exterior to the anchor through apertures between turns of the at least one open helical coil. The at least two ribs are engagable with a grooved shaft of a driver.


In yet another aspect, the present disclosure relates to a delivery device and anchor combination. The delivery device of the combination includes a handle and shaft connected to the handle. The shaft includes a distal end having a slot and at least two grooves extending from the slot. The anchor of the combination includes a suture bridge having a proximal end and distal end. The distal end of the suture bridge has a thickness greater than a thickness of the proximal end of the suture bridge. At least two ribs extend from the proximal end of the suture bridge to a proximal end of the anchor. At least one open helical coil wraps around the at least two ribs and extends, substantially, from the proximal end of the suture bridge to the proximal end of the anchor. The at least one open helical coil defines an internal volume communicating with a region exterior to the anchor through apertures between turns of the at least one open helical coil. The anchor is located on the distal end of the delivery device such that the slot houses the proximal portion of the suture bridge and the at least two grooves engage the at least two ribs of the suture bridge.


Further areas of applicability of the present disclosure will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the disclosure, are intended for purposes of illustration only and are not intended to limit the scope of the disclosure.





BRIEF DESCRIPTION OF THE DRAWINGS

The accompanying drawings, which are incorporated in and form a part of the specification, illustrate the embodiments of the present disclosure and together with the written description serve to explain the principles, characteristics, and features of the disclosure. In the drawings:



FIG. 1 shows a first embodiment of the delivery device of the present disclosure.



FIG. 2 shows a side view of the shaft of the delivery device of FIG. 1.



FIG. 2A shows an exploded view of the distal end of the shaft of FIG. 2.



FIG. 3 shows a cross-sectional view of the shaft of FIG. 2.



FIG. 4 shows a front view of the distal end of the shaft of FIG. 2.



FIG. 5 shows an isometric view of the screw for use with the shaft of FIG. 2.



FIG. 6 shows a side view of the screw of FIG. 5.



FIG. 7 shows a cross-sectional view of the screw of FIG. 6.



FIG. 8 shows a second embodiment of a shaft of the present disclosure.



FIG. 9 shows a side view of the inner member of the shaft of FIG. 8.



FIG. 9A shows an exploded view of the distal end of the inner member of FIG. 9.



FIG. 10 shows a cross-sectional view of the inner member of the shaft of FIG. 9.



FIG. 11 shows a front view of the distal end of the inner member of FIG. 9.



FIG. 12 shows an isometric view of the outer member of the shaft of FIG. 8.



FIG. 13 shows a cross-sectional view of the outer member of FIG. 12.



FIGS. 14 and 15 show side views of the shaft of FIG. 8 with the outer member in different positions.



FIG. 16 shows an isometric view of a third embodiment of a shaft of the present disclosure and a screw for use with the shaft.



FIG. 17 shows an isometric view of the shaft of FIG. 16.



FIG. 18 shows an isometric view of the screw of FIG. 16.



FIG. 19 shows a side view of the screw of FIG. 16.



FIG. 20 shows a cross-sectional view of the screw of FIG. 19.



FIG. 21 shows an isometric view of a fourth embodiment of a shaft of the present disclosure and a screw for use with the shaft.



FIG. 22 shows an isometric view of the screw of FIG. 21.



FIG. 23 shows an isometric view of the shaft of FIG. 21.



FIG. 24 shows an isometric view of the shaft of FIG. 21 and an alternative screw for use with the shaft.



FIG. 25 shows a side view of the screw of FIG. 24.



FIG. 26 shows a cross-sectional view of the screw of FIG. 24.



FIG. 27 shows an isometric view of an example anchor with suture bridge and example inserter shaft for the anchor.



FIG. 28 shows a side view of the shaft and anchor of FIG. 27.



FIG. 29 shows a cross-sectional view of FIG. 28.



FIG. 30 shows a close up view of the distal end of the anchor of FIG. 29.



FIG. 31 shows a cross-sectional view of the anchor of FIG. 27.



FIG. 32 shows an isometric view of the anchor of FIG. 27.



FIG. 33 shows an isometric view of the shaft of FIG. 27.



FIG. 34 shows a cross-sectional view of an anchor inserted into bone.



FIG. 35 shows an isometric view of an example anchor with suture bridge and proximal reinforcement.



FIG. 36 shows an isometric view of another example anchor with suture bridge.



FIG. 37 shows an isometric view of yet another example anchor with suture bridge.



FIG. 38 shows a cross-sectional view of the anchor of FIG. 37.





DETAILED DESCRIPTION OF THE EMBODIMENTS

The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the disclosure, its application, or uses.



FIG. 1 shows a first embodiment of the delivery device 10 of the present disclosure. The device 10 includes a handle assembly 11 and a shaft 12 coupled to the handle assembly 11. The handle assembly 11 includes a handle 11a and a connector 11b coupled to the handle 11a. The connector 11b has a channel 11b′ and an opening 11b″ to the channel 11b′. The opening 11b″ is in the shape of a “D”. A proximal end 12a of the shaft 12 is disposed within the channel 11b′.



FIGS. 2, 2A, and 3-4 show the shaft 12. The shaft 12 includes a proximal end 12a and a distal end 12b. The proximal end 12a is in the shape of a “D” to match the shape of the opening 11b″. The distal end 12b includes threads 12c, grooves 12d, and a depth stop 12e. The grooves 12d extend a partial length of the shaft 12 and intersect the threads 12c. The depth stop 12e is for use with a depth stop on a screw that the device 10 is used to implant into a bone tunnel during ligament reconstruction surgery.



FIGS. 5-7 show the screw 20 for use with the delivery device 10 of the present disclosure. The screw 20 includes a proximal end 21 and a distal end 22. A majority of the screw 20 includes screw threads 23 in the form of an open helical coil, i.e. a connected series of continuous regularly spaced turns extending in a helical or spiral form substantially from the proximal end 21 to the distal end 22 with apertures 24 being defined by the space between the turns of the coil. In other words, interference screw 20 may include an open helical coil defining an internal volume, with the internal volume communicating with the region exterior to the open helical coil through the spacing between the turns of the open helical coil. The distal end 22 also includes a depth stop 25 that extends a partial length of the screw 20. The depth stop 25 includes a proximal end 25a and a distal end 25b. Additionally, a plurality of longitudinally-extending runners 26 extend along the interior of the screw threads 23.


The distal end 12b of the shaft 12 is placed within the interior of the screw 20, via the opening 27, until the proximal end 25a of the depth stop 25 engages the depth stop 12e of the shaft 12. During insertion of the shaft 12 into the screw 20, the runners 26 engage the grooves 12d and become housed within the grooves 12d. As shown in FIG. 1, the distal end 12b of the shaft 12 also includes hash marks 12f, each of which is associated with a number 12g. Once the screw 20 is placed on the shaft 12, the proximal end 21 of the screw 20 aligns with one of the hash marks/numbers 12f, thereby indicating the length of the screw 20.



