A constrained prosthetic knee having a modular hinge post and a rotating bearing. A cannulated hinge post is rotatably connected to the femoral component of the knee prosthesis so that a hinge post extension may be anteriorly positioned through the hinge post and into the tibial component of the knee prosthesis, after positioning of the femoral component in the femur and the tibial component in the tibia. The hinge post is preassembled to the femoral component so that such assembly is not required during the implantation procedure. A meniscal component forming the rotating bearing of the knee prosthesis is packaged together with the hinge post extension so that the appropriate hinge post extension is readily available.

Patent
   RE44476
Priority
Jan 29 2001
Filed
May 07 2010
Issued
Sep 03 2013
Expiry
Jan 29 2021

TERM.DISCL.
Assg.orig
Entity
Large
15
268
all paid
18. A prosthetic knee, comprising:
a femoral component having a hinge post rotatably connected thereto about a rotational axis;
a tibial component;
a meniscal component positioned between said femoral component and said tibial component, said femoral component including a condylar bearing surface, said meniscal component including a cooperative bearing surface facing said condylar bearing surface of said femoral component for contacting said condylar bearing surface, said meniscal component including an a hinge post aperture having a longitudinal axis that is non-intersecting with said rotational axis, whereby said hinge post is positioned within said hinge post aperture when the prosthetic knee is operably assembled; and
a locking clip, said meniscal component including a locking clip aperture, said hinge post including a locking clip groove, said locking clip traversing said locking clip aperture and engaging said locking clip groove to retain said hinge post within said hinge post aperture.
16. A prosthetic knee, comprising:
a femoral component;
a tibial component;
a meniscal component positioned between said femoral component and said tibial component, said femoral component including a condylar bearing surface, said meniscal component including a cooperative bearing surface facing said condylar bearing surface of said femoral component for contacting said condylar bearing surface, said femoral component rotatably connected to said tibial component;
a hinge pin having a longitudinal hinge pin axis;
a hinge post rotatably connected to said femoral component which includes said hinge pin passing through a hinge pin aperture in said hinge post for rotatably, hingedly connecting said hinge post to said femoral component so that rotation of said hinge post relative to said femoral component is defined about the longitudinal hinge pin axis, said meniscal component including an a hinge post aperture with a longitudinal hinge post aperture axis that is non-intersecting with said longitudinal hinge pin axis, said hinge post positioned within said hinge post aperture; and
a locking clip, said meniscal component including a locking clip aperture, said hinge post including a locking clip groove, said locking clip traversing said locking clip aperture and engaging said locking clip groove to retain said hinge post within said hinge post aperture.
0. 1. A prosthetic femoral component, comprising:
a femoral component body;
a hinge post having a longitudinal axis, said hinge post rotatably connected to said femoral component body, said hinge post rotatable relative to said femoral component body bout an axis of rotation, said hinge post including an elongate aperture, along said longitudinal axis aid elongate aperture transverse to said axis of rotation.
2. The prosthetic femoral component of claim 1, further comprising: A prosthetic knee assembly, comprising:
a femoral component body that includes a first internal side wall opposing a second internal side wall;
a hinge pin having a longitudinal hinge pin axis;
a hinge post positioned between the first internal side wall and the second internal side wall of the femoral component body and having a longitudinal hinge post axis, said hinge pin fixed to said femoral component body and passing through a hinge pin aperture in said hinge post for rotatably, hingedly connecting said hinge post to said femoral component body so that rotation of said hinge post relative to said femoral component body is defined about the longitudinal hinge pin axis, said hinge post including an elongate hinge post extension aperture along said longitudinal hinge post axis, said elongate hinge post extension aperture transverse to said longitudinal hinge pin axis; and
a hinge post extension removeably locked to said hinge post, said elongate hinge post extension aperture of said hinge post sized for placement of said hinge post extension therein, whereby said hinge post extension traverses a first end of said elongate hinge post extension aperture of said hinge post and protrudes from a second end of said elongate hinge post extension aperture of said hinge post.
3. The prosthetic femoral component knee assembly of claim 2, further comprising:
securing means for securing said hinge post extension to said hinge post further comprising a tibial component into which the hinge post extension can be received, wherein, when the femoral component is attached to a femur and the tibial component is attached to a tibia opposite the femur, said hinge post extension can be separated from said hinge post to allow rotation of said hinge post about said longitudinal hinge pin axis without having to rotate the femur or tibia about said longitudinal hinge pin axis.
4. The prosthetic femoral component knee assembly of claim 3, wherein said securing means comprises:
a male taper positioned on said hinge post extension; and
a female taper positioned in said elongate aperture, said male taper engageable in said female taper to secure said hinge post extension to said hinge post 2 including cooperating locking tapers removeably locking the hinge post extension to the hinge post.
5. The prosthetic femoral component knee assembly of claim 1 2, further comprising:
a bearing box connected to said femoral component body, said bearing box interposed between said hinge post and said femoral component body, said bearing box including a hyperextension stop, said hinge post including a hyperextension stop surface, said hyperextension stop contacting said hyperextension stop surface to prevent further hyperextension of the prosthetic femoral component body beyond a predetermined point of hyperextension.
6. The prosthetic femoral component knee assembly of claim 5, wherein said predetermined point of hyperextension comprises four degrees of hyperextension of the prosthetic knee femoral component body.
7. The prosthetic femoral component knee assembly of claim 5, wherein said hyperextension stop comprises a convex protrusion.
8. The prosthetic femoral component knee assembly of claim 5, wherein said hinge post includes an internal wall, said hyperextension stop surface comprising said internal wall of said hinge post.
0. 9. A prosthetic femoral component, comprising:
a femoral component body;
a hinge post rotatably connected to said femoral component body; and
a bearing box connected to said femoral component body, said bearing box interposed between said hinge post and said femoral component body, said bearing box including a hyperextension stop, said hinge post including a hyperextension stop surface, said hyperextension stop contacting said hyperextension stop surface to prevent further hyperextension of the prosthetic femoral component body beyond a predetermined point of hyperextension.
10. The prosthetic femoral component of claim 9, further comprising: A prosthetic knee assembly, comprising:
a femoral component body;
a hinge post rotatably connected to said femoral component body about a rotational axis;
a bearing box connected to said femoral component body, said bearing box interposed between said hinge post and said femoral component body, said bearing box including a hyperextension stop, said hinge post including a hyperextension stop surface, said hyperextension stop contacting said hyperextension stop surface to prevent further hyperextension of the prosthetic femoral component body beyond a predetermined point of hyperextension; and
a hinge post extension having a longitudinal axis and being removeably locked to said hinge post, an elongate aperture of said hinge post sized for placement of said hinge post extension therein, whereby said hinge post extension traverses a first end of said elongate aperture of said post and protrudes from a second end of said elongate aperture of said hinge post, wherein the longitudinal axis of said hinge post extension is non-intersecting with said rotational axis.
11. The prosthetic femoral component knee assembly of claim 10, further comprising:
securing means for securing said hinge post extension to said hinge post.
12. The prosthetic femoral component knee assembly of claim 11, wherein said securing means comprises:
a male taper positioned on said hinge post extension; and
a female taper positioned in said elongate aperture, said male taper engageable in said female taper to secure said hinge post extension to said hinge post.
13. The prosthetic femoral component knee assembly of claim 9 10, wherein said predetermined point of hyperextension comprises four degrees of hyperextension of the prosthetic femoral component body.
14. The prosthetic femoral component knee assembly of claim 9 10, wherein said hyperextension stop comprises a convex protrusion.
15. The prosthetic femoral component knee assembly of claim 9 10, wherein said hinge post includes an internal wall, said hyperextension stop surface comprising said internal wall of said hinge post.
0. 17. A prosthetic knee, comprising:
a femoral component;
a tibial component;
a meniscal component positioned between said femoral component and said tibial component, said femoral component including a condylar bearing surface, said meniscal component including a cooperative bearing surface facing said condylar bearing surface of said femoral component, said femoral component rotatably connected to said tibial component;
a hinge post extension, said hinge post extension rotatably connected to said femoral component, said hinge post extension including an annular groove; and
a tibial bushing including an annular locking protrusion and a retaining flange, said tibial component having a tibial bushing expansion groove, said retaining flange positioned in said tibial bushing expansion groove, said annular locking protrusion engaged in said annular groove.
0. 19. The prosthetic femoral component of claim 2, wherein said first end of said elongate aperture of said hinge post is positioned closer to said hinge pin than said second end of said elongate aperture so that said hinge post extension protrudes from said second end of said elongate aperture of said hinge post in a direction away from said hinge pin.
0. 20. The prosthetic femoral component of claim 10, wherein said first end of said elongate aperture of said hinge post is positioned closer to said femoral component body than said second end of said elongate aperture of said hinge post so that said hinge post extension protrudes from said second end of said elongate aperture of said hinge post in a direction away from said femoral component body.
0. 21. The prosthetic femoral component of claim 2, wherein said hinge pin includes a hexagonal indentation on a first end thereof, said first end being flush with said femoral component, said prosthetic femoral component further comprising a hinge pin plug positioned within said hexagonal indentation and being flush with said first end of said hinge pin.
0. 22. The prosthetic femoral component of claim 2, wherein said longitudinal hinge post axis is non-intersecting with said longitudinal hinge pin axis.

