IE67145B1 - Components of a Modular femoral fixation system - Google Patents
Components of a Modular femoral fixation systemInfo
- Publication number
- IE67145B1 IE67145B1 IE940716A IE940716A IE67145B1 IE 67145 B1 IE67145 B1 IE 67145B1 IE 940716 A IE940716 A IE 940716A IE 940716 A IE940716 A IE 940716A IE 67145 B1 IE67145 B1 IE 67145B1
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- Ireland
- Prior art keywords
- bone
- plate
- elongated
- bone plate
- cavity
- Prior art date
Links
- 210000000988 bone and bone Anatomy 0.000 claims description 200
- 239000007943 implant Substances 0.000 claims description 96
- 229910045601 alloy Inorganic materials 0.000 claims description 3
- 239000000956 alloy Substances 0.000 claims description 3
- 210000000689 upper leg Anatomy 0.000 description 41
- 230000001054 cortical effect Effects 0.000 description 36
- 206010017076 Fracture Diseases 0.000 description 17
- 238000003780 insertion Methods 0.000 description 14
- 230000037431 insertion Effects 0.000 description 14
- 208000010392 Bone Fractures Diseases 0.000 description 13
- 238000002513 implantation Methods 0.000 description 10
- 238000005452 bending Methods 0.000 description 5
- 230000000295 complement effect Effects 0.000 description 5
- 208000008924 Femoral Fractures Diseases 0.000 description 4
- 210000002436 femur neck Anatomy 0.000 description 4
- 238000000926 separation method Methods 0.000 description 4
- 238000013461 design Methods 0.000 description 3
- 208000037265 diseases, disorders, signs and symptoms Diseases 0.000 description 3
- 239000012634 fragment Substances 0.000 description 3
- 230000001965 increasing effect Effects 0.000 description 3
- 238000010079 rubber tapping Methods 0.000 description 3
- 238000001356 surgical procedure Methods 0.000 description 3
- 206010010149 Complicated fracture Diseases 0.000 description 2
- 239000002639 bone cement Substances 0.000 description 2
- 230000006378 damage Effects 0.000 description 2
- 239000000945 filler Substances 0.000 description 2
- 210000004394 hip joint Anatomy 0.000 description 2
- 238000000034 method Methods 0.000 description 2
- 210000001519 tissue Anatomy 0.000 description 2
- 208000032170 Congenital Abnormalities Diseases 0.000 description 1
- 239000004677 Nylon Substances 0.000 description 1
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- 208000027418 Wounds and injury Diseases 0.000 description 1
- 230000004308 accommodation Effects 0.000 description 1
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- 210000003484 anatomy Anatomy 0.000 description 1
- 238000006243 chemical reaction Methods 0.000 description 1
- 238000007796 conventional method Methods 0.000 description 1
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- 201000010099 disease Diseases 0.000 description 1
- 230000005489 elastic deformation Effects 0.000 description 1
- 230000002708 enhancing effect Effects 0.000 description 1
- 238000000605 extraction Methods 0.000 description 1
- 208000020089 femoral neck fracture Diseases 0.000 description 1
- 235000012907 honey Nutrition 0.000 description 1
- 238000001727 in vivo Methods 0.000 description 1
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- 239000000463 material Substances 0.000 description 1
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- 229920001778 nylon Polymers 0.000 description 1
- 230000000399 orthopedic effect Effects 0.000 description 1
- 230000002093 peripheral effect Effects 0.000 description 1
- 230000002028 premature Effects 0.000 description 1
- 230000002040 relaxant effect Effects 0.000 description 1
- 239000012858 resilient material Substances 0.000 description 1
- 239000010935 stainless steel Substances 0.000 description 1
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- 101150018444 sub2 gene Proteins 0.000 description 1
- 230000000472 traumatic effect Effects 0.000 description 1
- 230000003313 weakening effect Effects 0.000 description 1
Landscapes
- Surgical Instruments (AREA)
- Prostheses (AREA)
Description
Internal fixation of femoral fractures is one of the most common orthopedic surgical procedures. Manydifferent types of femoral fractures are encountered in practice, including fractures in the femoral neck, intertrochanteric, mid-shaft and distal condylar , regions» The femoral bone will sometimes fracture cleanly into two large fragments along a well-defined fracture line, and on other occasions fracture into many smaller fragments. Often, more than one type of fracture will exist concurrently in different regions of the femur of an injured patient.
A wide variety of implants have been developed over the years for use in the internal fixation of femoral fractures. Although numerous excellent design achievements have been realized, several general problem areas remain. First, almost all of the currently available implants have a highly specialised application limited to only one specific anatomical location in the femur. Thus, a hospital must maintain at great expense a very large and variegated inventory of different implants to handle all expected contingencies. These implants are generally not compatible, i.e. they cannot be interconnected together in case of a complicated fracture pattern extending into different anatomical regions of the femur.
Second, each implant has Its own peculiar attributes and deficiencies, and the use of many of the known implants involves the use of a surgical technique that
3Q is unique to that implant and sometimes complicated and difficult as well. Consequently, the opportunities for <Γ>
improper implant selection and surgeon error during implantation are inevitably increased. Finally, tissue reactions with implants made of stainless steel and certain other surgical implant alloys tend to reduce the useful lifetime of the implants and require premature removal from the patient’s body.
One very commonly utilized femoral internal fixation device is an elongated implant (nail, screw, pin, etc,) adapted to be positioned along the longitudinal axis of the femoral neck with its leading end portion in the femoral head so as to stabilize a fracture of the femoral neck. The elongated implant may be implanted by itself or connected to another implant such as a side plate or intramedullary rod.
The leading end portion of the implant typically includes means to positively grip the femoral head bone (external threads, expanding arms, etc.), but the inclusion of such gripping means can introduce several significant problems. First, implants with sharp edges on the leading end portion, such as the externally threaded implants, exhibit a tendency to migrate proximally towards the hip joint bearing surface after implantation. Such proximal migration under physiological loading, which is also referred to as femoral head cut-out, can lead to significant damage to the adjacent hip joint. Also, the externally threaded implants can generate large stress concentrations in the vicinal bone during implantation which can lead to stripping of the threads formed in the bone and thus obviously a weakened grip. The movable arms of know» expanding arm devices are usually free at one end and attached at the other end to the main body of the leading end portion of the implant. As a result, all fatigue loading is concentrated at the attached-ends of the arms and undesirably large bending moments are realized at the points of attachment.,
As stated above., known elongated implants used to stahlize fractures of the femoral neck are often connected in use to a side plate which in turn is secured to the outer cortical wall of the adjacent femoral shaftr for example with bone screws. This type of assembly is often selected when a femoral neck fracture is a part of a more complicated fracture pattern including also one or more fractures in the metaphyseal and/or diaphveaX to be able to select the appropriate length of the side plate depending upon the particular traumatic condition of the patient's femur. However., the surgeon's flexibility in this regard typically requires the hospital to maintain a costly inventory of implants.