FIGS. 8, 9-9A, and 10-15 show an alternative shaft 30 of the present disclosure. The shaft 30 includes an inner member 31 and an outer member 32 disposed over the inner member 31. The proximal end 31a of the inner member 31 is similar in shape to the proximal end 12a of the shaft 12. The distal end 31b of the inner member 31 includes threads 31c. Grooves 31d extend along the member 31 and intersect the threads 31c. Additionally, threads 31e are located between the proximal and distal ends 31a,31b of the member 31. The outer member 32 includes a first section 32a and a second section 32b. The first section 32a has a larger diameter than the second section 32b. The first section 32a also includes threads 32c on an inner wall 32d of the outer member 32.


Once the outer member 32 is disposed over the inner member 31, threads 32c engage threads 31e to move the outer member 32 relative to the inner member 31. Moving the outer member 32 relative to the inner member 31 allows for more or less of the distal end 31b of the inner member 31 to be shown. Similar to the distal end 12b of the shaft 12, the distal end 31b of inner member 31 includes hash marks/numbers (not shown) that align with an end 32b′ of the second section 32b, thereby indicating a length of screw 40 that will be disposed on the distal end 31b of the inner member 31. As shown in FIGS. 14 and 15, the outer member 32 is located at different positions along the length of the inner member 31 to allow for screws 40 of different lengths to be loaded on the distal end 31b of the inner member 31.


A handle assembly, similar to the handle assembly 11, is coupled to the proximal end 31a of the inner member 31. Similar to screw 20, screw 40 includes a proximal end 41 and a distal end 42. The screw 40 includes screw threads 43 in the form of an open helical coil having an interior and a plurality of longitudinally-extending runners 45 extending along the interior of the screw threads 43. Screw 40 is more fully described in United States Patent Application Publication No. 20080154314, the disclosure of which is incorporated herein by reference in its entirety. Once the outer member 32 has been moved to indicate the screw length, the screw 40 is loaded onto the distal end 31b, such that a proximal end 41 of the screw 40 engages the end 32b′ and the runners 45 engage the grooves 31d and become housed within the grooves 31d.



FIGS. 16-20 show another alternative embodiment of the shaft 50 and screw 60 of the present disclosure. The shaft 50 includes a first portion 51 including a proximal end 51a and a distal end 51b and a second portion 52 including a first area 52a and a second area 52b. The proximal end 51a is configured to be coupled to a handle assembly, similar to the handle assembly 11. However, other handle assemblies may be used. The first area 52a has a smaller diameter than the first portion 51, such that a first depth stop 51b′ exists at the distal end 51b of the first portion 51. The second area 52b has a smaller diameter than the first area 52a such that a second depth stop 52c exists between the first area 52a and the second area 52b. An end 52b′ of the second area 52b is tapered to allow for easier insertion of the anchor 60 into a bone during ligament reconstruction surgery, as will be further described below. The second portion 52 also includes grooves 53 extending between the first and second areas 52a,52b. For the purposes of this disclosure, there are three grooves 53. However, the second portion 52 may include a higher or lower number of grooves 53.


Similar to screw 20 shown in FIGS. 5-7, screw 60 includes a proximal end 61 and a distal end 62. A majority of the screw 60 includes screw threads 63 in the form of an open helical coil, i.e. a connected series of continuous regularly spaced turns extending in a helical or spiral form substantially from the proximal end 61 to the distal end 62 with apertures 64 being defined by the space between the turns of the coil. In other words, interference screw 60 may include an open helical coil defining an internal volume, with the internal volume communicating with the region exterior to the open helical coil through the spacing between the turns of the open helical coil. The distal end 62 also includes a depth stop 65 that extends a partial length of the screw 60. The depth stop 65 includes a proximal end 65a and a distal end 65b. Unlike the open depth stop 25 of screw 20 most clearly shown in FIG. 5, the depth stop 65 of screw 60 is a closed depth stop, most clearly shown in FIG. 18. Additionally, a plurality of longitudinally-extending runners 66 extend along the interior of the screw threads 63.


The second portion 52 of the shaft 50 is placed within the interior of the screw 60, via the opening 67, until the proximal end 65a of the depth stop 65 engages the second depth stop 52c of the shaft 50. During insertion of the shaft 50 into the screw 60, the runners 66 engage the grooves 53 and become housed within the grooves 53. The screws 60 may be of a variety of lengths. For example, a screw 60 may be of such length that its proximal end 61 would engage the first depth stop 51b′.


As described above, during ligament reconstruction surgery, the end of the graft ligament is placed in the bone tunnel and then the interference screw 20,40,60 is advanced into the bone tunnel via the use of shafts 12,30,50 so that the interference screw 20,40,60 extends parallel to the bone tunnel and simultaneously engages both the graft ligament and the side wall of the bone tunnel. The screws 20,40,60 may be used in either the femoral or tibial tunnels. Methods of ligament reconstruction via use of the screws 20,40,60 is further shown in the '314 publication shown above.



FIGS. 21-23 show yet another alternative embodiment of the screw 100 and the delivery device 200 of the present disclosure. The screw 100 includes a proximal end 101 and a distal end 102. A majority of the screw 100 includes screw threads 103 in the form of an open helical coil, i.e. a connected series of continuous regularly spaced turns extending in a helical or spiral form substantially from the proximal end 101 to the distal end 102 with apertures 104 being defined by the space between the turns of the coil. In other words, interference screw 100 may include an open helical coil defining an internal volume, with the internal volume communicating with the region exterior to the open helical coil through the spacing between the turns of the open helical coil. The distal end 102 also includes a suture bridge 105 that extends a partial length of the screw 100. The suture bridge 105 includes a proximal end 105a and a distal end 105b. The distal end 105b includes a concave shape. A flexible member 110, such as a suture, is housed within the screw 100, such that the suture 110 extends around the distal end 105b of the bridge 105. Additionally, longitudinally-extending runners 106 extend from the suture bridge 105 and along the interior of the screw threads 103. For the purposes of this disclosure, there are two longitudinally extending runners 106. However, more or less than two runners are within the scope of this disclosure.


The delivery device 200 includes a distal end 201 having a slot 202 and grooves 203 extending from the slot 202 on each side of the device 200. As shown in FIG. 21, the screw 100 is located on the distal end 201 such that the suture bridge 105 is housed within the slot 202 and the runners 106 are housed within the grooves 203. The delivery device 200 is cannulated, such that when the screw 100 is located on the device 200, the suture ends 110a,110b extend through the cannulation 204.



FIGS. 24-26 show a screw 300 similar to screw 100. However, screw 300 additionally includes a pointed tip 311 located on the distal end 302. The tip 311 includes a through hole 312. The hole 312 helps in locating the suture 110 within the interior of the screw 300. As shown in FIG. 24, the screw 300 is located on the distal end 201 of delivery device 200 such that the suture bridge 305 is housed within the slot 202 and the runners 306 are housed within the grooves 203. As stated above, the delivery device 200 is cannulated, such that when the screw 300 is located on the device 200, the suture ends 110a,110b extend through the cannulation 204, as shown in FIG. 24.