This is a continuation of application Ser. No. 09/771,061, filed Jan. 29, 2001, now U.S. Pat. No. 6,485,519.

1. Field of the Invention

The present invention relates to prosthetic joints, and, more particularly to a constrained prosthetic knee having a modular hinge post and a rotating bearing.

2. Description of the Related Art

Generally, the knee is formed by the pair of condyles at the distal portion of the femur, the lower surfaces of which bear upon the correspondingly shaped proximal surface plateau of the tibia. The femur and tibia are connected by means of ligaments such as, the posterior cruciate ligament, the lateral collateral ligament, the medial collateral ligament, and the anterior cruciate ligament. These ligaments provide stability to the joint formed by the femur and tibia (i.e., the knee).

In a broad sense, prosthetic knee joints can be considered either constrained or unconstrained. For the purposes of this discussion, constrained prosthetic knees include femoral and tibial prosthetic components which are mechanically linked or constrained to each other by a hinge structure. An unconstrained prosthetic knee includes femoral and tibial components which are not mechanically linked. An unconstrained knee utilizes the patient's existing ligaments to provide joint stability. With this in mind, constrained prosthetic knees have particular applicability to cases in which a patient has experienced ligament loss and/or the existing ligaments do not provide adequate support and stability to the knee.

Tibial components of a prosthetic knee can be formed as a one-piece configuration in which the tibial tray forms the meniscal component of the prosthetic knee. Various other prosthetic knees utilize a modular meniscal component separate from the tibial component. Devices utilizing modular meniscal components include those in which the meniscal component (i.e., tibial bearing surface) is fixed to the tibial tray portion of the tibial component and is incapable of movement relative thereto. Alternative devices utilize a modular meniscal component capable of movement relative to the tibial tray. Devices in which relative rotational movement occurs between the meniscal component and the tibial component are typically referred to as rotating bearing knees. Rotating bearing knees thus allow movement between the bearing (i.e., meniscal component) and the tibial tray, as well as movement between the femoral component and the tibial bearing.

Constrained knees of the prior art include constructions in which a hinge post extension is first positioned within a tibial component (with an end protruding therefrom) and is thereafter connected to the femoral component by positioning the hinge post (rotatably attached to the femoral component) over the top of the protruding end of the hinge post extension and thereafter connecting the hinge post extension to the hinge post, e.g., by threading the hinge post extension into the hinge post. After making this connection, the meniscal component is thereafter slid into position between the femoral component and the tibial component. Meniscal components utilized with these prior art prosthetic knees were fixed to the tibial component.

The present invention is directed to a constrained knee prosthesis with a rotating bearing. The knee prosthesis of the present invention is structured to facilitate implantation thereof. The present invention is further directed to a prosthetic knee implant set having a plurality of matched modular hinge post and meniscal component pairs.

The present invention provides an improved constrained knee prosthesis having a cannulated hinge post facilitating implantation of the knee prosthesis in a relatively minimally invasive procedure. The prosthetic knee implant set of the current invention includes a separately packaged femoral component, a separately packaged tibial component, and a third package containing a hinge post extension and the meniscal component. Packaging the individual components of a knee prosthesis in this fashion insures that the appropriate hinge post extension is readily available. A bearing box is interposed between the hinge post and the femoral component. The bearing box includes a hyperextension stop which cooperates with the hinge post to prevent hyperextension of the knee prosthesis. Various structures are utilized to prevent the disengagement of the constrained knee prosthesis of the present invention.

A prosthetic knee constructed in accordance with the present invention includes a femoral component having a pair of condyler surfaces and a hinge post rotatably connected to the femoral component between the condyler surfaces. The hinge post is cannulated and accommodates insertion of a hinge post extension shaft therein. The hinge post and hinge post extension include cooperating locking tapers for locking the hinge post extension to the hinge post. Additionally, the hinge post includes internal threads so that a set screw may be threaded therein to further hold the hinge post extension in place. The tibial component includes a hinge post extension aperture into which the hinge post is seated. The meniscal component similarly includes an aperture to accommodate the hinge post and hinge post extension. The meniscal component of the current invention is free to rotate about the hinge post during flexion and extension of the knee joint.

