Reinforcement element for a prosthesis, in particular for a knee prosthesis

The frustoconical metal body with eccentric annular portions and radial compression features addresses the challenge of adapting to the asymmetric bone structure of the tibia and femur, enhancing stability and simplifying surgical procedures for prosthesis reinforcement.

JP7700155B2Active Publication Date: 2025-06-30LIMACORPORATE SPA
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Patent Information

Application Number
JP2022576561
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-06
Filing Date
2021-07-05
Publication Date
2025-06-30
Estimated Expiration
2041-07-05

AI Technical Summary

Technical Problem

Existing reinforcement elements for prostheses struggle to accurately conform to the asymmetric elongated anatomical structure of the tibia and femur, leading to insufficient performance and complex surgical procedures for insertion and removal.

Method used

A frustoconical metal body with an axially penetrating cavity and a metal stud surface, featuring eccentrically stacked annular portions and through-slits for radial compression, allowing for better adaptation to specific bone structures and improved insertion efficiency.

Benefits of technology

The reinforcement element provides enhanced primary and secondary stability by conforming to the unique anatomical shapes of the tibia and femur, facilitating easier insertion and promoting bone growth for long-term stability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention relates to a reinforcing element (100, 200, 300, 400) for a prosthesis, in particular for a knee prosthesis, the reinforcing element (100, 200, 300, 400) comprising a generally frusto-conical metal body (101, 201, 301, 401) adapted to be inserted into the epiphysis and having an outer surface including a metal trabecular surface (102, 202, 302, 402), the metal body (101, 201, 301, 401) having an axial through-cavity (104, 204) defining a plurality of generally annular transverse sections. 4, 304, 404), and the metal body (101, 201, 301, 401) is inclined in an inclined direction to define at least one eccentricity (112, 312, 412) between a first cross-section at a first end (105, 205, 305, 405) of the axial through cavity (104, 204, 304, 404) and a second cross-section at a second end (106, 206, 306, 406) of the axial through cavity (104, 204, 304, 404).
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Description

Technical Field

[0001] The present invention relates to a reinforcing element for a prosthesis comprising a substantially frustoconical metal body configured to be inserted into an epiphysis.

[0002] The present invention is particularly useful in surgical interventions for knee prosthesis implantation, and the following description refers to this specific field of application in order to simplify the explanation.

[0003] Generally, the present invention does not exclude the possibility of being applied to other types of surgical interventions for implanting a prosthesis into an epiphysis.

Background Art

[0004] In orthopedic surgery for implanting a prosthesis, the bone seat may typically receive the application of a reinforcing element applied within a housing that is milled into a bone having a desired contour.

[0005] As used herein, the term "reinforcing element" means a prosthesis element that can fill or replace a bone portion that has been cut or deteriorated due to an existing medical condition or implantation, and can further be connected to a further prosthesis joint element to provide a stable implantation.

[0006] The use of a reinforcing element is particularly common when the cancellous portion of the bone is unable to support the prosthesis itself, particularly in the case of knee or hip prostheses.

[0007] Typically, the reinforcing element is a substantially conical or frustoconical component made of metal.

[0008] For example, a knee prosthesis typically includes a femoral component that is fixed to the distal end of the femur and a tibial component that is fixed to the proximal end of the tibia. In that case, both a reinforcement element for the end of the femur and a reinforcement element for the end of the tibia can be provided.

[0009] WO 2015 / 145348 relates to a multilayer reinforcement element for a prosthesis, comprising a frustoconical body having an axially extending cavity that is open at both ends and an annular part. The body includes an outer part of metallic strut material.

[0010] US 2019 / 070008 A1 relates to a reinforcement element for a prosthesis, comprising a hollow sleeve having an internal channel across the hollow sleeve. The hollow sleeve comprises one or more hinge joints configured to compress the channel and reduce the circumference and width of the hollow sleeve. The body is made of a metallic material without a strut part.

[0011] A difficulty arising in the prior art is that known reinforcement elements cannot accurately correspond to the anatomical structure of the bone, and thus the performance of the implanted prosthesis is insufficient.

[0012] In particular, since both the tibia and the femur have an asymmetric elongated configuration, known reinforcement elements cannot conform to the specific tibial or femoral anatomical structure of the patient.

[0013] Furthermore, the prior art has problems related to the insertion or removal of the reinforcement element at each bone seat, which involves surgical complexity or difficulty.

[0014] A general object of the present invention is to provide a surgeon with a reinforcement element that solves some of the drawbacks of the prior art.