For clarity purposes, only the distal end 201 of the device 200 is shown. However, the device 200 would include a proximal end, similar to the devices above, which may be coupled to a handle assembly, similar to handle assembly 11 above. The screws 100,300 are used in the repair of soft tissue, specifically to re-attach tissue to bone. One example of this repair is when the screw 100,300 is delivered into bone via the use of device 200, the device 200 is removed from screw 100,300, the tissue is placed on the bone to be adjacent the screw 100,300, the suture ends 110a,110b are pulled through the tissue, and then the suture ends 110a,110b are tied. A hole may be made in the bone prior to insertion of the screw 100,300 into the bone. However, screw 300 may be inserted into bone without first making a hole in the bone. In this case, the pointed tip 311 is used to start insertion of the screw 300 into the bone and then rotary motion may be used to complete insertion of the screw 300 into the bone. Other methods of tissue repair via use of these screws and delivery device may also be used.


The handle 11a of handle assembly 11 is made from plastic, however, other non-metal and metal materials may also be used. The shape and size of handle 11a may be any shape and size necessary to help facilitate insertion of the screw 20 into bone. The coupler 11b is made from a metal material, such as stainless steel or titanium, but may be made from other metal and non-metal materials that are strong enough to withstand the forces applied during surgery. The coupler 11b is press-fit to the handle 11a, but may be coupled to the handle 11a in any other manner known to those of skill in the art. The size and shape of the coupler 11b may be any size and shape necessary to help facilitate insertion of the screw 20 into bone. The channel 11b′ may be any length necessary and the opening 11b″ may be any shape necessary to facilitate coupling of the shaft 12 to the coupler 11b.


The shaft 12 is made from a metal material, such as stainless steel and titanium, however, other metal and non-metal materials that would withstand the forces applied during surgery may be used. The diameter of the shaft 12 may vary. The proximal end 12a of the shaft 12 may be any shape necessary to facilitate insertion of the end 12a through opening 11b″ and into channel 11b′. The number of threads 12c and grooves 12d may vary and the lengths of the grooves 12d may also vary. The location of depth stop 12e may also vary based on the diameter of the shaft 12 and the diameter of the screw 20 that is used. The grooves 12d, depth stop 12e, and threads 12c may be formed by any method known to one of skill in the art.


The screw 20 is made from a polymer material via a molding method. However, other material, which would allow the screw 20 to withstand forces applied during surgery, and other methods of making may be used. The depth stop 25 is open ended and doesn't extend the entire inner diameter of the screw 20. The amount of screw inner diameter that the depth stop 25 covers may vary and the length of the depth stop 25 may vary based on the diameter of the screw. The number and length of the runners 26 may also vary. Once the screw 20 is located on the shaft 12, the distal end 12b of the shaft 12 extends from the distal end 22 of the screw 20. During insertion of the screw 20 into bone, the threads 12c create threads in the bone, thereby creating a seat for the screw threads 23, as described more fully in the '314 publication. The amount of the distal end 12b of the shaft 12 that extends from the distal end 22 of the screw 20 may vary.


The diameters of the first and second sections 32a,32b of outer member 32 may vary and the number of threads 32c may also vary. The number of threads 31c,31e and grooves 31d may vary and the lengths of the grooves 31d may also vary. The inner and outer members 31,32 are made from a metal material, such as stainless steel and titanium, and via a method known to one of skill in the art. However, other materials may also be used. The screw 40 is made from a polymer material via a molding method. However, other material and methods of making may be used. The number and length of the runners 45 may also vary. Once the screw 40 is located on the shaft 30, the distal end 31b of the shaft 30 extends from the distal end 42 of the screw 40. During insertion of the screw 40 into bone, the threads 31c create threads in the bone, thereby creating a seat for the screw threads 43, as described more fully in the '314 publication. The amount of the distal end 31b of the shaft 30 extending from the screw 40 may vary.


The shaft 50 is made from a metal material, such as stainless steel or titanium, but may be made from another metal material or a non-metal material that is strong enough to withstand the force applied to the shaft 50 during surgery. The shaft 50 may be made via a method known to one of skill in the art. The diameters of the first and second portions 51,52 may vary along with the number and lengths of the grooves 53 and the locations of the depth stops 52c,51b′ may vary based on the diameter of the screw 60 or other factors. Rather than being tapered, the end 52b′ may be designed in another manner to allow easier insertion of the screw 60 into bone. The screw 60 is made from a polymer material via a molding method. However, other material, which would allow the screw to withstand the forces applied during surgery, and other methods of making may be used. The number and length of the runners 66 may also vary. Once the screw 60 is located on the shaft 50, the second portion 52 of the shaft 50 extends from the distal end 62 of the screw 60. The amount of the second portion 52 extending from the screw 60 may vary. Additionally, the length of the depth stop 65 may also vary based on the diameter of the screw 60 or other factors.


The delivery device 200 is made from a metal material, such as stainless steel or titanium, but may be made from a non-metal material that is strong enough to withstand the forces applied to the device 200 during surgery. The delivery device 200 is made via a method known to one of skill in the art. The screws 100,300 are made from a polymer material and via a molding process, however, other material, which would allow the screw to withstand the forces applied during surgery, and other processes known to one of skill in the art may be used. The suture bridge 105 may have a distal end 105b having a shape other than concave and the length of the suture bridge 105, the slot 202, and the grooves 203 may vary. The size and the shape of the hole 312 may vary.


For example, FIGS. 27-33 show yet another alternative embodiment of a screw (anchor) 400 and the delivery device 200 of the present disclosure. The screw 400 includes a proximal end 401 and a distal end 402.


The distal end 402 also includes a suture bridge 405 that extends a partial length of the screw 400. The suture bridge 405 includes a proximal end 405a and a distal end 405b.


The distal end 405b of the suture bridge 405 has a thickness greater than a thickness of the proximal end 405a of the suture bridge 405. In one example, the distal end 405b includes a convex shape. A convenient example of the screw 400 has a suture bridge with a bulbous profile. A flexible member 410, such as a suture, is housed within the screw 400, such that the suture 110 extends around the distal end 405b of the bridge 405.


A majority of the screw 400 includes screw threads 403 in the form of an open helical coil, i.e. a connected series of continuous regularly spaced turns extending in a helical or spiral form substantially from the proximal end 405a of the suture bridge 405 to the proximal end 401 of the screw 400 with apertures 404 being defined by the space between the turns of the coil. In other words, the screw 400 may include an open helical coil defining an internal volume, with the internal volume communicating with the region exterior to the open helical coil through the spacing between the turns of the open helical coil.


In one example of the screw 400, the screw threads 403 cover the proximal end 405a of the suture bridge 405 (best seen in FIG. 30). In another example of the screw 400, the screw threads 403 start at proximal end 105a of the suture bridge 105. In some examples, the screw threads 403 may define, at least in part, an anchor body and may be referred to as such.