Having a cannulated hinge post through which a hinge post extension may be anteriorly positioned and secured advantageously allows for a relatively minimally invasive knee replacement procedure.

The present invention advantageously provides a constrained prosthetic knee having a rotating bearing flush with the condyler surfaces of the femoral component.

Another advantage of the present invention is the packaging of the prosthesis components and specifically the packaging of the appropriate hinge post extension together with a meniscal component.

The above-mentioned and other features and advantages of this invention, and the manner of attaining of them, will become more apparent and the invention itself will be better understood by reference to the following description of an embodiment of the invention taken in conjunction with the accompanying drawings, wherein:

FIG. 1 is a perspective view of an assembled knee prosthesis in accordance with the present invention;

FIG. 2 is an exploded view thereof;

FIG. 3 is a cutaway, exploded view illustrating assembly of the knee prosthesis of the current invention including the anterior positioning of the hinge post extension into the hinge post;

FIG. 4 is a cutaway view illustrating securement of the hinge plug (i.e., set screw) in the hinge post to facilitate locking of the hinge post extension therein;

FIG. 5 is a cutaway, exploded view illustrating removal of the hinge post extension;

FIG. 6 is a bottom elevational view of the meniscal component of the present invention;

FIG. 7 is a front elevational view thereof;

FIG. 8 is a top elevational view of a tibial component in accordance with the present invention;

FIG. 9 is a sectional view of a hinge plug in accordance with the present invention;

FIG. 10 is a side elevational view of a bearing box in accordance with the present invention;

FIG. 11 is a front elevational view thereof;

FIG. 12 is a top elevational view thereof;

FIG. 13 is a cutaway, exploded view of an alternative embodiment of the knee prosthesis of the present invention;

FIG. 14 is a cutaway view of an assembled knee prosthesis in accordance with the embodiment illustrated in FIG. 13;

FIG. 15 is a fragmentary, cutaway view of an alternative embodiment of the hinge post extension and tibial bushing of the present invention;

FIG. 16 is a fragmentary, cutaway view of the embodiment of FIG. 15 illustrating insertion of the hinge post extension into the tibial bushing;

FIG. 17 is a fragmentary, cutaway view of the embodiment of FIG. 15 illustrating the hinge post extension fully inserted into the tibial bushing;

FIG. 18 is an exploded view of an alternative embodiment of the knee prosthesis of the current invention;

FIG. 19 is a sectional view of a meniscal component in accordance with an alternative embodiment of the present invention; and

FIG. 20 is an elevational view of a hinge post in accordance with an alternative embodiment of the present invention.

Corresponding reference characters indicate corresponding parts throughout the several views. Although the drawings represent embodiments of the invention, the drawings are not necessarily to scale and certain features may be exaggerated to better illustrate and explain the invention. The exemplifications set out herein illustrate embodiments of the invention, in alternative forms, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.

Referring now to the drawings and particularly to FIG. 2, knee prosthesis 20 in accordance with the present invention is illustrated. Knee prosthesis 20 generally includes femoral component 22, tibial component 24, and meniscal component 26. Hinge post 40 is rotatably connected to femoral component 22 and includes elongate hinge post extension aperture 112 (FIGS. 3-6, 13, and 14). Elongate aperture 112 accommodates placement of hinge post extension 42 therein. Hinge post extension 42 thereafter traverses hinge post aperture 114 in meniscal component 26 and hinge post extension aperture 110 (FIGS. 3-6, 13 and 14) in tibial component 24. Elongate hinge post extension aperture 112 of hinge post 40 advantageously allows for anterior placement of hinge post extension 42 during surgical implantation of knee prosthesis 20 of the present invention.

As illustrated in FIG. 2, hinge post extension 42 includes locking taper 46 and cylindrical extension 48. Hinge post extension aperture 112 includes a mating locking taper to cooperate with locking taper 46 and lock hinge post extension 42 to hinge post 40. After positioning of hinge post extension 42 through apertures 112, 114, and 110, hinge plug 38 may be threaded into hinge plug threads 54 in elongate aperture 112 of hinge post 40 (FIG. 4). Hinge plug 38 abuts the end of hinge post extension 42 and thereby facilitates locking of morse taper 46 in elongate aperture 112. In one exemplary embodiment, locking taper 46 comprises a two degree locking taper. When prosthetic knee 20 is assembled as illustrated in FIG. 1, condyler bearing surfaces 28, 30 abut bearing surfaces 86, 88 (see, e.g., FIG. 2) in meniscal component 26.

Hinge post extension 42 is typically formed as a one-piece construction of an inert metal such as, e.g., a cobalt-chromium alloy. Hinge post extension 42 may, however, be constructed of other bio-compatible metals or alloys, such as titanium. Throughout this document reference will be made to various components formed of a cobalt-chromium alloy. Any such component may also be constructed of other bio-compatible metals or alloys such as titanium, as is well-known. As illustrated in FIG. 4, hinge plug wrench 102 is utilized to thread hinge plug 38 into hinge plug threads 54 of hinge post 40. As illustrated in FIG. 9, hinge plug 38 includes locking material 100 to provide a locking connection between hinge plug 38 and hinge plug threads 54 in hinge post 40. Hinge plug 38 is, in one exemplary embodiment formed of a cobalt-chromium alloy. Locking material 100 comprises any suitable biocompatible polymer such as, e.g., ultra-high molecular weight polyethylene (UHMWPE).

As illustrated, e.g., in FIG. 2, femoral component 22 includes condyler bearing surfaces 28, 30 with bearing box wall 76 positioned therebetween. Femoral component 22 further includes external side walls 82, only one of which can be seen in FIG. 2. Condyler bearing surfaces 28, 30 are smooth and highly polished, generally spheroidally shaped and extend outwardly from external side walls 82, as is well known in the industry. Femoral component 22 further includes modular femoral stem 32 for insertion into femur 116 (FIGS. 3-5, 13, and 14), as is known in the art. Femoral component 22 further includes internal side walls 80, only one of which is illustrated in FIG. 2. Internal side walls 80 are substantially perpendicular to bearing box wall 76 and extend outwardly therefrom. Femoral component 22 is typically formed as a one-piece construction of an inert metal such as, e.g., a cobalt-chromium alloy.