French Patent application 2387636 describes an elongate plate for a bone implant comprising at least two screw holes in which the distance between two opposite surfaces, perpendicular to the length of the plate., than the distance between two holes.
US Patent 2486303 describes a surgical appliance for bone fractures comprising mating plates which are telescoped ‘together and screwed to the bone.
It is desirable to provide a modular system of femoral internal implantsand instrumentation therefor,, that can be employed to treat a number of different fracture patterns and other disorders with a minimal number of interconnectable system components involving simple uncomplicated operational procedures in which surgical invasiveness and operation times are minimizedThis system may comprise a kit for use in the amelioration of a number of different types of femoral disorders resulting from injury,, disease or congenital defect with a minimal number of interconnectable components. The kit comprises at least the following components: 1) aa elongated epiphyseal/metaphyseal implant having a leading end portion and a trailing end portion and adapted to grip hone at its leading end portion; 2) an intramedullary rod having a distal end and a proximal end; 3) an angled side plate comprising an elongated plate portion adapted to be secured to the outer cortical wall of the femoral shaft and an integral hollow sleeve extending at an angle from one end of the •j q plate portion so that said hollow sleeve extends into the femur when the plate portion ie secured to said cortical wall; and 4) means for connecting the epiphyseal/ metaphyseal implant to the intramedullary rod adjacent to one of the ends of the rod with the epiphyseal/ metaphyseal implant at an angle with respect to the intramedullary rod.
The present invention relates to an elongated bone plate which may be used with such a kit having an upper surface intended to face away from the patient's bone that is wider than a lower surface intended to face towards the patient’s bone, and two side surfaces connecting the upper and lower surfaces’which are tapered inwardly toward one another in the direction from the upper surface to the lower surface. The bone plate has a substantially
constant thickness between the two side surfaces and is adapted to be secured to a patient’s bone by means of bone fasteners received in apertures in the bone plate. Because the lower surface adjacent the bone is thinner (preferably 70% to 90% in width) than the upper surface at which stresses from physiological bending moments applied to the plate tend to be at a maximum, the necessary periosteal tissue stripping adjacent the bone for implantation purposes can be reduced without excessively sacrificing the strength of the bone plate under bending. In one preferred embodiment said upper and lower surfaces are defined in transverse bone plate cross-sections by arcs of two concentric circles, while the two side surfaces are defined therein by two straight radial lines passing through the common center of said concentric circles.
It is also preferred that an elongated bone plate of this aspect of the invention comprise two parallel integral downwardly-extending rails located at opposite sides of the lower surface and extending along substantially the entire length of the bone plate.
These two rails serve to lift the lower surface of the bone plate away from the surface of the patient’s bone . so as to permit enhanced vascularization of the bone directly beneath the lower surface and thus avoid any excessive weakening of that bone tissue.
It is highly advantageous to provide an elongated bone plate that can be readily connected to the elongated plate portion of another surgical implant in a simple, foolproof, non-time consuming surgical method so as to effectively provide an extension of the length of said elongated plate portion. The other surgical implant may be, for example, another bone plate, an angled side plate, a distal buttress plate, or the like. Thus, a further advantage of the novel elongated bone plate of the invention is that it can be readily connected to a surgical implant having an elongated plate portion adapted to be secured to a patient's bone by means of bone fasteners received in apertures in the elongated plate portion, which plate portion has upper and lower surfaces, with a cavity being formed in the lower surface of the plate portion at a free end thereof, said cavity extending longitudinally from said free end to a shoulder defining an end of the cavity and said cavity having a transverse cross-section complementary to that of the elongated bone plate of the invention.
An important consequence of the complementary designs of the transverse cross-sections, including downwardly-inwardly tapered side walls, of the surgical implant cavity and elongated none plate is that the bone plate dovetails’ with the surgical implant so that it can enter and be removed from the cavity in the surgical implant only by relative axial movement through the cavity opening at the free end of the elongated plate portion of the surgical implant. Also, no relative rotation is permitted between the surgical implant and bone plate. When the end of the bone plate abuts the shoulder at the other end of the cavity, no relative translational movement is possible between the surgical implant and bone plate except for axial separation. By Insuring that at least one bone fastener-receiving aperture in the elongated plate pox’tion of the surgical implant overlies a bone fastener-receiving aperture in the bone plate when the plate is inserted into said cavity in the surgical implant and abuts the shoulder at the end of the cavity, a stable and secure assembly of surgical implant and bone plate, in which the length of the elongated plate portion of the surgical implant is effectively extended by the elongated bone plate, can be realized when the assembled surgical implant and bone plate are secured together to the patient's bone, • 30
A modular system of femoral internal implants including a bone plate and bone implant assembly according to embodiments of the invention will be described with reference to the drawings in which:
FIG. 1 is an exploded side elevational view of an epiphyseal/metaphyseal implant including an expansion sleeve and an elongated plunger?
FIG. 2 is a longitudinal sectional view of the expansion sleeve of the implant of FIG. 1 in the rest position of the sleeve, taken along a plane including the longitudinal axis of the sleeve?
FIG. 2A is an end view of the expansion sleeve of FIG. 1 in the rest position of the sleeve?