Longitudinally-extending runners (ribs) 406 extend from the suture bridge 405 and along the interior of the screw threads 403. For the purposes of this disclosure, there are two longitudinally extending runners 406. However, more or less than two runners are within the scope of this disclosure.


The delivery device 200 includes a distal end 201 having a slot 202 and grooves 203 extending from the slot 202 on each side of the device 200. As shown in FIG. 27, the screw 400 is located on the distal end 201 such that the proximal end 405a of the suture bridge 405 is housed within the slot 202 and the runners 406 are housed within the grooves 203. The delivery device 200 is cannulated such that when the screw 400 is located on the device 200, the suture ends 410a, 410b extend through the cannulation 204.


The general suture bridge design described above with reference to FIGS. 27-33 may be advantageous to screws (anchors) made from bioabsorbable material. Compared to other materials, such as polyetheretherketone (PEEK), a bioabsorbable material is weaker and more brittle. Testing shows that other suture bridge designs, while adequate for devices made from PEEK, do not provide sufficient bridge strength for products made from bioabsorbable material.



FIGS. 28-31 show a convenient example of the suture bridge 405 suitable for an open-architecture anchors (e.g., fenestrated anchor) fabricated from bioabsorbable material.



FIG. 28 shows a working example of a device 400 in which a bulbous distal end 405b of the suture bridge 405 is outside an inserter 200. The foregoing arrangement allows additional space/volume for the suture bridge 405 to occupy and for the device 400 to still accommodate a full suture load.



FIG. 29 shows a cross section view of working end of the device 400—the same section of the device depicted in FIG. 28. In this case, the cross section is rotated 90 degrees. The bulbous distal portion 405b of the suture bridge 405 protrudes outside the inserter 200 and is enlarged to better distribute the load imparted onto the suture bridge 405 by a suture.



FIG. 30 shows a close up view of the distal end 402 of the device 400. The bulbous portion 405b of the suture anchor 405 is outside the envelope of the inserter 200. The extension of the bulbous portion 405b of the bridge outside 405 of the inserter 200 allows there to be room for a suture 410 to occupy.



FIG. 31 shows a cross section view of the device 400 removed from the inserter 200. The bulbous portion 405b of the suture anchor 405 can be seen, as can the interaction between the suture 410, suture bridge 405 and the anchor body 403.


While the suture bridge 405 and its examples are described above in the context of a single suture, the foregoing disclosure also applies to a device loaded with multiple sutures (e.g., three) and the associated suture load. Because the distal (thick) end of the suture bridge 405 extends beyond the inserter 200, the suture bridge 405 is able to accommodate a large suture load. Because the distal end 402 of the bridge 405 is bulbous, the suture bridge 405 can withstand significant loads applied by multiple sutures.


The general suture bridge design contemplates other variations providing a suture bridge that is structurally strong to hold up to loads imparted onto it by a suture(s), particularly during knot tying by a surgeon. In one example, the bulbous portion of the suture bridge extends distally further increasing the load carrying capability of the suture bridge. In other example, the diameter of the suture bridge extends beyond the width of the longitudinal ribs/runners further enhancing the strength of the suture bridge.



FIG. 34 shows an anchor 500 inserted into bone 550. The anchor 500 holds one or more sutures 555 used, for example, to tie soft tissue (not shown) down to the bone 550. The bone 550 has a hard outer layer of cortical bone 560 and soft inner layer of cancellous bone 565. There may be more layers of bone. The number of layers, however, is not important to the following disclosure but rather there is one layer harder than the other. The hard outer layer of cortical bone or simply “cortical layer” 560 imparts a strong reactionary force on the anchor 500. It is observed that this reactionary force is a cause of failure in anchors, particularly in anchors having an open-architecture design and made from bioabsorbable material, such as the examples described above with reference FIGS. 27-33.


In testing, open-architecture anchors made from bioabsorbable material inserted into 25/5 pcf bilayer bone block simulating average humeral head bone, exhibit a novel failure mode of thread stripping from the anchors. Failure of the threads initiates in the simulated cortical layer (25 pcf) and cascades down the anchors as each subsequent thread encounters the simulated cortical layer during a pullout event, such as when a surgeon tensions a suture to tie a knot. Failure initiates in the distal most threads of the anchors because a disproportionately high amount of the (axial) load applied by the suture to the anchors is reacted by the distal most threads, which are embedded in the denser (harder) cortical layer. The failure of the distal most threads and the subsequent cascade of thread failure lead to reduced fixation strength of the anchors in average humeral head bone quality as represented by 25/5 pcf bone block.



FIG. 35 shows an example of the anchor 500 designed to handle the reactionary force imparted by the cortical layer 560 and to prevent a pullout failure. The anchor 500 includes a proximal end 501 and a distal end 502. The distal end 502 includes a suture bridge 505 that extends a partial length of the anchor 500, such as the suture bridge 405 described above with reference to FIGS. 28-31.


A majority of the anchor 500 includes screw threads 503 in the form of an open helical coil, i.e. a connected series of continuous regularly spaced turns extending in a helical or spiral form substantially from the proximal end 505a of the suture bridge 505 to the proximal end 501 of the anchor 500. The terms screw threads and helical coil are used interchangeably herein. The anchor 500 includes apertures 504 being defined by the space between turns of the helical coil 503. The anchor 500 is further characterized by a number of turns per a given length, called “screw thread pitch” or simply “pitch.”


At the proximal end 501 of the anchor 500, webbing 520 extends between adjacent turns 515a and 515b of the coil 503. The number of turns with webbing in between is a function of the thickness of the cortical layer 560 and the pitch of the helical coil 503. Because the anchor 500 (and its example) is reinforced, proximally, according to the foregoing relationship, the inserted anchor 500 supports a greater axial load than compared to non-reinforced anchors. The inserted anchor 500 (and its example) exhibits a greater resistance to being pulled out of bone or “pull out strength” than compared to anchors without proximal reinforcement, particularly, in the hard layer and soft layer makeup found in typical humeral head bone stock.


In one example of the anchor 500, the number of turns with webbing in between increases as the thickness of the cortical layer 560 and/or the pitch of helical coil 503 increases.


As shown in FIG. 35, an example of the anchor 500 includes a proximal web between the distal most thread 515a and the second most distal thread 515b. This example of the anchor 500 has a dual lead thread meaning there are two “ridges” wrapped around the cylinder of the body of the anchor 500. With a dual lead thread arrangement, the web 520 circumnavigates the proximal end 501 as shown. Because of the screw thread pitch of the anchor 500, the proximal web 520 extends through the full cortical layer thickness of the humeral head bone stock providing reinforcement of the anchor through the entire cortical layer.