Bearing box 70 is designed for placement between condyler bearing surfaces 28, 30 of femoral component 22 as illustrated, e.g., in FIG. 1. Bearing box 70 is further illustrated in FIGS. 10-12 and includes affixing protrusions 72, hinge pin aperture 62, hyperextension stop 66, and anti-rotation surface 78. As illustrated in FIG. 2, femoral component 22 includes affixing protrusion apertures 74 sized to receive affixing protrusions 72. FIG. 1 illustrates bearing box 70 operably positioned on femoral component 22, with anti-rotation surface 78 flush with bearing box wall 76 of femoral component 22, and affixing protrusions 72 received in affixing protrusion apertures 74. The abutting relationship of anti-rotation surface 78 with bearing box wall 76 discourages rotation of bearing box 70 about the longitudinal axis of affixing protrusions 72. When bearing box 70 is positioned on femoral component 22, hinge pin apertures 62 of bearing box 70 align with threaded hinge pin aperture 56 and hinge pin aperture 58 of femoral component 22. Bearing box 70 can be formed of any suitable plastic, such as, e.g., UHMWPE.

Hinge post 40 is rotatably connected to femoral component 22 via hinge pin 34. Hinge post 40 is placed between opposing walls of bearing box 70 and is positioned so that hinge pin aperture 52 is aligned with apertures 56, 58, and 62. The opposing walls of bearing box 70 thus act as a bearing surface between hinge post 40 and internal side walls 80 of femoral component 22. Prior to placement of hinge post 40 between opposing walls of bearing box 70, hinge pin sleeve 36 is operably positioned within hinge pin aperture 52 of hinge post 40. Hinge post 40 is formed from a cobalt-chromium alloy, while hinge pin sleeve 36 is formed from a suitable plastic, such as, e.g., UHMWPE. Hinge pin sleeve 36 acts as a bearing between hinge pin aperture 52 of hinge post 40 and hinge pin 34. Accordingly, hinge pin sleeve 36 includes hinge pin aperture 50 sized to accommodate hinge pin 34. After positioning of hinge post 40 between the opposing walls of bearing box 70, hinge pin 34 is positioned through apertures 56, 62, 50, and 58. Hinge pin threads 60 are thereafter threadedly engaged in the threads of threaded hinge pin aperture 56 until the head of hinge pin 34 is flush with external side wall 82.

As illustrated in FIG. 1, hinge pin plug 120 is positioned within the hexagonal indentation of hinge pin 34 after installation of hinge pin 34 as described above. When positioned within the hexagonal indentation of hinge pin 34, hinge pin plug 120 is flush with the head of hinge pin 34. In use, hinge pin plug 120 substantially prohibits the entry of foreign materials into the hexagonal indentation of hinge pin 34. For example, hinge pin plug 120 substantially prohibits bone growth into the hexagonal indentation of hinge pin 34, as well as prohibiting positioning of bone cement therein. The above-described connection of hinge post 40 to femoral component 22 is performed prior to implantation of femoral component 22. Femoral component 22 is packaged and sold with bearing box 70, hinge post 40, hinge pin sleeve 36, hinge pin 34, and hinge pin plug 120 preassembled as described above, with the assembly preferably occurring in the manufacturing environment.

Pre-assembly of hinge post 40 to femoral component 22 eliminates a number of meticulous assembly steps (many of which were performed during implantation) which were required with constrained knees of the prior art. Furthermore, the assembly of hinge post 40 and femoral component 22 as described above facilitates replacement of various portions of knee prosthesis 20. Specifically, the threaded connection of hinge pin 34 to femoral component 22 allows for removal and replacement of various components of knee prosthesis including, e.g., bearing box 70, hinge pin sleeve 36, and hinge post 40.

In use, femoral bone stock may abut external side walls 82 of femoral component 22 and extend to the underside of condyler bearing surfaces 28, 30. To remove hinge pin 34, a hole saw is utilized to remove a relatively small portion of femoral bone stock to provide access to hinge pin 34. Advantageously, femoral component 22 does not require extensive removal of femoral bone stock for implantation thereof (since bone stock can extend to the underside of condylar bearing surfaces 28, 30), and, furthermore, does not require removal of femoral component 22 to effect replacement of, e.g., hinge post 40, bearing box 70, or hinge pin sleeve 36. Upon accessing hinge pin 34 (e.g., utilizing a hole saw as described above), hinge pin plug 120 is removed, e.g., with a scalpel and forceps to provide access to the hexagonal indentation of hinge pin 34 so that a hexagonal wrench may be inserted therein to unthread hinge pin 34 from femoral component 22.

Knee prosthesis 20 includes a pair of hyperextension stop mechanisms. The first hyperextension stop comprises a portion of condylar bearing surfaces 28, 30 of increased radius of curvature as compared to the remaining condylar bearing surface. At three degrees of hyperextension this portion of increased radius of curvature will contact meniscal component 26 and act to retard further hyperextension. If hyperextension continues, the area of increased radius of curvature will cause femoral component 22 to lift away from meniscal component 26. The second hyperextension stop mechanism functions at four degrees of hyperextension to prohibit further hyperextension of knee prosthesis 20. The second hyperextension stop mechanism comprises hyperextension stop surface 66 of hinge post 40 and hyperextension stop 68 of bearing box 70. Hyperextension stop surface 66 comprises the concave back wall of cannulated hinge post 40 as illustrated, e.g., in FIGS. 2 and 3. Hyperextension stop 68 of bearing box 70 comprises a protrusion extending from the back wall of bearing box 70 opposite anti-rotation surface 78. Hyperextension stop 68 includes a convex outer surface as illustrated, e.g., in FIG. 12. Hyperextension stop surface 66 of hinge post 40 cooperates with hyperextension stop 68 of bearing box 70 to provide a hyperextension stop for knee prosthesis 20. Concave hyperextension stop surface 66 becomes flush with the convex outer surface of hyperextension stop 68 of bearing box 70 at four degrees of hyperextension to prevent further hyperextension of knee prosthesis 20.

Tibial component 24 is depicted in FIGS. 1-5, 8, 13, and 14. As illustrated, e.g., in FIG. 2, tibial component 24 includes tibial tray 98 connected to tibial stem 92. Stabilizing ribs 94 stabilize tibial tray 98 relative to tibial stem 92 and impede rotation of tibial component 24 in tibia 118 (see, e.g., FIG. 3). In one exemplary embodiment, tibial component 24 is formed from a cobalt-chromium alloy. Tibial component 24 further includes tibial bushing 64 positioned within hinge post extension aperture 110. Tibial bushing 64 is formed of plastic, such as, e.g., UHMWPE and provides a bearing surface between hinge post extension 42 and hinge post extension aperture 110 of tibial component 24. As described above, meniscal component 26 comprises a rotating bearing, and, thus, hinge post extension 42 will rotate relative to tibial component 24. Tibial bushing 64 facilitates this rotation of hinge post extension 42.