FIGS. 3 to 5 are longitudinal sectional views of the implant of.'FIG. I, taken along a plane including the common longitudinal axis of the plunger and sleeve, showing three stages in the insertion of the plunger into the sleeve held in a patient's honey
FIG. 6 is a top plan view of a proximal angled side plate included in a modular implant system or kit;
FIG. 7 is a sectional view taken along line 7-7 of FIG. 6;
FIG. 8 is a sectional view taken along line 8-8 of FIG. δ;
FIG. 9 is a top plan view of an elongated bone plate included in a modular implant system;
FIG. 10 is a sectional view taken along line 10-10 of FIG. 9;
FIGS. 11A and 113 are side elevational views of a pair of cortical bone screws of different shank lengths included in a modular Implant system;
FIGS. 12A and 123 are side elevational views of a pair of cancellous bone screws of different shank lengths included in a modular implant system;
FIG- 13 Is an enlarged top plan view of each of the cortical bone screws of FIGS. 11A and 113;
FIG- 14 is a sectional view taken along line 14-14 of FIG. 9 showing the permitted side-to~side angulation of one of the cortical bone screws of FIG. 11A within one of the bone screw-receiving apertures provided In the bone plate of FIG. 9;
FIG. 15 is a lateral elevational view of the epiphyseal/metaphyseal implant of FIG. 1, the proximal angled side plate of FIG. δ, the elongated bone plate of FIG. 9 and a plurality of cortical bone screws of the type shown in FIGS. 11A and 11B, all connected together and secured to a patient’s femur, with the femur shown partly in section;
FIG. 16 is a sectional view taken along line 16-16 of FIG. 15; FIG. 17 is a sectional view taken along line 17-17 of FIG. 15; FIG. 18 is a side elevational view ' of a surgical implant insertion . instrument shown
assembled with the expansion sleeve and elongated plunger of the implant of FIG. 1;
FIG. ISA is a sectional view taken along line
18Α-18Ά of FIG-., IS;
FIG. 19 is a side elevational view of an 15 intramedullary rod having an anterior-posterior bow included in a modular implant system;
FIG. 20 is another side elevational view of the intramedullary rod of FIG. 19, as viewed in a direction perpendicular to that of FIG. 19;
. FIG. 21 is a sectional view taken along line 21-21 of FIG. 19;
FIG. 22 is a longitudinal view, partially in section, of a proximal end region of an intramedullary rod of the type shown in FIG. 19, illustrating the optional feature of a detachable hollow sleeve secured to the proximal end portion of the intramedullary rod;
FIG. 23 is a top plan exploded view of an elongated intramedullary rod-epiphyseal/metaphyseal implant connection piece, locking screw and locking shoe included in a modular implant system;
FIG. 24 is a front view, partially in section, of the articles shown in FIG. 23;
FIG. 25 is an elevational view of an epiphyseal/metaphyseal implant of the type shown in is ο
FIG. 1 but of shorter length, the intramedullary rod of FIG. 19 and the connection piece, locking screw and locking shoe of FIG. 23, all connected together and secured to a patient’s femur, with the femur shown in section, wherein the epiphyseal/metaphyseal implant and connection piece form together an elongated c ro s s-membe r ?
FIG. 26 is a bottom plan view of a distal angled side plate included in a modular implant system;
FIG. 27 is a sectional view taken along line 27-27 Of FIG. 26;
FIG. 28 -is an elevational view of an epiphyseal/metaphyseal implant of the type shown in FIG. 1 but of shorter length, the distal angled side plate of FIG. 26, the elongated bone plate of FIG. 9 and a plurality of cortical bone screws of the type shown in FIGS. 11A and 11B, all connected together and secured to a patient's femur, with the femur shown in section;
FIG. 29 is a top plan view of a distal buttress plate included in a modular implant system;
-FIG. 30 is a side elevational view of the distal buttress plate of FIG. 29;
FIG. 31 is an elevational view of the distal buttress plate of FIG. 29, the elongated bone plate of FIG. 9 and a plurality of cortical and cancellous bone screws of the type shown in FIGS. 11A, I1B, 12A and 12B, all connected together and secured to a patient’s distal femur, with the femur shown in section; and
FIGS. 32A and 32B are side elevational views of a pair of cortical bone screws of different shaft lengths suitable for use as distal locking screws.
Except as otherwise indicated, all of the implants shown in FIGS. 1 to 32B are made of a resilient, physiologically-inert titanium-base alloy.
An elongated epiphyseal/metaphyseal implant 1 of the invention is shown in FIG. 1. Implant 1 comprises an integral substantially cylindrical expansion sleeve 3 and an elongated plunger 5. Sleeve 3 includes a smoothly rounded circumferentially-closed dome 7 at one end, a circumferentially-closed circular ring 9 at the opposite end, and a plurality (eight in the embodiment shown in FIGS. 1 to 5) of identical substantially straight elongated thin resilient strips 11 extending, between, and connected at their opposed ends by and to, dome 7 and ring 9. A centrally-disposed threaded axial through bore 15 is provided in dome 7 for releasahly securing an elongated insertion rod to the dome.
Strips 11 have textured outer surfaces to enhance the bone-gripping action of the implant and define together the cylindrical wall of sleeve 3, which sleeve wall has in the rest position of the sleeve an outer diameter essentially equal to the outer diameter of ring 9. As is shown in FIG. 2, each of the strips 11 is of varying thickness along its length so that the sleeve wall has in. the rest position of the sleeve an inner diameter in a region r, adjacent ring 9 equal to the inner diameter of ring 9 and an inner diameter in a region r? spaced from ring 9 reduced from the inner diameter of ring 9. The strips 11 do-not touch each other along their lengths in the rest position of the sleeve, but are instead separated by an equal number of longitudinal openings, e.g. 13.
Plunger 5 includes at one end thereof a substantially cylindrical body portion 17 having a diameter essentially equal to the inner diameter of ring 9 of sleeve 3, and a cylindrical stem portion 19 having a smaller diameter than body portion 17 extending from body portion 17 to the other end of the plunger. Plunger 5 is cannulated along its longitudinal axis, as shown in FIG. 1. An internally threaded recess 20 is provided at the trailing end of stem portion 19 for engagement with an externally threaded tool to remove plunger 5 from the patient’s bone after implantation, if desired.
The body portion 17 of plunger 5 includes a raised annular lip 18 adjacent the trailing end of portion 17, a groove 10 is provided in the inner wall of ring 9 and a plurality'(eight in the embodiment shown in FIGS. 1 to 5) of relatively short slots 12 (open at the trailing edge of ring 9) are provided in the closed ring 9, all for a purpose to be described below.
FIGS. 3 to 5 show how bone implant 1 is actuated to grip a patient’s bone B at the leading end portion of the implant. The expansion sleeve 3 is inserted into and held within a cylindrical cavity C in the patient’s bone 3 by means of an insertion rod 21 having an externally threaded end portion 23 screwed into the internally threaded bore 15 of sleeve 3. Insertion rod 21 extends along the longitudinal axis of sleeve 3 and is cannulated to fit over a guide wire 25. Cannulated plunger 5? which is in a sliding fit over rod 21, is advanced along rod 21 towards sleeve 3 (i.e. from left to right in FIG. 3J with its substantially cylindrical body portion 17 in the leading position. After the body portion 17 of plunger 5 first contacts the elongated strips 11 at the beginning of region r^ (see FIG. 4), the continued advancement of plunger 5 into the interior of sleeve 3 causes the eight strips 11 to expand radially outwardly against the wall of the cavity C and securely grip the patient’s bone 3. When the plunger 5 is fully advanced within the expansion sleeve 3 (see FIG. 5), the raised lip 18 fits into the groove 10 to lock the sleeve 3 and plunger 5 against an undesired axial disengagement after implantation of the implant 1. The equally-spaced (circumferentially) slots 12 impart a slight resiliency to the ring 9 which allows the rib 18 to snap into the groove 10.