[0015] A further object of the present invention is to enable the reinforcement element to better adapt to the specific bone anatomical structure.

[0016] A further object of the present invention is to provide a reinforcement element that is particularly suitable for the specific tibia or femur anatomical structure of a patient.

[0017] A further object of the present invention is to provide a reinforcement element that is more efficient during insertion or removal at each bone seat. SUMMARY OF THE INVENTION

[0018] The solution underlying the present invention is to provide a reinforcement element for a prosthesis having a generally frustoconical metal body configured to be inserted into a bone end and having an axially penetrating cavity. The metal body has a plurality of annular portions defined along the axially penetrating cavity, which are stacked eccentrically so as to define the overall inclination of the metal body. The configuration of the metal body enables better adaptation to the specific bone anatomical structure, particularly in the case of femur or tibia applications. Further, in order to further improve the embedding and attachment to the bone seat, a metal stud surface can be provided, preferably obtained integrally and seamlessly with the metal body.

[0019] Based on such a solution, a reinforcement element for a prosthesis, particularly for a knee prosthesis, is provided, comprising a generally frustoconical metal body. The metal body is configured to be inserted into a bone end. The metal body preferably has an outer surface including a metal stud surface. The metal body is hollow and has an axially penetrating cavity defining a plurality of generally annular cross-sections. Further, the metal body is inclined in the direction of inclination so as to define at least one eccentricity between a first cross-section at a first end of the axially penetrating portion and a second cross-section at a second end of the axially penetrating cavity.

[0020] This provides a reinforcement element that is particularly suitable for a specific asymmetric bone anatomical structure and is particularly advantageous when applying the reinforcement element to the end of the tibia or femur.

[0021] The reinforcing element for the prosthesis is also defined as having a substantially frustoconical metal body with an axially penetrating cavity and including a metal stud surface. Preferably, the reinforcing element further comprises a plurality of through-slits that are open from the first end of the metal body to an intermediate portion. Such slits are configured for radial compression of the metal body. Accordingly, the circumference of the substantially annular cross-section of the metal body is locally reduced.

[0022] As a result, as an advantage, a reinforcing element that is more efficient during insertion and embedding is provided, enabling radial compression of the metal body, increasing press-fitting into bone, and with the increase in press-fitting into bone, the pressure of the stud surface against the bone also increases. Thus, bone growth is promoted to ensure a stable long-term connection.

[0023] The reinforcing element according to the present invention, as an advantage, improves both the primary stability and the secondary stability of embedding. The primary stability is quickly observable during the intervention and is actually a mechanical wedge. The secondary stability, instead, is obtained by bone bonding. Bone bonding is improved by the presence of primary stability, the presence of the stud structure or appropriate porosity, and the presence of a compressive force or press-fitting that promotes bone growth.

[0024] Furthermore, specific features of the reinforcing element that are particularly efficient when applied to the ends of the tibia or femur are provided, which are exemplified in detail below.

[0025] Further features and advantages of the present invention will become apparent from the following detailed description provided for illustrative and non-limiting purposes, and from the claims that form an essential part of this description.

Brief Description of the Drawings

[0026]

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[0027] In different figures, similar elements are denoted by similar reference numerals.

[0028] The technical drawings shown in the figures should be understood as being purely illustrative and are not necessarily drawn to scale and are not necessarily of the same scale as each other.

[0029] FIG. 1 shows a perspective view of a first embodiment of a reinforcement element 100 for a prosthesis according to the present invention. The reinforcement element 100 of this example is an element for application to the femur in combination with a knee prosthesis.

[0030] The reinforcement element 100 includes a substantially frustoconical metal body 101 configured to be inserted into the end of the femur. Preferably, the metal body 101 is made of titanium or an alloy thereof for biomedical applications.

[0031] Generally, the metal body comprises walls to be further described having a substantially constant thickness.

[0032] The metal body 101 has an outer surface including a metal trabecular surface 102. Preferably, the metal trabecular surface 102 is integrally and seamlessly obtained with the metal body 101 by a co-manufacturing process, such as an EBM (electron beam machining) technique. In fact, the co-manufacturing process makes it possible to provide a trabecular surface of the metal body without an interface so as to avoid the risk of peeling of the trabecular portion of the metal body.

[0033] The metal body 101 preferably has a smooth edge 103 on the outer surface surrounding the metal trabecular surface 102 on one or more sides, preferably all sides.

[0034] The metal body 101 is hollow and has an axial through-cavity 104 that defines a plurality of substantially annular transversal sections, and its configuration will be further described.