Tibial component 24 further includes rotation protrusion 96. As illustrated, e.g., in FIG. 3, rotation protrusion 96 protrudes upwardly from tibial tray 98 of tibial component 24 and further extends in a plane substantially parallel to tibial tray 98. Rotation protrusion 96 cooperates with cutout 90 of meniscal component 26 to guide rotation of meniscal component 26 about hinge post extension 42, as further described hereinbelow.

One embodiment of meniscal component 26 is illustrated in FIGS. 1-7, 13, and 14. Meniscal component 26 is formed from a suitable plastic such as, e.g., UHMWPE and provides a rotating bearing surface between femoral component 22 and tibial component 24. Meniscal component 26 includes bearing surfaces 86, 88 which contact condylar bearing surfaces 28, 30 of femoral component 22 during movement of knee prosthesis 20. As described above, meniscal component 26 further includes hinge post aperture 114 accommodating passage of hinge post 40 and, consequently, hinge post extension 42 therethrough. Meniscal component 26 is operable to rotate about the longitudinal axis of hinge post extension 42 to form a rotating bearing.

Meniscal components of varying heights may be constructed in accordance with the present invention. In one advantageous aspect of the present invention, meniscal component 26 is packaged for sale and use together with hinge post extension 42 to facilitate component choice and, in one embodiment, to ensure proper extension of hinge post extension 42 into tibial component 24. The extension of hinge post extension 42 into tibial component 24 functions to prevent separation of knee prosthesis 20 after implantation thereof. As is known in the art, the femoral component of a knee prosthesis may, in some situations, move relative to and away from the tibial component in a direction parallel to the longitudinal axis of the hinge post extension. With this in mind, hinge post extension 42 is made to be of sufficient length to be retained within tibial component 24 even in situations in which femoral component 22 moves as described immediately supra. In one exemplary embodiment, hinge post extension 42 extends four centimeters into hinge post extension aperture 110 in tibial component 24.

Meniscal component 26 includes cutout 90 which cooperates with rotation protrusion 96 of tibial component 24 to guide rotation of meniscal component 26 and to resist lifting of meniscal component 26 from tibial tray 98 of tibial component 24. As illustrated, e.g., in FIG. 3, cutout 90 accommodates the portion (i.e., lip) of rotation protrusion 96 extending in a plane substantially parallel to the plane containing tibial tray 98, with a portion (i.e., lip) of meniscal component 26 being positioned between rotation protrusion 96 and tibial tray 98 in a direction substantially perpendicular to the plane containing tibial tray 98. This configuration functions to discourage displacement of meniscal component 26 away from tibial tray 98 in a direction parallel to the longitudinal axis of hinge post extension 42. Furthermore, rotation protrusion 96 acts against the back of cutout 90 to limit rotation of meniscal component 26 about the longitudinal axis of hinge post extension 42.

As illustrated in FIG. 5, meniscal component 26 may be slid out from between tibial component 24 and femoral component 22 when the hinge post extension 42 has been removed from knee prosthesis 20. As illustrated, hinge post aperture 114 is sized to allow rotation of hinge post 40 so that meniscal component 26 may be slid out from its position between femoral component 22 and tibial component 24. This configuration allows for replacement of an implanted meniscal component 26 without requiring removal of hinge post 40. FIG. 5 illustrates removal of hinge post extension 42 to accommodate replacement of meniscal component 26. As illustrated, hinge plug wrench 102 engages hinge plug 38 for removal thereof. After removal of hinge plug 38, slap hammer 104 is threadedly engaged with threaded aperture 44 in hinge post extension 42. Slap hammer 104 may then be utilized to unlock the engagement of locking taper 46 in elongate hinge post extension aperture 112 so that hinge post extension 42 may be removed.

FIGS. 13 and 14 illustrate an alternative embodiment of the knee prosthesis of the current invention. This alternative embodiment utilizes hinge post extension 42a having locking taper 46a, cylindrical extension 48a, and flange 106. In this embodiment, a locking instrument may be utilized to apply force atop hinge post extension 42a so that locking taper 46a is seated in elongate hinge post extension aperture 112 and locked therein. Flange 106 may be utilized to facilitate removal of hinge post extension 42a. As illustrated in FIG. 13, set screw 108 may be utilized as a secondary lock for hinge post extension 42a. In all other respects, the knee prosthesis illustrated in FIGS. 13 and 14 is constructed as described above with respect to the first embodiment of the knee prosthesis in accordance with the present invention.

FIGS. 15, 16 and 17 illustrate an alternative embodiment of the hinge post extension and tibial bushing of the present invention. In this embodiment, tibial component 24a includes annular tibial bushing expansion groove 122 formed in hinge post extension aperture 110. Tibial bushing 64a includes retaining flange 130 positioned within annular tibial bushing expansion groove 122. FIG. 15 illustrates insertion of cylindrical extension 48b of the hinge post extension into tibial bushing 64a positioned within tibial component 24a. As cylindrical extension 48b proceeds into tibial bushing 64a, bevel 126 contacts annular locking protrusion 128 of tibial bushing 64a and causes outward movement of retaining flange 130 to allow cylindrical extension 48b to proceed to its seated position as illustrated in FIG. 17. Annular tibial bushing expansion groove 122 is sized to allow radial expansion of retaining flange 130 to accommodate placement of cylindrical extension 48b within tibial bushing 64a. In the fully seated position (FIG. 17) cylindrical extension 48b is locked in place by the engagement of annular locking protrusion 128 in annular locking groove 124. Furthermore, retaining flange 130 cooperates with annular tibial bushing expansion groove 122 to prohibit axial displacement of tibial bushing 64a and, consequently, cylindrical extension 48b. In this embodiment, the femoral component is retained in abutting relationship to the meniscal component and lift off of the femoral component is substantially prohibited. Tibial bushing 64a is, in one exemplary embodiment, formed of UHMWPE

FIGS. 18 and 19 illustrate another alternative embodiment of the knee prosthesis of the current invention. In this embodiment, locking clip 134 is utilized to retain the position of hinge post 40b within hinge post aperture 114 of meniscal component 26a. Hinge post 40b is rotatably attached to femoral component 22 utilizing hinge pin 34 as described above. In this embodiment, hinge post 40b includes locking clip grooves 132, and meniscal component 26a includes locking clip apertures 136. Upon positioning of hinge post 40b within hinge post aperture 114, locking clip 134 is positioned as illustrated in FIG. 19 with each prong of locking clip 134 being inserted into locking clip apertures 136 of meniscal component 26a. As illustrated in FIG. 19, locking clip 134 engages locking clip grooves 132 to retain hinge post 40b within hinge post aperture 114 of meniscal component 26a. In this embodiment, lift off of femoral component 22 is prohibited by the engagement of hinge post 40b with meniscal component 26a. This embodiment of the knee prosthesis of the current invention may further utilize a meniscal component cutout together with a rotation protrusion on the tibial component to resist lifting of the meniscal component from the tibial tray as described above.