Additionally, when the plunger is fully advanced within the sleeve, the cylindrical wall of the sleeve 3 has
IQ taken on a generally barrel-shaped contour, which results from the fact that the opposite ends of each strip 11 are fixed to dome 7 and ring 9, respectively. Since the expansion sleeve 3 is made of a resilient material the strips 11 expand radially outwardly in
X5 elastic deformation when the plunger 5 is fully advanced into the expansion sleeve 3. If desired, an extrudable bone cement or bone filler material can be inserted into the sleeve 3 so that when the plunger 5 is advanced into the sleeve 3 the bone cement or bone filler is extruded through the openings 13 to the sleeve-bone interface.
An.insertion instrument 27 of the invention for use in uhe implantation of bone implant 1 is shown in FIG. 18 assembled with sleeve 3 and plunger 5.
Insertion instrument 27 includes the elongated axially-cannulated insertion rod 21 (upon which plunger 5 can slide) having an externally threaded end portion 23 adapted to be screwed into threaded bore 15 in dome 7 of sleeve 3 and an externally smooth portion 29
3Q extending from the threaded portion 23, a hollow sleeve capable of sliding movement upon smooth portion 29, a handle 33 and a means 35 for advancing the hollow sleeve 31 along the smooth portion 29 of rod 21 towards the externally threaded portion 23 of rod 21. The sleeve advancing means 35 comprises a knurled knob 37 threaded upon an externally threaded portion 39 of the elongated rod 21. As knob 37 is turned it pushes against sleeve 31. Preferably, a nylon washer (not shown in the figures) is fitted between knob 37 and sleeve 31. A guide pin 41 provided on the inner wall of sleeve 31 is received within a longitudinal groove provided in threaded portion 39 (see FIG. 18A). In use, the surgeon holds handle 33 in one hand and turns knob 37 with the other hand to advance hollow sleeve 31 toward the expansion sleeve 3. The hollow sleeve 31 ff abuts the plunger 5, which is also fitted on the insertion rod 21, and thus in turn forces plunger 5 along the rod until the plunger is advanced into the expansion sleeve 3. As the cylindrical body portion 17 of the plunger 5 Is being pressed by knob 37 and hollow sleeve 31 against the elongated strips XX of the expansion sleeve 5 and forcing the strips 11 to expand, the surgeon can stop advancement of the plunger into the expansion sleeve (to rest, to assess the surgical
2U situation, or for any other reason) without relaxing the force being placed on the plunger by the Insertion instrument 27. In such a situation movement of hollow sleeve 31 and plunger 5 along insertion rod 21 away from expansion sleeve 5 is positively prevented by the structure of the sleeve advancing means 35.
After the implantation of the expansion sleeve 3 and the plunger 5 has been completed, with the plunger fully advanced within the interior of the sleeve, the guide wire 25 and the insertion rod 21 are removed from . the patient’s bone, although it is contemplated that an appropriately dimensioned insertion rod and/or guide wire might be left in place in the patient’s bone to form a part of the implanted elongated bone implant.
A proximal angled side plate 43 which may -be included in a modular implant system or kit of the invention is shown in FIGS. 6 and 7. Proximal angled side plate 43 includes an elongated plate portion 45 adapted to be secured to the outer cortical wall of the femoral shaft and an integral hollow sleeve 47 extending from one end of plate portion 45. The elongated plate portion 45 has an upper surface 49 and a lower surface 51 intended to be adjacent the patient’s bone in use, while the hollow sleeve 47 is provided with a longitudinal cylindrical through bore 53 extending from upper surface 49 to the free end of hollow sleeve 47. As shown in FIG» 7, the elongated plate portion 45 and hollow sleeve 47 are. oriented at an oblique angle of about 130°-150° so that hollow sleeve 47 is adapted to extend into the intertrochanteric region of the femur when elongated plate portion 45 is secured to the outer cortical wall of the adjacent femoral shaft.
As used herein, the term adapted to be secured to the outer cortical wall* of a bone (e.gr. a femur) means that an implant is adapted to be secured to a bone in such a way that it abuts the outer cortical wall of the bone. A'S one example, an implant may be provided with a plurality of apertures along its length for the receipt of bone fasteners 1 e. g. bone screws, nails,
Ί5 pins, bolts, rivets, or the like) used to secure the implant to the outer cortical wall.
As is shown in FIGS. 6 and 7, three circular through apertures 55, 57 and 59 are provided in the elongated plate portion 45 of the proximal angled side plate 43 for the receipt of three bone screws, one in each aperture. These three apertures are staggered with respect to the longitudinal axis of plate portion 45 (see FIG. 6) in order to reduce stress concentrations in the secured plate portion and in the 55 bone. As shown in FIG. 7, the upper portions 61 ox the walls of apertures 55, 57 and 59 adjacent upper surface 49 are preferably identical, concave-upward spherical surfaces. These identical spherical surfaces are adapted for cooperation with spherically-headed cortical and cancellous bone screws, as is discussed below. Two of these apertures, 57 and 59, communicate with an elongated cavity 63 formed in the lower surface 51 of plate portion 45, which cavity extends longitudinally from the free end 65 of plate portion 45 to a shoulder 67. Cavity 63 is adapted to receive an t
end portion of an elongated bone plate of the invention in a sliding fit, as will be described below. The lower surface 51 of elongated plate portion 45 is slightly curved (as viewed In transverse cross-sections of plate portion 45 (see FIG. 8,) to conform to the outer cortical wall of a femur.
An elongated bone plate 69 of the invention adapted to be secured to a patient’s bone is shown in FIGS. 9 and 10. Bone plate 69 has an upper surface 71, a lower surface 73 intended to be adjacent the patient’s bone in use and two side surfaces 75 and 77 connecting surfaces 71 and 73. Bone plate 69 is provided with for example six Identical elongated through apertures, e.g. 79, 80 and 85, for the receipt of bone screws used to secure the plate to a patient’s bone, e.g. to the outer cortical wall of the femoral shaft. Some other number (odd or even) of elongated through apertures than six may be provided in the bone plate of the invention, if desired. Preferably, the elongated apertures are alternately offset from the longitudinal axis of the bone plate (see FIG. 9) in order to reduce stress concentrations in the secured bone plate and in the bone and the separation between the two centermost slots (e.g. the third and fourth slots in FIG. 9) is greater than the separation between other pairs of adjacent slots. As can he readily seen in FIG. 10, the width of upper surface 71 is greater than the width of lower surface 73, side surfaces 75 and 77 are tapered inwardly toward one another in the direction from surface 71 to surface 73 (i.s, downwardly and inwardly in FIG. 10), and the thickness T of the bone plate 69 is substantially constant across the bone plate from side surface 75 to side surface 77. In the embodiment of FIGS. 9 and 10, bone plate 69 includes two parallel rails 81 and 83 located at the opposite sides of lower surface 73, which rails extend along substantially the entire length of plate 69. In use, only rails 81 and 83 contact the surface of the patient‘s bone to minimize interference with bone or periosteal vascularity.