The example of the anchor 500 shown in FIG. 35 has one “distal” gap between the distal most thread 515a and the second most distal thread 515b filled with webbing 520. Other examples of the anchor 500 may have more than one distal gap between threads filled with webbing 520. The extent the webbing 520 progresses distally down the anchor 500 is based on the thicknesses of the cortical layer into which the anchor 500 is to be inserted and the pitch of the anchor 500.


Some examples of the anchor 500 have different numbers of turns corresponding to different cortical layer thicknesses. The thickness of the cortical layer varies from bone to bone, e.g., the cortical layer of the humeral head is thinner than the cortical layer of the tibia. Proximal reinforcement of the anchor 500 may be advantageously tailored to a specific application e.g., the proximal reinforcement of an anchor used in shoulder repair is different than the proximal reinforcement of an anchor used in knee repair.



FIG. 36 shows an example anchor 600 having a proximal end 601 and distal end 602. The anchor 600 includes, at the distal end 602, a suture bridge 605 (such as one described above with reference to FIGS. 27-31). The anchor 600 further includes two open helical coils 603a, 603b in a dual lead thread arrangement. The two open helical coils 603a, 603b extend from the suture bridge 605 toward the proximal end 601. Webbing 620 extends between adjacent turns of one of the two helical coils. The configuration of the anchor 600 strengthens/reinforces a substantial length of the anchor 600, including the entire length. At the same time, the configuration of the anchor 600 provides a degree of openness promoting desirable bony ingrowth. It may be convenient in some examples of the anchor 600 to characterize the webbing 620 as being continuous (i.e., continuous webbing).



FIGS. 37 and 38 show an example anchor 700 having a proximal end 701 and distal end 702. The anchor 700 includes, at the distal end 702, a suture bridge 705 (such as one described above with reference to FIGS. 27-31). A majority of the anchor 700 includes a plurality of regularly spaced turns 703 extending in a helical or spiral form from a proximal end 705a of the suture bridge 705, approximately, to the proximal end 701 of the anchor 700. Webbing 720 extends between each turn of the plurality of regularly spaced turns 703 and an adjacent turn (e.g., turns 703a and 703b). The webbing 720 gives the anchor 700 torsion and compression strength. The webbing 720 defines apertures 722, which may be rectangular (square) or oval (circle) in shape. The apertures 722 give the anchor 700 a degree of openness promoting desirable bony ingrowth. It may be convenient in some examples of the anchor 700 to characterize the webbing 720 as being interrupted or perforated (i.e., interrupted/perforated webbing).


As various modifications could be made to the exemplary embodiments, as described above with reference to the corresponding illustrations, without departing from the scope of the disclosure, it is intended that all matter contained in the foregoing description and shown in the accompanying drawings shall be interpreted as illustrative rather than limiting. Thus, the breadth and scope of the present disclosure should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims appended hereto and their equivalents.

Claims
  • 1. An anchor comprising: a suture bridge having a proximal end and distal end, the distal end of the suture bridge having a thickness greater than a thickness of the proximal end of the suture bridge and defining the distal terminus of the anchor;at least two ribs extending from the proximal end of the suture bridge to a proximal end of the anchor; andat least one open helical coil wrapping around the at least two ribs and extending, substantially, from the proximal end of the suture bridge to the proximal end of the anchor, the at least one open helical coil defining an internal volume communicating with a region exterior to the anchor through apertures between turns of the at least one open helical coil;wherein the at least one open helical coil and the proximal end of the suture bridge define a space extending to a region adjacent the distal end of the suture bridge, the space configured for receipt of a distal end of a delivery device, such that the distal end of the suture bridge projects beyond the distal end of the delivery device.
  • 2. The anchor of claim 1 wherein the suture bridge has a bulbous profile.
  • 3. The anchor of claim 1 wherein the distal end of the suture bridge is convex in shape.
  • 4. The anchor of claim 1 wherein the at least one open helical coil covers the proximal end of the suture bridge.
  • 5. The anchor of claim 1 wherein the anchor is made from a bioasborable material.
  • 6. The anchor of claim 1 further comprising, at the proximal end of the anchor, webbing extending between adjacent turns of the at least one helical coil, a number of turns with webbing in between configured to be a function of the thickness of the cortical layer of bone and the pitch of the at least one helical coil.
  • 7. The anchor of claim 6 wherein the number of turns with webbing in between is configured to increase with an increase in the thickness of the cortical layer of bone, increase in the pitch of the at least one helical coil, or an increase in both.
  • 8. The anchor of claim 6 wherein the anchor includes two open helical coils in a dual lead thread arrangement, and wherein the webbing extends between adjacent turns of one of the two helical coils.
  • 9. The anchor of claim 6 wherein the at least one open helical coil includes a plurality of regularly spaced turns; and wherein the webbing extends between each pair of turns and defines openings through which the internal volume of the anchor communicates with the region exterior to the anchor.
  • 10. The anchor of claim 1, further comprising at least one suture routed over the distal end of the suture bridge, such that the at least one suture projects beyond the distal end of the delivery device.
  • 11. The anchor of claim 1, wherein a diameter of the suture bridge extends beyond a width of the at least two ribs.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of co-pending U.S. application Ser. No. 13/787,139, filed Mar. 6, 2013, entitled COMPOSITE INTERFERENCE SCREWS AND DRIVERS, which in turn is a continuation-in-part application of U.S. application Ser. No. 13/044,777, filed Mar. 10, 2011, which in turn claims priority to U.S. Provisional Application No. 61/312,291, filed Mar. 10, 2010, U.S. Provisional Application No. 61/334,808, filed May 14, 2010, and U.S. Application No. 61/359,080, filed Jun. 28, 2010, the disclosures of which are incorporated herein by reference in their entireties for all purposes.