FIG. 20 illustrates a further alternative embodiment of the hinge post of the present invention. Hinge post 40c illustrated in FIG. 20 includes reinforcing material 138 to strengthen hinge post 40c.

While this invention has been described as having exemplary designs, the present invention may be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains.

Bays, Rodney L., Cook, Michael, Figueroa, Marvin, Meyers, John E., Walker, Peter S., Webster, Vincent A., Windsor, Russell, Griner, Adam M., Aikins, Jerry L., Sisk, Bill N., Haywood, Bill H., Letson, George D

Patent Priority Assignee Title
10470888, Mar 05 2015 CORENTEC CO , LTD Insert unit for artificial knee joint
10675153, Mar 10 2017 ZIMMER, INC Tibial prosthesis with tibial bearing component securing feature
10835380, Apr 30 2018 Zimmer, Inc. Posterior stabilized prosthesis system
10898337, Nov 18 2011 Zimmer, Inc. Tibial bearing component for a knee prosthesis with improved articular characteristics
11160659, Sep 21 2015 Zimmer, Inc. Prosthesis system including tibial bearing component
11224519, Jul 24 2010 Zimmer, Inc. Asymmetric tibial components for a knee prosthesis
11324598, Aug 30 2013 Zimmer, Inc. Method for optimizing implant designs
11324599, May 12 2017 Zimmer, Inc. Femoral prostheses with upsizing and downsizing capabilities
11426282, Nov 16 2017 Zimmer, Inc.; ZIMMER, INC Implants for adding joint inclination to a knee arthroplasty
11471288, Sep 10 2010 Zimmer, Inc. Motion facilitating tibial components for a knee prosthesis
11547571, Mar 10 2017 Zimmer, Inc. Tibial prosthesis with tibial bearing component securing feature
11911279, Apr 30 2018 Zimmer, Inc. Posterior stabilized prosthesis system
8888857, Jan 29 2001 Zimmer, Inc. Constrained prosthetic knee with rotating bearing
9833323, Jul 10 2009 Aesculap AG Knee joint prosthesis and related method
9999512, Jul 10 2009 Aesculap AG Knee joint prosthesis and related method
Patent Priority Assignee Title
1504903,
2183076,
3696446,
3708805,
3813700,
3816853,
3824630,
3837009,
3869729,
3909854,
3918101,
3924277,
3934272, Nov 19 1974 The University of Melbourne Knee prosthesis
3996624, Feb 28 1975 ALLIED MEDICAL CORPORATION A DE CORP Prosthetic knee joint
4016606, Jul 14 1975 Research Corporation Knee joint prosthesis
4064568, Nov 06 1975 Sanitatshaus Schuutt & Grundei Knee-joint endoprostheses
4092740, Oct 03 1975 Articulated joint prosthesis
4094017, Feb 16 1977 Knee joint prosthesis with patellar-femoral contact
4112522, Nov 04 1975 ARMAN DADURIAN Knee-joint prosthesis
4134158, Aug 22 1977 Laure Prosthetics, Inc. Knee joint prosthesis
4136405, Apr 29 1977 Zimmer U.S.A. Rotational offset knee prosthesis
4215439, Oct 16 1978 Zimmer, USA Semi-restraining knee prosthesis
4216549, Jun 02 1977 Purdue Research Foundation Semi-stable total knee prosthesis
4219893, Aug 15 1975 ALLIED MEDICAL CORPORATION A DE CORP Prosthetic knee joint
4224697, Sep 08 1978 KAMPNER, STANLEY L , M D Constrained prosthetic knee
4257129, May 21 1979 Prosthetic knee joint tibial implant
4262368, Sep 24 1979 WRIGHT MEDICAL TECHNOLOGY, INC Rotating and hinged knee prosthesis
4268920, Oct 05 1977 GMT Gesellschaft fur med. Technik mbH Endoprosthesis for a knee joint
4301553, Aug 15 1975 ALLIED MEDICAL CORPORATION A DE CORP Prosthetic knee joint
4340978, Jul 02 1979 BIOMEDICAL ENGINEERING TRUST, A CORP OF NEW JERSEY New Jersey meniscal bearing knee replacement
4358859, Oct 04 1979 Articulated prosthetic knee and method for implanting same
4383337, Oct 22 1980 ZIMMER USA, INC , A CORP OF DE Elbow prosthesis
4404691, Mar 11 1980 HOWMEDICA INTERNATIONAL INC , SHANNON INDUSTRIAL ESTATE, SHANNON, CO Modular prosthesis assembly
4462120, Jul 06 1981 Total knee prosthesis
4538305, May 19 1981 GMT GESELLSCHAFT FUR MEDIZINISCHE TECHNIK MBH HOLSTENSTRASSE 2, D-2000 HAMBURG 50, GERMANY A COMPANY OF GERMANY; WALDEMAR LINK GMBH & CO BARHAUSENWEG 10, D-2000 HAMBURG 63, GERMANY A GERMAN COMPANY Articulated prosthesis
4578081, May 24 1982 HOWMEDICA INTERNATIONAL S DE R L Bone prosthesis
4655778, Aug 12 1985 Harrington Arthritis Research Center Joint prosthesis
4662889, Apr 28 1983 Stora Feldmuhle Aktiengesellschaft; Cerasiv GmbH Innovatives Keramik-Engineering Knee joint prosthesis
4764171, Feb 17 1982 Howmedica International Inc. Bone prosthesis assembly for a knee joint
4790853, Jul 15 1982 WALDEMAR LINK GMBH & CO Knee joint prosthesis
4790854, May 24 1982 HOWMEDICA INTERNATIONAL S DE R L Bone prosthesis assembly
4822366, Oct 16 1986 DePuy Orthopaedics, Inc Modular knee prosthesis
4828564, Mar 22 1983 British Technology Group Limited Endoprosthetic bone joint devices
4834758, May 26 1988 NEW YORK SOCIETY FOR THE RELIEF OF THE RUPTURED AND CRIPPLED, MAINTAINING THE HOSPITAL FOR SPECIAL SURGERY, 535 EAST 70TH STREET, NEW YORK, NEW YORK 10021, A NOT-FOR-PROFIT CORP OF NY Bone prosthesis for the leg and thigh
4865606, Aug 13 1987 Friedrichsfeld GmbH Endoprosthesis for a knee-joint
4888021, Feb 02 1988 Joint Medical Products Corporation Knee and patellar prosthesis
4919660, Oct 14 1986 S N R ROULEMENTS Prosthetic knee joint with roller bearings