An important feature of bone plate 69 is that its transverse cross-sectional dimensions are complementary to those of the cavity 63 in the .elongated plate portion 45 of the proximal angled side plate 43. Thus,
2u either end of bone plate 69 can be inserted into cavity
63, but because of the tapered side surfaces of the bone pla,te and cavity the bone plate 69 can enter and be removed from the cavity 63 only by relative axial movement through the opening of cavity 63 at the free end 65 of plate portion 45. Separation or joining by relative movement in the vertical direction is not permitted and the bone plate 69 cannot rotate with respect to the proximal angled side plate 43 when it is inserted within the cavity 63 (see FIG. 17 for a depiction of the '’dovetail” interlock between plate portion 45 and bone plate 69). When either end of bone plate 69 is inserted into cavity 63 and the end of the bone plate abuts shoulder 67, apertures 57 and 59 in the angled side plate 43 overlie apertures 79 arid 85, respectively, in the bone plate 69. Thus, with the use of two bone screws passed through the two overlying pairs of apertures and threaded into the patient's bone, bone plate 69 can be secured to the elongated plate portion 45 of side plate 43 in axial alignment in a stable and secure connection so as to provide an effective extension of the length of plate portion 45 in vivo.
In a preferred modular system of the invention three bone plates of varying length of the type shown in FIG. 9 are provided, having four, six and eight elongated apertures respectively, for use either independently or to extend the length of side plates.
Elongated bone plate 69 may also be used by Itself as a conventional bone plate in the treatment of, for example, diaphyseal femoral fractures. The six apertures in the plate are elongated to be able to receive either one or two screws each In use. Preferably, the upper portions 107, adjacent upper surface 71, of the identical apertures are spherically-rounded concave-upward all the way around the aperture. These identical spherically-rounded surfaces are adapted for cooperation with spherically-headed cortical and cancellous bone screws, as is discussed below.
Bone plate 69 is preferably slightly curved (as viewed in transverse cross-sections such as FIG- 10) to conform to the shape of the human femoral shaft. In the preferred embodiment shown in FIG. 10, upper surface 71 and lower surface 73 are defined in
- transverse bone plate cross-sections by arcs of two concentric circles having a center O, while side surfaces 75 and 77 are defined by two straight lines which, when extended, pass through center 0 and form together an angle A.
A pair of self-tapping cortical bone screws 89 and which may be included in a modular Implant system of the invention are shown in FIGS. 11A and 1113. Screws 89 and 91 have identical heads 93 and identical shanks
97 and 99 externally threaded along essentially the entire shank length, with the single exception that shank 97 of screw 89 is longer than shank 99 of screw 91. A pair of self-tapping cancellous bone screws 101 and 103 which may be included in a modular implant system of the invention are shown in. FIGS. 12A and 123.
«
The heads 93 of screws 101 and 103 are identical to the heads of cortical screws 89 and 91, while the shanks of cancellous screws 101 and 103, which are externally threaded adjacent the free shank end only, are'
Identical with the single exception that the shank of screw 101 has a longer unthreaded portion than the shank of screw X03. Another pair of self-tapping cortical bone screws 90 and 92 are shown in FIGS. 321Q and 32A. These screws are Identical to screws 89 and
91 except that a portion of the shanks of screws 90 and is not threaded. As is shown in FIG. 13, an identical axially-extending recess 95 having parallel axially-extending walls is provided in each of the identical heads 93 of screws 89, 91, 90, 92, X01 and
103 for the receipt of a screw-driving instrument ie.g.
a screwdriver). The recess is generally star-shaped in cross-section, e_;_q. the generally star-shaped Torx (TM)-drive cross-section shown in FIG. 13 or the generally star-shaped cross-section of a Pozidriv (TM) recess. If desired, the cortical and/or cancellous bone screws may be reduced in one or more steps in diameter or tapered towards the free shank end for increasing grip strength on the neighboring femoral cortex.
t)
Another important feature of the design of screw head 93 is that the underside 105 of head 93 is spherically-rounded and substantially complementary with the spherically-rounded upper portions of the walls of the screw-receiving apertures in angled side plate 43 and elongated bone plate 69. FIG. 14 shows the permitted side-to-side angulation of one of the four screws of FIGS. 11A, 113, 12Ά and 12B (shown in phantom lines) within one of the screw-receiving apertures (i.e. aperture 80) provided in the bone plate 69. As a consequence of the substantially complementary spherically-rounded surfaces of head underside 105 and the upper portion 107 of the wall of aperture 80, screw 89 is capable of rotating through an angle of about 30® in a plane perpendicular to the longitudinal axis of bone plate 69. Essentially unrestricted angulation is permitted in a plane parallel to the longitudinal axis of the bone plate. However, when bone screw 89 is positioned fully at the end of aperture 80 unrestricted angulation is permitted in one direction only in a plane parallel to the longitudinal axis of 4the bone plate while only about a 15° rotation from the vertical is permitted in the opposite direction in said plane. The radius of the sphericallyrounded surface of the upper portion 61 of the apertures 55, 57 and 59 in the angled side plate 43 is equal to the radius in the transverse plane of FIG. 14 of the surface of the upper portion 107 of aperture 80 of bone plate 69. Thus, screws 89, 91, 101 and 103 are capable of a universal rotation with respect to the elongated plate portion 45 within a cone having an apex angle of about 30° when fully advanced within one of the apertures 55, 57 and 59. (However, when the angled side plate is connected with an elongated bone plate this freedom of rotation is restricted considerably for the two screws passing through both plates.) The substantial allowed angulation of bone screws within an elongated bone plate or angled side plate enhances capabilities for adaptation to the fixation of oblique fractures and complex fracture patterns such as butterfly fractures. This angulation permits the bone screws to extend approximately normally to many fracture lines and serves to increase the number of bone fragments that can be directly gripped by at least one screw.