US Referenced Citations (276)
Number Name Date Kind
2288864 Whitehead et al. Jul 1942 A
3316795 Tann May 1967 A
3320783 Kerr May 1967 A
3499222 Linkow et al. Mar 1970 A
3716058 Tanner Feb 1973 A
3821975 Haker Jul 1974 A
3869942 Decaro Mar 1975 A
3874258 Semola et al. Apr 1975 A
4027572 Burge Jun 1977 A
4177797 Baylis et al. Dec 1979 A
D288777 Kwon Mar 1987 S
4653489 Tronzo Mar 1987 A
4738255 Goble et al. Apr 1988 A
4741651 Despres May 1988 A
4834757 Brantigan May 1989 A
4854311 Steffee Aug 1989 A
RE33114 Chiavon Nov 1989 E
4913143 Oloff et al. Apr 1990 A
4961740 Ray et al. Oct 1990 A
4988351 Paulos et al. Jan 1991 A
5026373 Ray et al. Jun 1991 A
5055104 Ray Oct 1991 A
5094133 Schreiber Mar 1992 A
5116337 Johnson May 1992 A
5129904 Illi Jul 1992 A
5129906 Ross et al. Jul 1992 A
5139520 Rosenberg Aug 1992 A
5197967 Wilson Mar 1993 A
5236431 Gogolewski et al. Aug 1993 A
5242447 Borzone Sep 1993 A
5312214 Morton May 1994 A
5354299 Coleman Oct 1994 A
5364400 Rego, Jr. et al. Nov 1994 A
5370662 Stone et al. Dec 1994 A
5383878 Roger et al. Jan 1995 A
5407427 Zhu et al. Apr 1995 A
5411506 Goble et al. May 1995 A
5411523 Goble May 1995 A
5423823 Schmieding et al. Jun 1995 A
5431660 Burke Jul 1995 A
5447533 Vachon et al. Sep 1995 A
5464427 Curtis et al. Nov 1995 A
5470334 Ross et al. Nov 1995 A
5531780 Vachon Jul 1996 A
5571139 Jenkins, Jr. Nov 1996 A
5573548 Nazre et al. Nov 1996 A
5593409 Michelson Jan 1997 A
5609635 Michelson Mar 1997 A
5609636 Kohrs et al. Mar 1997 A
5626613 Schmieding May 1997 A
5632747 Scarborough et al. May 1997 A
5645547 Coleman Jul 1997 A
5658285 Marnay et al. Aug 1997 A
5676545 Jones Oct 1997 A
5681352 Clancy, III et al. Oct 1997 A
5688285 Yamada Nov 1997 A
5690676 Dipoto et al. Nov 1997 A
5695497 Stahelin Dec 1997 A
5702397 Goble et al. Dec 1997 A
5709683 Bagby Jan 1998 A
5802794 Robson Sep 1998 A
5833715 Vachon et al. Nov 1998 A
5876405 Del Rio Mar 1999 A
5888227 Cottle Mar 1999 A
5891146 Simon et al. Apr 1999 A
5921982 Lesh et al. Jul 1999 A
5951560 Simon et al. Sep 1999 A
5961524 Crombie Oct 1999 A
5964783 Grafton et al. Oct 1999 A
5968047 Reed Oct 1999 A
5968098 Winslow Oct 1999 A
5984967 Zdeblick et al. Nov 1999 A
6008433 Stone Dec 1999 A
6039762 McKay Mar 2000 A
6086593 Bonutti Jul 2000 A
6096060 Fitts et al. Aug 2000 A
6097986 Janke et al. Aug 2000 A
6132435 Young Oct 2000 A
6146073 Kobusch Nov 2000 A
6196780 Wakai et al. Mar 2001 B1
6214031 Schmieding et al. Apr 2001 B1
6235057 Roger et al. May 2001 B1
6283973 Hubbard et al. Sep 2001 B1
6302632 Lin Oct 2001 B1
6360129 Ley et al. Mar 2002 B1
6443989 Jackson Sep 2002 B1
6447545 Bagby Sep 2002 B1
6488683 Lieberman Dec 2002 B2
6503251 Shadduck Jan 2003 B1
6511499 Schmieding et al. Jan 2003 B2
6514257 Dovesi et al. Feb 2003 B2
6517542 Papay et al. Feb 2003 B1
6527774 Lieberman Mar 2003 B2
6544265 Lieberman Apr 2003 B2
6551319 Lieberman Apr 2003 B2
6551320 Lieberman Apr 2003 B2
6551322 Lieberman Apr 2003 B1
6554830 Chappius Apr 2003 B1
6569188 Grafton et al. May 2003 B2
6589245 Weiler et al. Jul 2003 B1
6604945 Jones Aug 2003 B1
6620195 Goble et al. Sep 2003 B2
6626917 Craig Sep 2003 B1
6648903 Pierson Nov 2003 B1
6656183 Colleran et al. Dec 2003 B2
6666888 Jackson Dec 2003 B1
6685728 Sinnott et al. Feb 2004 B2
6818010 Eichhorn et al. Nov 2004 B2
6823871 Schmieding Nov 2004 B2
6855168 Crozet Feb 2005 B2
6857343 Easterbrooks et al. Feb 2005 B1
6863671 Strobel et al. Mar 2005 B1
6875216 Wolf Apr 2005 B2
6887194 Hart et al. May 2005 B2
6908465 von Hoffmann et al. Jun 2005 B2
6942669 Kurc Sep 2005 B2
6942684 Bonutti Sep 2005 B2
6953462 Lieberman Oct 2005 B2
7018412 Ferreira et al. Mar 2006 B2
7033372 Cahalan Apr 2006 B1
7070586 Hart et al. Jul 2006 B2
7083647 Sklar et al. Aug 2006 B1
7090690 Foerster et al. Aug 2006 B2
7147641 Chen Dec 2006 B2
7189251 Kay Mar 2007 B2
7195634 Schmieding et al. Mar 2007 B2
7217279 Reese May 2007 B2
7226469 Benavitz et al. Jun 2007 B2
7235079 Jensen et al. Jun 2007 B2
7322978 West Jan 2008 B2
7322986 Wolf Jan 2008 B2
7335221 Collier et al. Feb 2008 B2
7371244 Chatlynne et al. May 2008 B2
7442202 Dreyfuss Oct 2008 B2
7510558 Tallarida et al. Mar 2009 B2
7572264 Null et al. Aug 2009 B2
7575572 Sweeney Aug 2009 B2
7585311 Green et al. Sep 2009 B2
7594929 Collette Sep 2009 B2
7601165 Stone Oct 2009 B2
7601167 Lieberman Oct 2009 B2
7608097 Kyle Oct 2009 B2
7608098 Stone et al. Oct 2009 B1
7749250 Stone et al. Jul 2010 B2
7857830 Stone et al. Dec 2010 B2
7867252 Criscuolo et al. Jan 2011 B2
7883529 Sinnott et al. Feb 2011 B2
7896902 Jeon et al. Mar 2011 B2
7905903 Stone et al. Mar 2011 B2
7905904 Stone et al. Mar 2011 B2
7909851 Stone et al. Mar 2011 B2
7914539 Stone et al. Mar 2011 B2
7935138 Richelsoph May 2011 B1
7942862 Hart et al. May 2011 B2
7993369 Dreyfuss et al. Aug 2011 B2
8034090 Stone et al. Oct 2011 B2
8118312 Walters Feb 2012 B2
8167906 Cauldwell et al. May 2012 B2
8251998 Hoeppner et al. Aug 2012 B2
8252006 Ortiz et al. Aug 2012 B2
8343186 Dreyfuss et al. Jan 2013 B2
8372124 Paulk et al. Feb 2013 B2
8430909 Dreyfuss et al. Apr 2013 B2
8449613 Crozet May 2013 B2
8480686 Bakos et al. Jul 2013 B2
8496662 Novak et al. Jul 2013 B2
8597328 Cauldwell et al. Dec 2013 B2
8623049 Ward Jan 2014 B2
8623052 Dreyfuss et al. Jan 2014 B2
8636799 Sklar et al. Jan 2014 B2
8663672 Manrique et al. Mar 2014 B2
8672967 Dimatteo et al. Mar 2014 B2
8715282 Pool May 2014 B2
8801755 Dreyfuss et al. Aug 2014 B2
8814935 Paulos Aug 2014 B2
8821541 Dreyfuss et al. Sep 2014 B2