[0035] Figure 2 shows a front view of the reinforcement element 100 for a prosthesis, where two symmetric side walls with the same inclination are shown.

[0036] Figure 3 shows a side cross-sectional view of the reinforcement element 100 for a prosthesis with respect to cross-section III-III of Figure 2.

[0037] The metal body 101 is inclined in the inclination direction, in this case towards the right of the figure, so as to define an eccentricity between a first tranversal section at a first end 105 of the axial through-cavity 104 and a second tranversal section at a second end 106 of the axial through-cavity 104.

[0038] In particular, the axial through-cavity 104 has a longitudinal axis 107 that is inclined in the inclination direction with respect to the vertical axis of the metal body 101. The vertical axis, not shown in the figure for the sake of brevity, is perpendicular to one of the first or second tranversal sections at each of the ends 105 or 106.

[0039] The metal body 101 comprises a front wall 108 that extends in the inclination direction and a rear wall 109 that faces the front wall 108 and extends away from the inclination direction.

[0040] The front wall 108 has an inclination with respect to the vertical axis, and this inclination is smaller than the inclination of the rear wall 109.

[0041] In other words, the profile of the metal body 101 tapers towards the first end 105, and a front asymmetry can be visually recognized in the cross-section.

[0042] Figure 4 shows a side view of the reinforcement element 100 for a prosthesis, where some features already discussed in relation to Figure 3 are pointed out.

[0043] Figure 5 shows a front cross-sectional view of the reinforcement element 100 for a prosthesis, taken along section V-V of Figure 4.

[0044] In the present embodiment, considering the direction transverse to the inclination direction shown in Figure 3, instead, it is understood how the longitudinal axis 107 of the axially penetrating cavity 104 is not inclined with respect to the longitudinal axis of the metal body 101.

[0045] The reinforcement element 100 further comprises a plurality of through-slits 110 in the metal body 101, which open from the first end 105 to an intermediate portion on the metal body 101.

[0046] These slits 110 are configured for the radial compression of the metal body 101, and in particular, to facilitate insertion into the femoral canal, locally reducing the circumference of the substantially annular cross-section constituting the metal body 101 during insertion of the reinforcement element 100 and increasing the press fit towards the bone portion.

[0047] In particular, with regard to application to the femur, the first cross-section at the end 105 is smaller in size compared to the second cross-section at the end 106 so as to facilitate insertion of the metal body 101 into the end of the femur.

[0048] Preferably, each of the through-slits 110 opens towards the first end 105 and terminates at a respective enlarged circular hole 111 in the intermediate portion of the metal body 101. Thereby, the enlarged circular holes 111 are configured to improve the local mechanical resistance of the metal body.

[0049] Figure 6 shows a bottom view of the reinforcement element 100 for a prosthesis. In this drawing, it can be understood that the eccentricity 112 results in a difference between the first transverse (in this case, circular) cross-section at the first end 105 of the axially penetrating cavity 104 and the second transverse (in this case, circular) cross-section at the second end 106.

[0050] Figure 7 shows a front view of the reinforcement element 100 for a prosthesis having a geometric representation related to the metal body 101.

[0051] In particular, the concavity 113 of the symmetric side walls is between 6° and 10° overall, and more preferably equal to 8.5°.

[0052] Figure 8 shows a side view of the reinforcement element 100 for a prosthesis having a geometric representation related to the metal body 101.

[0053] In an example of the reinforcement element 100, the front wall 108 is vertical and has an inclination of 0° with respect to the vertical. Generally, the inclination of the front wall 108 with respect to the longitudinal axis can be configured between 0° and 5°, and more preferably between 0° and 2°.

[0054] In an example of the reinforcement element 100, the rear wall 108 has an inclination 114 of 8.5° with respect to the vertical. Generally, the inclination of the rear wall 108 with respect to the longitudinal axis is configured between 6° and 10°.

[0055] Figure 9 shows a perspective view of a second embodiment of the reinforcement element 200 for a prosthesis according to the present invention. The reinforcement element 200 of this example is an element for application to the femur in combination with a knee prosthesis.

[0056] The reinforcement element 200 comprises a substantially frustoconical metal body 201 configured to be inserted into the end of the femur. Preferably, the metal body 201 is made of titanium or its alloy for biomedical applications.

[0057] The metallic body 201 has an outer surface including the metallic stud surface 202, and preferably, the metallic stud surface 202 is directly applied to the metallic body 201 in an integral and seamless manner by a co-manufacturing procedure, for example, by an EBM (Electron Beam Machining) technique.

[0058] The metallic body 201 preferably has a smooth edge 203 on the outer surface surrounding the metallic stud surface 202 on one or more sides, preferably on all sides.