Elongated epiphyseal/metaphyseal implant 1, proximal angled side plate 43, elongated bone plate 70 having four elongated apertures and a plurality of the cortical bone screws 89 can be connected together and secured to a patient's right femur F in the manner shown in FIGS. 15 to 17 to form an angled side plate-hip pin assembly with the effective length of the elongated plate portion of the angled side plate extended by the elongated bone plate. The implant 1 is first implanted within a cavity prepared in the proximal femur, which eavity must be widened adjacent its open end to accommodate hollow sleeve 47, said sleeve 47 of side plate 43 is then inserted into the cavity so that a portion of the cylindrical stem portion 19 of plunger 5 is received in a sliding fit within the cylindrical bore 53 of sleeve 47, one end of bone plate 70 is slid into cavity 63 of side plate 43 until it abuts shoulder 67, and the entire assembly is then secured to the femur F with a plurality of cortical bone screws 89 passed through apertures in side plate 43 and bone plate 70. If desired, one or more conventional fixation pins (e.g. Knowles pins) unconnected to implant 1 and angled side plate 43 may also be implanted, with an orientation substantially parallel to the orientation of implant 1 shown in FIG.
2
,. Bone plate 70 can, of course, be omitted from the assembly of FIG. 16 if the length of plate portion 45 is sufficient without extension in a particular surgical situation.
A femoral intramedullary rod 109 which may be included in a modular implant system or kit is shown in side elevational views in FIGS.
and 20 as .viewed in perpendicular directions. Rod 109 has a proximal end 111 and a distal end 1X3 and a pair of transverse through bores 115 adjacent distal end 113 to receive bone screws 90. One or two through bores 116 to receive locking bone screws may also be included adjacent proximal end 111. Rod 109 has a distal end portion 117 and a straight proximal end portion 119. As is shown in FIG. 19, rod 109 has a slight bow, which is intended to lie in the anteriorposterior plane of the femur after implantation; no such bow is exhibited in FIG. 20, since rod 109 is intended to be straight in the lateral-medial plane after implantation. The transverse cross-section of rod 109 is shown in FIG. 21. This cross-section has a t
closed profile, with the outer periphery of the cross-section being a plurality of (e.g- six) smoothly rounded peaks (e.g. 121), all terminating on the same first circle, connected by an equal number of smoothly rounded valleys (e.g. 123), all bottoming on the same second circle concentric with and of smaller diameter than said first circle. The provision of these alternating peaks and valleys greatly enhances the stability of the implanted rod 109 against axial rotation with respect to the patient's bone, while their smoothly rounded nature greatly reduces the possibilities for damaging the bone of the intramedullary wall. Furthermore, the alternately raised and lowered outer peripheral rod configuration
3 shown in FIG. 21 provides for extensive re-vascularization of the bone tissue of the intramedullary canal wall following reaming. FIG. 21 also shows that rod 109 is axially cannulated, with an axial bore 125 extending from the distal tip 127 of hollow rod 109 to the proximal tip 129 of the rod.
A diametrical slot 120 is provided at proximal tip 129 for engagement with appropriate Insertion and extraction tools.
An elongated connection piece 139, locking screw 141 and locking shoe 142 for connecting an epiphyseal/metaphyseal implant 1 to intramedullary rod 109 adjacent to' the proximal end 111 of rod 109 to form a Y-nail type of assembly are shown In FIGS. 23 and 24. Connection piece X39 Is provided at one end with an elongated cylindrical cavity 143 aligned with the longitudinal axis of piece 139 and adapted to receive the free end of stem portion 19 of plunger 5 of Implant 1 In a sliding fit. Connection piece 139 Is also provided with a cylindrical through bore 145 disposed at an oblique angle of about 135° with respect to said longitudinal axis, and an elongated partially countersunk and partially internally-threaded bore 147 aligned with said longitudinal axis at the end of the elongated connection piece 139 opposite to cavity 143. Bore 147 is adapted to receive locking screw 141 and locking shoe 142, and both bore 147 and cavity 143 open into through bore 145. The diameter of through bore 145 is just slightly greater than that of the maximum cross-sectional dimension of the proximal end portion 119 of Intramedullary rod 109 so that proximal end portion 119 can be received in a close sliding fit within through bore 145 permitting rotational and translational adjustment of the connection piece 139 with respect to the intramedullary rod 109. Connection
4 piece 139 and intramedullary rod 109 can be securely locked against relative translational and rotational movement by screwing locking screw 141 forward in the partially threaded bore 147 behind the locking shoe 142 until the leading surface 144 of locking shoe 142 very firmly presses against the surface of proximal end portion 119, and then unlocked again if desired simply by unscrewing screw 141. The leading surface 144 of locking shoe 142 has a grooved contour adapted to fit closely and mesh with the splined external contour of rod 109, thereby enhancing the secure locking of rod 109 to the connection piece 139. Locking screw 141 and locking shoe 142 are assembled together in use, e.g, by a captured thread or staked head connection, to cause withdrawl of shoe 142 when screw 141 is unscrewed while permitting independent relative rotation between these two elements during screwing and unscrewing of screw 141.
In the alternative embodiment shown in FIG. 22, a hollow sleeve 131 having a smooth cylindrical outer surface is detachably secured to the exterior of the proximal end portion 119 of intramedullary rod 109 (having the fluted cross-section of FIG. 21) by means of a locking screw 135 having a head and an externally threaded shank fitted through a centrally-disposed opening in the top wall of sleeve 131 and threaded into an internally-threaded centrally-disposed bore 137 at the top of rod 109. An advantage of the embodiment of FIG. 22 is that the diameter of the straight proximal end of rod X09 Is effectively increased above that of the maximum transverse dimension in the transverse cross-section of FIG. 21. The hollow sleeve 131 should extend distaily at least to the point of maximum applied bending moment in normal use, which point of maximum bending moment is usually in the sub2 5 trochanteric region of the femur, but not all the way to the midway point along the length of rod 109 between the distal and proximal tips 127 and 129 of the rod. When hollow sleeve 131 is used, the contour of the leading surface of locking shoe 142 should be adapted accordingly, or alternatively, the locking shoe can be eliminated and the locking screw used alone.
Intramedullary rod 109, connection piece 139, locking screw 141, locking shoe 142 and a bone implant
1 can be connected together in the manner shown in FIG.
a to form a Y-nail type of assembly in a femur F, with implant 1 and piece 139 forming together the elongated cross-member of the Y-nail. The epiphyseal/metaphyseal implant 1 is first implanted into a cavity prepared in the proximal femur, which cavity must be widened adjacent its open end to accommodate the connection piece 139. Piece 139 is then advanced into the prepared bone cavity and oriented so that a portion of stem portion 19 of plunger 5 is received in a sliding fit within cavity 143 and through bore 145 is in approximate alignment with the femoral intramedullary canal. . Rod 109 is advanced distally through an opening prepared by conventional means In the proximal femur wall and through the through bore 145 in piece 139 until the distal end portion 117 of rod 109 is in the distal femur and the proximal end portion 119 of the rod 109 Is within the through bore 145. The disposition of rod 109 with respect to the femur F and connection piece 139 is then carefully adjusted to the desired disposition, and connection piece 139 is then locked to intramedullary rod 109 by means of the locking screw 141 and locking shoe 142» If desired a cortical bone screw 90 of the type shown in FIG. 32A of large shank length can be inserted by conventional methods through one or both of the transverse bores 115
6 to lock the rod 109 to the distal femur. Also, cap
I screw 135 may be screwed into bore 137, even when sleeve 131 is not being used, to prevent bone ingrowth into the threads in bore 137.