4923472, Jan 22 1988 SALUS S R L Artificial knee-joint
4936853, Jan 11 1989 Biomet Manufacturing Corp Modular knee prosthesis
4938769, May 31 1989 Modular tibial prosthesis
4944757, Nov 07 1988 Implex Corporation Modulator knee prosthesis system
4950298, Apr 08 1988 NESTLE S A Modular knee joint prosthesis
5007933, Jan 31 1989 HOWMEDICA OSTEONICS CORP Modular knee prosthesis system
5011496, Feb 02 1988 Joint Medical Products Corporation Prosthetic joint
5015255, May 10 1989 ZIMMER SPINE, INC Spinal stabilization method
5019103, Feb 05 1990 DE PUY, INC Tibial wedge system
5037439, Apr 11 1988 Aktiebolaget Astra Knee-joint prosthesis
5061271, Feb 27 1989 DePuy Orthopaedics, Inc Tool for separating components of a modular joint prosthesis
5116375, Aug 27 1990 ZIMMER, INC Knee prosthesis
5123928, Jul 07 1989 Eska Medical Luebeck Medizintechnik GmbH Knee joint endoprosthesis
5139521, Jan 27 1990 Ingrid Schelhas Knee prosthesis
5171283, Jul 11 1989 Biomedical Engineering Trust Compound shape rotating bearing
5180383, Oct 09 1991 Method and device for attaching artificial joint implants to the ends of bones
5194066, Jan 11 1988 DePuy Orthopaedics, Inc Modular joint prosthesis
5246459, Feb 24 1992 Modular tibial support pegs for the tibial component of a prosthetic knee replacement system
5282867, May 29 1992 Prosthetic knee joint
5290313, Nov 23 1992 ZIMMER TECHNOLOGY, INC Offset prosthetic stem extension
5314481, Nov 12 1992 WRIGHT MEDICAL TECHNOLOGY, INC Hinged knee prosthesis with extended patellar track
5326368, Sep 22 1992 HOWMEDICA OSTEONICS CORP Modular acetabular cup
5330534, Feb 10 1992 Biomet Manufacturing Corp Knee joint prosthesis with interchangeable components
5358527, Mar 22 1991 IMPLANTOLOGY LLC Total knee prosthesis with resurfacing and posterior stabilization capability
5370700, Feb 19 1993 Prosthetic knee joint
5370701, Sep 28 1990 Biomet Manufacturing Corp Rotating/sliding contrained prosthetic knee
5387240, Nov 14 1990 Arch Development Corporation Floating bearing prosthetic knee
5395401, Jun 17 1991 Prosthetic device for a complex joint
5405398, Aug 30 1993 ZIMMER, INC Prosthetic knee with posterior stabilized femoral component
5411555, Jun 11 1991 WALDEMAR LINK GMBH & CO Knee joint prosthesis kit
5413607, Nov 29 1990 WALDEMAR LINK GMBH & CO Knee joint prosthesis
5427586, May 07 1992 Ingrid, Schelhas Knee-joint endoprosthesis
5458644, Dec 18 1991 Eska Medical GmbH & Co Knee joint endoprosthesis
5489307, Feb 10 1993 ZIMMER SPINE, INC Spinal stabilization surgical method
5489311, Jan 21 1994 Joint Medical Products Corporation Prosthesis with orientable bearing surface
5549687, Dec 10 1992 Wright Medical Technology, Inc. Retrofit posterior stabilizing housing implant for replacement knee prosthesis
5549689, Nov 28 1994 Prosthetic knee
5609639, Feb 04 1991 ZIMMER, INC Prosthesis for knee replacement
5609643, Mar 13 1995 Johnson & Johnson Professional, Inc. Knee joint prosthesis
5658342, Nov 16 1992 Arch Development Corporation Stabilized prosthetic knee
5683468, Mar 13 1995 Biomedical Engineering Trust I Mobile bearing total joint replacement
5702458, Dec 09 1994 New York Society for the Ruptured and Crippled Maintaining the Hospital for Special Surgery Joint prosthesis
5702466, Feb 25 1994 Biomedical Engineering Trust I Rotational and translational bearing combination in biological joint replacement
5725580, Dec 16 1994 Exactech, Inc. Hole caps for prosthetic implants
5755804, Feb 21 1996 SMITH & NEPHEW ORTHOPAEDICS AG Endoprosthetic knee joint
5766257, Jan 28 1997 ZIMMER TECHNOLOGY, INC Artificial joint having natural load transfer
5772661, Jun 13 1988 Warsaw Orthopedic, Inc Methods and instrumentation for the surgical correction of human thoracic and lumbar spinal disease from the antero-lateral aspect of the spine
5776200, Feb 15 1995 Smith & Nephew, Inc. Tibial trial prosthesis and bone preparation system
5776201, Oct 02 1995 DePuy Orthopaedics, Inc Modular femoral trial system
5800552, Mar 22 1991 IMPLANTOLOGY LLC Mechanically linked hinged total knee prosthesis
5824096, Dec 12 1994 Biomedical Engineering Trust I Hinged knee prosthesis with condylar bearing
5824102, Jun 19 1992 PERMEDICA S P A Total knee prosthesis
5879392, May 08 1996 Knee prosthesis
5879394, May 28 1996 STRYKER EUROPEAN HOLDINGS III, LLC Tibial element for a replacement knee prosthesis
5906643, Jul 28 1994 ZIMMER, INC Stabilised mobile bearing knee
5954770, Feb 21 1996 SMITH & NEPHEW ORTHOPAEDICS AG Endoprosthetic knee joint
5964808, Jul 11 1996 MICROPORT ORTHOPEDICS HOLDINGS INC Knee prosthesis
6004352, Jan 10 1997 Sulzer Orthopaedie AG Tibia platform for an artificial knee joint
6013103, Jul 11 1996 MICROPORT ORTHOPEDICS HOLDINGS INC Medial pivot knee prosthesis
6019794, Mar 15 1993 University College London Total knee replacement prosthesis
6080195, Jul 08 1998 DePuy Orthopaedics, Inc Rotatable and translatable joint prosthesis with posterior stabilization
6099570, Oct 28 1997 Sulzer Orthopaedie AG Knee joint prothesis
6099571, Jul 16 1997 Joint prosthesis