8834538 Donnelly et al. Sep 2014 B2
8900279 Assell et al. Dec 2014 B2
8974505 Sawa et al. Mar 2015 B2
8979848 Butters et al. Mar 2015 B2
8979865 Fan et al. Mar 2015 B2
9138220 Hernandez Sep 2015 B2
9155531 Housman Oct 2015 B2
9162350 Nino et al. Oct 2015 B2
9237887 Wack et al. Jan 2016 B2
9265494 Hester et al. Feb 2016 B2
9277911 Hernandez Mar 2016 B2
9308080 Housman et al. Apr 2016 B2
9393006 Housman et al. Jul 2016 B2
9408613 Kehres et al. Aug 2016 B2
9427270 Housman Aug 2016 B2
9439644 Lizardi Sep 2016 B2
9526488 Arai et al. Dec 2016 B2
9579188 Bowman et al. Feb 2017 B2
20020052629 Morgan et al. May 2002 A1
20020055742 Lieberman May 2002 A1
20020099382 Salazar et al. Jul 2002 A1
20020111653 Foerster Aug 2002 A1
20030055431 Brannon Mar 2003 A1
20030065361 Dreyfuss Apr 2003 A1
20030065374 Honeck Apr 2003 A1
20030078585 Johnson et al. Apr 2003 A1
20030125749 Yuan et al. Jul 2003 A1
20030195529 Takamoto et al. Oct 2003 A1
20040030343 Kurc Feb 2004 A1
20040073216 Lieberman Apr 2004 A1
20040093032 Sinnott et al. May 2004 A1
20040122424 Ferree Jun 2004 A1
20040153074 Bojarski et al. Aug 2004 A1
20050159727 Lesh Jul 2005 A1
20050222681 Richley et al. Oct 2005 A1
20050234458 Huebner Oct 2005 A1
20050250984 Lam et al. Nov 2005 A1
20050250985 Saadat et al. Nov 2005 A1
20050250987 Ewers et al. Nov 2005 A1
20050250988 Ewers et al. Nov 2005 A1
20050267478 Corradi et al. Dec 2005 A1
20060030948 Manrique et al. Feb 2006 A1
20060079895 McLeer Apr 2006 A1
20060079903 Wong Apr 2006 A1
20060089651 Trudeau et al. Apr 2006 A1
20060100627 Stone May 2006 A1
20060149266 Cordasco Jul 2006 A1
20060247642 Stone et al. Nov 2006 A1
20060253080 Tulleken et al. Nov 2006 A1
20060276841 Barbieri et al. Dec 2006 A1
20070093895 Donnelly et al. Apr 2007 A1
20070122764 Balfour et al. May 2007 A1
20070142849 Ewers et al. Jun 2007 A1
20070198019 Schomer et al. Aug 2007 A1
20070203498 Gerber et al. Aug 2007 A1
20080154314 McDevitt Jun 2008 A1
20080275431 Stone et al. Nov 2008 A1
20090024174 Stark Jan 2009 A1
20090042951 Danziger Feb 2009 A1
20090076544 DiMatteo et al. Mar 2009 A1
20090118776 Kelsch et al. May 2009 A1
20090125071 Skinlo et al. May 2009 A1
20090187216 Schmieding et al. Jul 2009 A1
20090292321 Collette Nov 2009 A1
20090319043 McDevitt et al. Dec 2009 A1
20100094297 Parmigiani Apr 2010 A1
20100094352 Iott et al. Apr 2010 A1
20100106166 Cropper et al. Apr 2010 A1
20100274298 Schiff Oct 2010 A1
20110054526 Stone et al. Mar 2011 A1
20110112576 Nguyen et al. May 2011 A1
20110130760 Anderson et al. Jun 2011 A1
20110213426 Yedlicka et al. Sep 2011 A1
20110224727 Housman et al. Sep 2011 A1
20110319933 Tepic Dec 2011 A1
20120041448 Schumacher et al. Feb 2012 A1
20120059384 Fan et al. Mar 2012 A1
20120179163 Housman et al. Jul 2012 A1
20120323285 Assell Dec 2012 A1
20120330420 Brodke et al. Dec 2012 A1
20130103080 Hernandez Apr 2013 A1
20130158596 Miller et al. Jun 2013 A1
20130158610 Hernandez Jun 2013 A1
20130178901 Arai et al. Jul 2013 A1
20140081339 Bowman et al. Mar 2014 A1
20140142697 Sklar et al. May 2014 A1
20140148850 Dimatteo et al. May 2014 A1
20140172016 Housman Jun 2014 A1
20140277129 Arai et al. Sep 2014 A1
20140277130 Housman Sep 2014 A1
20140277188 Poulos Sep 2014 A1
20140277192 Housman Sep 2014 A1
20150019638 Pahlavan et al. Jan 2015 A1
20150196388 Housman et al. Jul 2015 A1
20150327984 Arai et al. Nov 2015 A1
20160235399 Housman et al. Aug 2016 A1
20160374661 Housman et al. Dec 2016 A1
20170014224 Arai et al. Jan 2017 A1
20170020589 Bowman et al. Jan 2017 A1
20170049438 Arai et al. Feb 2017 A1
Foreign Referenced Citations (64)
Number Date Country
2732211 Oct 2005 CN
1701772 Nov 2005 CN
1829479 Sep 2006 CN
101002703 Jul 2007 CN
101031248 Sep 2007 CN
101422381 May 2009 CN
101573078 Nov 2009 CN
201436022 Apr 2010 CN
102068305 May 2011 CN
102551821 Jan 2012 CN
102475586 May 2012 CN
102512253 Jun 2012 CN
102525580 Jul 2012 CN
102525583 Jul 2012 CN
102781370 Nov 2012 CN
102905636 Jan 2013 CN
102573662 Aug 2015 CN
0502698 Sep 1992 EP
05202698 Sep 1992 EP
0538895 Jun 1993 EP
0669110 Nov 1995 EP
0682917 Nov 1995 EP
0686373 Dec 1995 EP
0796593 Mar 1998 EP
0686373 Mar 2001 EP
1093774 Apr 2001 EP
1147751 Oct 2001 EP
1234637 Aug 2002 EP
1430843 Jun 2004 EP
1917926 Nov 2009 EP
2036501 Sep 2010 EP
2422712 Feb 2012 EP
2596758 May 2013 EP
2601894 Jun 2013 EP
2422711 Oct 2015 EP
2760355 Sep 1998 FR
2803739 Jul 2001 FR
2846867 May 2004 FR
2879915 Jun 2006 FR
2294399 May 1996 GB
H10-000200 Jan 1998 JP
2005-529650 Oct 2005 JP
2006212449 Aug 2006 JP
2006-305348 Nov 2006 JP
1996-08205 Mar 1996 WO
1996-19947 Jul 1996 WO
1998-02117 Jan 1998 WO
1998-26717 Jun 1998 WO
03063713 Aug 2003 WO
03103507 Dec 2003 WO
2006-055516 May 2006 WO
2007093192 Aug 2007 WO
2008021474 Feb 2008 WO
2009-042951 Apr 2009 WO
2010009217 Jan 2010 WO
2010-017584 Feb 2010 WO
2010-017631 Feb 2010 WO
2010053708 May 2010 WO
2011059995 May 2011 WO
2011060022 May 2011 WO
2011-112576 Sep 2011 WO
2011112776 Sep 2011 WO
2012-129388 Sep 2012 WO
2012-171011 Dec 2012 WO
Non-Patent Literature Citations (57)
Entry
Second Office Action for related Chinese Patent Application No. 201280022627.6 issued Sep. 16, 2015.
Substantive Examination for related Mexican Patent Application No. MX/a/2013/010383 issued Aug. 12, 2015.
Patent Examination Report No. 1 for related Australian Patent Application No. 2012229152 Issued Aug. 18, 2015.
Third Office Action for related Chinese Patent Application No. 2011-80013194.3 issued Aug. 21, 2015.