It is contemplated that a connection piece similar to piece 139 could be used, if desired, to connect an epiphyseal/metaphyseal implant similar to implant 1 to the distal end portion 117 of intramedullary rod 109, with the epiphyseal/metaphyseal implant residing in the distal condylar region of the femur and being substantially perpendicular to said portion 117. In such a case the through bore of the connection piece analogous to'through bore 145 in piece 139 would be substantially perpendicular to the longitudinal axis of the connection piece.
A distal angled side plate 149 which may be included in a modular implant system or kit is shown in FIGS. 26 and 27. Distal angled side’ plate 149 includes an elongated plate portion 151 adapted to be secured to the outer cortical wall of the distal femoral shaft and an integral hollow sleeve 153 extending from one end of plate portion 151. As is shown in FIG. 27, the plate portion 151 is slightly angulated in the vicinity of line R in order to accommodate the commencement of the anatomical bulge of the lateral distal femur. The elongated plate portion 151 has an upper surface 155 and a lower surface 157 intended to be adjacent the patient's bone in use, while the hollow sleeve 153 is provided with a longitudinal cylindrical through bore 159 extending from upper surface 155 to the free end of hollow sleeve 153. As shown in FIG. 27, the elongated plate portion 151 and hollow sleeve 153 are substantially perpendicular so that hollow sleeve 153 is adapted to extend into the distal condylar region of the femur
7 when elongated plate portion 151 is secured to the outer cortical wall of the adjacent distal femoral shaft. Through bore 159 is dimensioned to receive a portion of the stem portion 19 of the plunger 5 of an elongated epiphyseal/metaphyseal implant 1 in a sliding fit. The lower surface 157 is slightly curved in transverse cross-section in a similar manner as shown in FIG. 8 (for the proximal side plate 43) to conform to the outer cortical wall of a distal femur.
Three circular through apertures 161, 163 and 155 /
are provided in plate portion 151 for the receipt of three bone screws (e.g. cortical screw 89), one in each aperture. These three apertures are staggered with respect to the longitudinal axis of plate portion 151 (see FIG. 251 in order to reduce stress concentrations in the secured plate portion and in the bone.
Apertures 161, 153 and 165 are Identical respectively to apertures 55, 57 and 59 in the proximal angled side plate 43. The distal angled side plate 149 is also provided with an elongated cavity 167 formed in the lower surface 157 of plate portion 151. Cavity 167 is identical to cavity S3 in the proximal angled side plate 43. Thus, cavity 167 Is adapted to receive either end of elongated bone plate 69 in a dovetail” interlocked sliding fit (see PIG. 171, and when the end of the bone plate abuts shoulder 159 apertures 163 and 165 overlie the two terminal apertures, e.g. apertures 79 and 85 respectively, in the bone plate 69.
The distal angled side plate 149, an elongated epiphyseal/metaphyseal implant 1 and a plurality of the cortical bone screws 89 can be connected together and secured to a patient’s femur F in the manner shown in FIG. 28 to form a distal side plate-pin assembly with the effective length of the elongated plate portion of the side plate extended by the elongated bone plate.
8
The preferred surgical procedure is analogous to the one described above with regard to the assembly of FIGS. 15 and 16. Bone plate 69 can, of course, be omitted from the assembly of FIG. 28 if the length of plate portion 151 is sufficient without extension in a particular surgical situation.
A distal buttress plate 171 of the invention adapted to be secured to the outer cortical wall of the lateral distal femur is shown in FIGS. 29 and 30.
Buttress plate 171 includes a relatively flat elongated proximal portion 173 adapted to be secured to the lateral distal femoral shaft and a three dimensionally-contoured distal portion 175 designed to replicate the mean geometry of the lateral femoral condyle of adult humans. The distal portion 175 includes a generally rounded head 177 at the distal end of plate 171, a generally widened body 179 having a greater maximum width than both head 177 and proximal portion 173, and a neck 181 having a minimum width W substantially smaller than the maximum widths of head
177 and body 179. As viewed in transverse cross-sections, the lower surface of the distal buttress plate 171 is contoured along its entire length to conform to the outer cortical wall of the distal femur.
Distal buttress plate 171 is adapted to be secured to the outer cortical wall of the lateral distal femur by means of bone screws received in apertures in the plate. Thus, three circular through apertures 183, 185 and 187 are provided in proximal portion. 173 for the receipt of three bone screws (e.g. cortical screw 89), one in each aperture. These three apertures are staggered with respect to the longitudinal axis of proximal portion 173 (see FIG. 29), and are identical respectively to apertures 55, 57 and 59 in the angled
9 side plate 43, Also, an elongated aperture 189 is provided in head 177 and two elongated apertures 191 and 193 are provided in body 179, one on each side of body 179. Each of apertures 189, 191 and 193 is substantially identical to the apertures in the elongated bone plate 69 and thus are each configured to receive two (or one, if only one is desired) bone screws having a head 93 and permit the universal angulation of said screws when fully advanced in the aperture.
*
Furthermore, it is often highly desirable to use a distal buttress plate in conjunction with a pair of fracture reduction lag screws extending across the distal condylar region of the femur. Such lag screws are screwed fully into the bone before the distal buttress plate is implanted and thus cannot practically be passed through the plate. An important feature of distal buttress plate 171 is that the distal portion 175 thereof is configured in such a manner that spaces outside the periphery of plate 171 are left against neck 181 for the accommodation of two fracture reduction lag screws, extending across the distal condylar region of the femur, on the two sides of neck 181. These two lag screws are shown in phantom in FIG. 29 as elements 195 and 197.
Finally, the distal buttress plate 171 is also provided with an elongated cavity 199 formed in the lower surface of the proximal portion 173. Cavity 199 is identical to, and is adapted to serve in the same bone plate-“dovetail” interlocking capacity as, cavity 63 in the angled side plate 43 and cavity 167 in the angled side plate 149. When the end of bone plate 69 inserted into cavity 199 abuts the shoulder 201 of the cavity, apertures 185 and 187 overlie the two terminal ιυ apertures, e „ g. apertures 79 and 85 respectively, in the bone plate 69.
Distal buttress plate 171, elongated bone plate 69, a plurality of cortical bone screws such as screw 89 'and a plurality of cancellous bone screws such as screw 101 can be connected together and secured to a patient’s femur F in the manner shown in FIG.' 31.