6117175, Aug 22 1994 Spherical knee joint prosthesis
6126692, Jun 25 1998 ORTHOPEDIC INNOVATIONS INC Retaining mechanism for a modular tibial component of a knee prosthesis
6143034, Jul 30 1998 ZIMMER, INC Implantable hinged knee prosthesis having tibial baseplate
6162255, Oct 15 1998 DePuy Orthopaedics, Inc Stem offset mechanism for joint prosthesis
6171342, Jul 23 1996 DePuy Orthopaedics, Inc Medical fastening system
6264696, Jan 04 1999 Aesculap Tibial knee prosthesis comprising a ball joint with double inserts
6267763, Mar 31 1999 HOWMEDICA OSTEONICS CORP Method and apparatus for spinal implant insertion
6296666, Mar 13 2000 ENCORE MEDICAL, L P Mobile bearing knee with center post
6306171, Dec 09 1998 IOWA STATE UNIVERSITY RESEARCH FOUNDATION, INC Total elbow arthroplasty system
6306172, Jan 28 1999 Johnson & Johnson Professional, Inc. Modular tibial insert for prosthesis system
6319283, Jul 02 1999 ZIMMER TECHNOLOGY, INC Tibial knee component with a mobile bearing
6361564, Feb 02 1999 Aesculap AG Total knee joint comprising an insert movable relative to a tenon
6428577, May 20 1998 Smith & Nephew, Inc Mobile bearing knee prosthesis
6436145, Jun 02 2000 ZIMMER TECHNOLOGY, INC Plug for a modular orthopaedic implant and method for assembly
6443991, Sep 21 1998 Depuy Orthopaedics, Inc. Posterior stabilized mobile bearing knee
6447549, Oct 06 2000 ZIMMER, INC Modular knee prosthesis system
6485519, Jan 29 2001 ZIMMER, INC Constrained prosthetic knee with rotating bearing
6491726, Mar 08 2000 Biomedical Engineering Trust I Posterior stabilized prosthetic knee replacement with bearing translation and dislocation prevention features
6500208, Oct 16 1998 BIOMET INC , A CORP OF THE STATE OF INDIANA Nonmodular joint prosthesis convertible in vivo to a modular prosthesis
6506215, May 12 1998 Synthetic knee system
6620198, Oct 07 1999 Exactech, Inc Composite bearing inserts for total knee joints
6629999, Mar 08 1999 ZIMMER TECHNOLOGY, INC Modular joint
6652588, Jul 20 2000 CONSENSUS ORTHOPEDICS, INC Bimetal tibial component construct for knee joint prosthesis
6719800, Jan 29 2001 ZIMMER, INC Constrained prosthetic knee with rotating bearing
6743258, Nov 09 1999 Waldemar Link (GmbH & Co.) Knee prosthesis system
6755864, Sep 24 1999 CENTERPULSE ORTHOPEDICS LTD Tibia part for a knee joint prosthesis and a kit with a tibia part of this kind
6770097, Dec 13 1999 CENTERPULSE ORTHOPEDICS LTD Kit for a knee joint prosthesis
6773461, Jan 29 2001 ZIMMER, INC Constrained prosthetic knee with rotating bearing
6984249, Apr 25 2001 WALDEMAR LINK GMBH & CO KG Knee prosthesis with a flexion hinge
7070622, Jul 03 2002 Biomet Manufacturing, LLC Prosthesis having a modular soft tissue fixation mechanism
7172628, Jul 27 2004 Lamprich Medical, LLC Spinal disc prosthesis and methods
7175665, Sep 09 2002 DePuy Products, Inc. Universal tibial augment
7232465, Jul 26 2002 WALDEMAR LINK GMBH & CO KG Knee prosthesis
7326252, Dec 20 2002 Smith & Nephew, Inc High performance knee prostheses
7357817, May 19 2005 Howmedica Osteonics Corp. Modular keel tibial component
7569054, Feb 27 1995 Warsaw Orthopedic, Inc Tubular member having a passage and opposed bone contacting extensions
7572292, Dec 21 2001 Smith & Nephew, Inc Hinged joint system
7591855, Apr 25 2001 WALDEMAR LINK GMBH & CO KG Knee prosthesis with rotation bearing
7658767, Jun 30 2006 DEPUY IRELAND UNLIMITED COMPANY Hinged orthopaedic prosthesis
7753960, Feb 26 2004 OMNI LIFE SCIENCE, INC Modular knee prosthesis
7871442, Nov 30 2007 HOWMEDICA OSTEONICS CORP Knee prosthesis with four degrees freedom
8268006, Jan 29 2001 Zimmer, Inc. Constrained prosthetic knee with rotating bearing
20010003803,
20010025199,
20010034554,
20020103541,
20020107576,
20020161448,
20030009228,
20030009232,
20030153980,
20040054416,
20040162620,
20040186583,
20040186584,
20040220676,
20040249467,
20050107886,
20050192672,
20050246028,
20070100463,
20080004708,
20080097616,
20080167722,
20080255671,
20090024221,
20090082873,
20090088860,
20090125116,
20090149964,
20090299482,
20090326665,
20090326666,
20100016978,
20100016980,
20100042224,
20100063594,
20100100189,
20100234962,
CA1073151,
DE10012059,
DE19809041,
DE19915053,
DE2122390,
DE2154338,
DE2810748,
DE2906458,
DE3013155,
DE3039992,
DE3339102,
DE3529894,
DE4102509,
DE4110048,
DE4434806,
DE69206397,
DE69305434,
DE69324016,
DE69712258,
DE9414970,
EP46926,
EP69683,
EP83155,
EP126978,
EP177755,
EP178445,
EP194163,
EP194326,
EP198163,
EP214773,
EP265325,
EP410237,
EP420460,
EP472475,
EP653194,
EP716839,
EP724868,
EP812582,
EP923916,
EP1108403,
EP1132064,
EP1226800,
EP1417938,
EP1447060,
FR2445137,
FR2601873,
FR2612767,
FR2628316,
FR2641966,
FR2692475,
FR2696926,
FR2702651,
FR2711750,
FR2751204,
FR2760352,
FR2771283,
FR2777453,
FR2787992,
FR2793676,
FR2793677,
GB1328497,
GB1409150,
GB1457147,
GB1475688,
GB1507309,
GB1509366,
GB1514479,
GB2070939,
GB2120943,
GB2129306,
JP10014935,
JP5241775,
JP8173464,
RU2080840,
WO66043,
WO100606,
WO8100606,
WO8906947,
WO9421198,
/
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