International Preliminary Report on Patentability for related International Application No. PCT/US2014/033535, mailed Oct. 22, 2015.
Decision of Rejection on related Japanese Patent Application No. 2012-557236 mailed Oct. 9, 2015.
Communication from related European Patent Application No. 09761114.9 mailed Dec. 3, 2015.
Communication from related European Patent Application No. 11710940.5 mailed Dec. 8, 2015.
First Office Action for related Chinese Patent Application No. 201280038677.3 issued Sep. 6, 2015.
Patent Examination Report No. 1 for related Australian Patent Application No. 2012267924 mailed Dec. 22, 2015.
Substantive Examination of related Russian Application No. 2013144961/14(069526) mailed Dec. 23, 2015.
Substantive Examination Report from related Mexico Patent Application No. MX/a/2013/010383 mailed Jan. 19, 2016.
Notice of Reasons for Rejection for related Japanese Application No. 2013-558094 mailed Feb. 2, 2016.
Third Office Action from related Chines Application No. 201280022627.6 issued Mar. 4, 2016.
Second Office Action from related Chinese Application No. 201280038677.3 issued May 5, 2016.
International Preliminary Report on Patentability from related PCT Application No. PCT/US2014/066389 issued May 24, 2016.
Office Action from related Mexican Application No. MX/a/2013/010383 issued May 3, 2016.
Notice of Reasons for Rejection from related Japanese Application No. 2014-514625 issued Jun. 13, 2016.
Communication from EPO from related European Application No. 12711719.0-1666 issued Jul. 28, 2016.
Office Action from related Russian Application No. 2015147534/20(073143) issued Jun. 29, 2016.
Office Action from related Japanese Application No. 2013-558094 issued Sep. 5, 2016.
First Office Action from related Chinese Application No. 201480012203.0 issued Aug. 17, 2016.
Office Communication from related European Application No. 14712930.8-1662 issued Nov. 24, 2016.
Office Action and Search Report from related Chinese Application No. 201480032876.2 issued Oct. 19, 2016.
Third Office Action from related Chinese Application No. 201280038677.3 issued Nov. 28, 2016.
Office Action from related Japanese Application No. 2014-514625 issued Dec. 19, 2016.
Office Action from related Russian Application No. 2016124173/20(037886) issued Jan. 19, 2017.
Office Action from related EPO Application No. 14716107.9-1664 issued Mar. 23, 2017.
International Preliminary Report for corresponding PCT Application No. PCT/US020747 mailed Sep. 17, 2015.
Biomet brochure “Bio-Core TM Interference Screw”, 2007.
Communication from related European Application No. 14724272.1-1664 issued Jun. 13, 2017.
Decision of Rejections for Japanese Patent Application No. 2011-538642, dated Jun. 2, 2014.
First Office Action for Chinese Patent Application No. 201480073698.8 issued May 2, 2017.
First Office Action for Chinese Patent Application No. 200980155954.7, issued Apr. 12, 2013.
First Office Action for Chinese Patent Application No. 201180013194.3 issued Jul. 21, 2014.
First Office Action for Chinese Patent Application No.: 201280022627.6, issued Apr. 13, 2015.
Hunt, Patrick, D.V.M. et al. “Development of a Perforated Biodegradable Interference Screw” , Arthroscopy: Journal of Arthroscopic and Related Surgery, vol. 21, No. 3, Mar. 2005; pp. 258-265.
International Search and Written Opinion for PCT/US2009/065304 dated Jun. 5, 2013.
International Search and Written Opinion for PCT/US2011/027837 dated May 19, 2011.
International Search and Written Opinion for PCT/US2012/028803 dated Oct. 24, 2010.
International Search and Written Opinion for PCT/US2012/041298 dated Jun. 5, 2013.
International Search and Written Opinion for PCT/US2014/020747 dated Jun. 6, 2014.
International Search and Written Opinion for PCT/US2014/022539 dated Jun. 27, 2014.
International Search and Written Opinion for PCT/US2014/033535 dated Jul. 18, 2014.
International Search and Written Opinion for PCT/US2014/066389 dated Feb. 17, 2015.
Notice of Reasons for Rejection for Japanese Patent Application No. 2012-557236 dated Mar. 2, 2015.
Notice of Reasons for Rejection for Japanese Patent Application No. 2012-557236 dated Nov. 25, 2014.
Notice of Reasons for Rejections for Japanese Patent Application No. 2011-538642, dated Oct. 1, 2013.
Patent Examination Report No. 1 for Australian Patent Application No. 2009319879 issued Nov. 10, 2014.
Patent Examination Report No. 1 for Australian Patent Application No. 2011224326 issued Apr. 21, 2015.
Second Office Action for Chinese Patent Application No. 200980155954.7, issued Oct. 24, 2013.
Second Office Action for Chinese Patent Application No. 201180013194.3, issued Mar. 23, 2015.
Second Office Action from related Chinese Application No. 201480012203.0 issued Apr. 24, 2017.
Smith & Nephew brochure titled “Bio RCITM Bioabsorbable Screws: Anatomically Targeted Screws for ACL and PCL Reconstruction”, 2000.
First Office Action from related Chinese Application No. 201480014353.5 issued Apr. 19, 2017.
Second Office Action from related Chinese Application No. 201480032876.2 issued May 31, 2017.
Fourth Office Action from related Chinese Application No. 201280038677.3 issued May 26, 2017.
Related Publications (1)
Number Date Country
20150327984 A1 Nov 2015 US
Provisional Applications (3)
Number Date Country
61334808 May 2010 US
61359080 Jun 2010 US
61312291 Mar 2010 US
Continuations (1)
Number Date Country
Parent 13787139 Mar 2013 US
Child 14805648 US
Continuation in Parts (1)
Number Date Country
Parent 13044777 Mar 2011 US
Child 13787139 US