First, two lag screws (not shown in FIG. 31) are fully implanted in the distal condylar region, if desired, to reduce a fracture in said region. These implanted lag a
screws are positioned so that they lie generally in the lateral-medial plane and are spaced so that they will lie in close proximity to the two opposite sides of the neck 181 of portion 175 (see FIG. 29). The distal buttress plate 171 is then secured to the lateral femur, with neck 181 fitting between the two previously implanted fracture reduction lag screws, by means of bone screws 101 passing through apertures 189, 191 and 193 (one or two screws can be passed through each of apertures 189, 191 and 193, as desired) and a bone screw 89 passed through aperture 183. Bone plate 69 is then slid into cavity 199 until Its end abuts shoulder 201 and bone screws 89 are screwed to the femur F through apertures 185 and 187. Finally, bone screws 89 are screwed to the femur F through some or all of the four apertures of bone plate 69 remaining outside of the cavity 199» Distal buttress plate 171 can, of course, be implanted without bone plate 69 if the length of the proximal portion 173 is sufficient without extension for a particular surgical situation.
Claims (9)
- I,., An elongated bone plate (69) adapted to be secured to a patient a bone having an upper surface (71),, a lower surface (73) intended to be adjacent the 5 patient's bone in use and two side surfaces (71, 73), with the thickness of the plate (69) being substantially constant between the two side surfaces (75, 77), with said bone plate (69) being adapted to be secured to the patient's bone by means ox bone fasteners received in 10 apertures (79, 80, 85) in the bone plate (69), characterized in that the width of the upper surface (71) Is greater than the width of the lower surface (73), said side surfaces (75, 77) being tapered inwardly toward one another from said upper surface (71) to said lower 15 surface (73).
- 2. An elongated bone plate of claim 1 further characterized in that said bone plate is made of a resilient titanium-base alloy,
- 3. An elongated bone plate of claim 1 further 20 characterised in that said upper and lower surfaces (71, 73) are defined in transverse bone plate cross-sections by arcs of pwo concentric circles and said two side surfaces (75, 77) are defined therein by two straight lines which, when, extended, form an angle (A) bisected by 25 a diametrical line of said concentric circles.
- 4. An elongated bone plate of claim 1 further characterised in that said bon© plat© further comprises two parallel integral rails (81, 83) extending downwardly along substantially the entire length of the plate (69), 5. With said rails (81, 83¾ being located at opposite side of said lower surface (73), whereby only said rails (81, 83) contact the patient's bone when the bone plate (69) is secured thereto..
- 5., A bone implant assembly comprising: 10 - an elongated bone plate (69) according to claim 1 and - a surgical inplant (43, 149, 171) having an elongated plate portion (45, 151, 173) having an upper surface (49, 155) and a 15- lower surface (-51, 157) adapted to be secured to the patient's bone by means of bone fasteners received in apertures (55, 57, 59ΐ 161, 163, 165; 183, 185, 187) in said elongated plate portion with a cavity 20 (63, 167, 199) being formed in the lower surface of the elongated plate portion at a free end of said plate portion, said cavity extending longitudinally from said free end to a shoulder (67, 169, 201) 25 defining an end of the cavity, the cavity having a transverse cross-section complimentary to that of said elongated bone plate so that said elongated bone plate may enter and be removed from said 30 cavity only by relative axial movement between said elongated bone plate and said elongated plate portion, the distribution of bone fastener-receiving apertures being such that when said bone plate is inserted into said cavity and an end of said bone plate abuts said shoulder at least on© of said apexrtues in said elongated plate portion„ which at least one aperture Is In 5 communication with said cavity e overlies an aperture (79 r 83) In said elongated bone plate.
- 6. A bone implant assembly of claim 5 further characterised In that said surgical implant Is an angled 10 side plate (43).
- 7. A bone implant assembly of claim 5 further characterised in that said surgical implant Is a distal buttress plate (171).
- 8. An elongated bone plate substantially as herein15 before described with particular reference to the accompanying drawings.
- 9. A bone implant assembly substantially as hereinbefore described with particular reference to the accompanying drawings .
Applications Claiming Priority (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US06/877,626 US4776330A (en) | 1986-06-23 | 1986-06-23 | Modular femoral fixation system |
| IE165787A IE63434B1 (en) | 1986-06-23 | 1987-06-22 | Modular femoral fixation system |
| JP62182098A JP2766641B2 (en) | 1986-06-23 | 1987-07-21 | Kit used to treat femoral disorders |
| JP9152294A JP2866839B2 (en) | 1986-06-23 | 1997-06-10 | Bone implant |
| JP25016598A JP3155515B2 (en) | 1986-06-23 | 1998-09-03 | Bone treatment fixation device |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| IE940716L IE940716L (en) | 1987-12-23 |
| IE67145B1 true IE67145B1 (en) | 1996-03-06 |
Family
ID=27517551
Family Applications (4)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| IE940717A IE66760B1 (en) | 1986-06-23 | 1987-06-22 | Components of a modular femoral fixation system |
| IE940714A IE67524B1 (en) | 1986-06-23 | 1987-06-22 | Components of a modular femoral fixation system |
| IE940716A IE67145B1 (en) | 1986-06-23 | 1987-06-22 | Components of a Modular femoral fixation system |
| IE940715A IE77148B1 (en) | 1986-06-23 | 1987-06-22 | Modular femoral fixation system |
Family Applications Before (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| IE940717A IE66760B1 (en) | 1986-06-23 | 1987-06-22 | Components of a modular femoral fixation system |
| IE940714A IE67524B1 (en) | 1986-06-23 | 1987-06-22 | Components of a modular femoral fixation system |
Family Applications After (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| IE940715A IE77148B1 (en) | 1986-06-23 | 1987-06-22 | Modular femoral fixation system |
Country Status (1)
| Country | Link |
|---|---|
| IE (4) | IE66760B1 (en) |
-
1987
- 1987-06-22 IE IE940717A patent/IE66760B1/en not_active IP Right Cessation
- 1987-06-22 IE IE940714A patent/IE67524B1/en not_active IP Right Cessation
- 1987-06-22 IE IE940716A patent/IE67145B1/en not_active IP Right Cessation
- 1987-06-22 IE IE940715A patent/IE77148B1/en not_active IP Right Cessation
Also Published As
| Publication number | Publication date |
|---|---|
| IE67524B1 (en) | 1996-04-03 |
| IE66760B1 (en) | 1996-02-07 |
| IE77148B1 (en) | 1997-11-19 |
| IE940714L (en) | 1987-12-23 |
| IE940716L (en) | 1987-12-23 |
| IE940717L (en) | 1987-12-23 |
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Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| MM4A | Patent lapsed |