[0059] The metallic body 201 is hollow and has an axially penetrating cavity 204 defining a plurality of substantially annular cross-sections. Its configuration will be further described.

[0060] FIG. 10 shows a front view of the reinforcement element 200 for a prosthesis. Here, it is clear that a pair of bicondylar supports 220a and 220b are arranged side by side on the metallic body 201.

[0061] The bicondylar supports 220a and 220b project from the end cross-section of the metallic body 201, and each of them comprises a tapered body that spreads away from the metallic body 201.

[0062] Preferably, the bicondylar supports 220a and 220b also have an outer surface including a metallic stud surface, which is made integrally and seamlessly with the bicondylar supports 220a and 220b.

[0063] In the reinforcing element 200, the bicondylar supports 220a and 220b also perform a supporting function for the femoral condyles when the bone defect extends to the femoral condyles. The choice between the embodiment 100 without the bicondylar supports of the reinforcing element and the embodiment 200 including the bicondylar supports of the reinforcing element may depend on, for example, the location and extent of the bone defect. For example, when removing the implant piece with a stem, bone defects in the femur often occur along the channel. Therefore, it is preferable to use the reinforcing element 100 according to the first embodiment. In contrast, in the case of advanced bone degeneration, a situation may occur where the femoral condyles do not provide sufficient support for the prosthesis, and in order to obtain greater reinforcement of the area, it is preferable to use the reinforcing element 200 according to the second embodiment.

[0064] Preferably, the metal body has a smooth edge 203 on the outer surface that at least partially surrounds the metal stud surface 202, preferably also the metal stud surfaces of the bicondylar supports 220a and 220b.

[0065] FIG. 11 shows a side cross-sectional view of the reinforcing element 200 for a prosthesis with respect to the cross-section XI-XI of FIG. 10.

[0066] The metal body 201 is inclined in the inclined direction, in this case to the right in the figure, so as to define an eccentricity between the first cross-section at the first end 205 of the axially penetrating cavity 204 and the second cross-section at the second end 206 of the axially penetrating cavity 204.

[0067] In particular, the axially penetrating cavity 204 has a longitudinal axis 207 that is inclined in the inclined direction with respect to the longitudinal axis of the metal body 201. The longitudinal axis, not shown in the figure for simplicity, is perpendicular to one of the first cross-section or the second cross-section at each of the ends 205 or 206.

[0068] The metal body 201 includes a front wall 208 that extends in the inclined direction and a rear wall 209 that faces the front wall 208 and extends away from the inclined direction.

[0069] The front wall 208 has an inclination with respect to the vertical axis, and the inclination is smaller than that of the rear wall 209.

[0070] In other words, the profile of the metal body 201 tapers towards the first end 205, and a front asymmetry can be visually recognized in the cross-section.

[0071] In fact, an eccentricity between the first cross-section at the first end 205 of the axially penetrating cavity 204 and the second cross-section at the second end 206 can be inferred.

[0072] FIG. 12 shows a side view of the reinforcement element 200 for a prosthesis, where some features already discussed in relation to FIG. 11 are pointed out.

[0073] FIG. 13 shows a front cross-sectional view of the reinforcement element 200 for a prosthesis with respect to the cross-section XIII-XIII of FIG. 12.

[0074] The reinforcement element 200 further comprises a plurality of through slits 210 in the metal body 201, which are open from the first end 205 to the middle part of the metal body 201.

[0075] These slits 210 are configured for the radial compression of the metal body 201. In particular, they facilitate the insertion into the femoral canal, locally reduce the circumference of the substantially annular cross-section constituting the metal body 201 during the insertion of the reinforcement element 200, and increase the press fit towards the bone part.

[0076] In particular, with respect to the application to the femur, the first cross-section at the end 205 is smaller in size compared to the second cross-section at the end 206 so as to facilitate the insertion of the metal body 201 into the end of the femur.

[0077] Preferably, each of the through slits 210 opens towards the first end 205 and terminates at a respective enlarged circular hole 211 in the middle part of the metal body 201. Thereby, the enlarged circular body 211 is configured to improve the local mechanical resistance of the metal body.

[0078] In the reinforcement element 200 for application to the femur, the first cross-section at the end 205 is smaller in size than the second cross-section at the end 206. A pair of bicondylar supports 220a, 220b arranged side by side protrude precisely from the second cross-section and are thus in a distal position when the reinforcement element is implanted into the respective femoral canal.

[0079] FIG. 14 shows a front view of the reinforcement element 200 for a prosthesis having a geometric representation related to the metal body 201.

[0080] In particular, the concavity 213 of the side wall is between 6° and 10° overall, more preferably equal to 8.5°, as in the example of the reinforcement element 200.

[0081] So as to be visible, the second cross-section at the end 206 is further inclined in a second inclination direction in a plane transverse to the inclination direction of the longitudinal axis 207. In that sense, the metal body 201 has an inclined surface at the end 206 that is different from the inclined surface at the end 205, creating an overall asymmetry of the reinforcement element 201 not only in the front inclination direction already considered, but also in the transverse inclination direction of the entire metal body 201, as visible in FIG. 14.

[0082] Furthermore, the pair of bicondylar supports 220a and 220b extend the same height 221 from the second end 206, thereby defining a pair of asymmetric bicondylar supports 220a and 220b.

[0083] In light of the overall asymmetry of the reinforcement element 200, it is clear that different solutions must be provided for the left and right femurs.

[0084] FIG. 15 shows a side view of the reinforcement element 200 for a prosthesis having a geometric representation related to the metal body 201.

[0085] In the example of the reinforcing element 200, the front wall 208 is vertical and has an inclination of 0° with respect to the vertical. Generally, the inclination of the front wall 208 with respect to the longitudinal axis can be configured to be between 0° and 5°, more preferably between 0° and 2°.

[0086] In the example of the reinforcing element 200, the rear wall 209 has an inclination 214 of 8.5° with respect to the vertical. Generally, the inclination of the rear wall 209 with respect to the longitudinal axis is configured to be between 6° and 10°.

[0087] FIG. 16 shows a perspective view of a third embodiment of a reinforcing element 300 for a prosthesis according to the present invention. The reinforcing element 300 of this example is an element for application to the tibia in combination with a knee prosthesis.

[0088] The reinforcing element 300 includes a generally frustoconical metal body 301 configured to be inserted into the end of the tibia. Preferably, the metal body 301 is made of titanium or its alloy for biomedical applications.

[0089] The metal body 301 has an outer surface including a metal stud surface 302, and preferably, the metal stud surface 302 is directly applied to the metal body 301 by an integral and seamless co-manufacturing process, for example, by EBM (electron beam machining) technology.

[0090] The metal body 301 preferably has a smooth edge 303 on the outer surface surrounding the metal stud surface 302 on one or more sides, preferably on all sides.

[0091] The metal body 301 is hollow and has an axial through cavity 304 defining a plurality of generally annular cross-sections, the configuration of which will be further described.

[0092] Naturally similar, the metal body 301 is similar in shape to a corolla from which two opposing petals have been removed.

[0093] FIG. 17 shows a front view of the reinforcing element 300 for a prosthesis, where the same two symmetric side walls having the same inclination and configuration are shown.

[0094] FIG. 18 shows a side cross-sectional view of a reinforcement element 300 for a prosthesis, taken along the cross-section XVIII-XVIII of FIG. 17.

[0095] The metal body 301 is inclined in an inclined direction, in this case to the right in the figure, so as to define an eccentricity between a first cross-section at a first end 305 of the axially penetrating cavity 304 and a second cross-section at a second end 306 of the axially penetrating cavity 304.

[0096] In particular, the axially penetrating cavity 304 has a longitudinal axis 307 inclined in an inclined direction with respect to the longitudinal axis of the metal body 301. The longitudinal axis, not shown in the figure for the sake of simplicity, is perpendicular to one of the first cross-section or the second cross-section at the end 305 or 306.

[0097] The metal body 301 includes a front wall 308 extending in the inclined direction and a rear wall 309 facing the front wall 308 and extending away from the inclined direction.

[0098] The front wall 308 has an inclination with respect to the longitudinal axis that is smaller than the inclination of the rear wall 309.

[0099] In other words, the profile of the metal body 301 tapers towards the second end 306, and a front asymmetry can be visually recognized in the cross-section.

[0100] FIG. 19 shows a side view of the reinforcement element 300 for a prosthesis, where some features already discussed in relation to FIG. 18 are pointed out.

[0101] Regarding the application to the tibia, it can be seen that the first cross-section at the end 305 is larger in size than the second cross-section at the end 306 so as to facilitate the insertion of the above metal body into the end of the tibia.

[0102] The reinforcing element 300 is arranged side by side on the metal body 301 and further includes a pair of notches 320 that open from the first end 305 to the middle part on the metal body 301.

[0103] FIG. 20 shows a front cross-sectional view of the reinforcing element 300 for a prosthesis with respect to the cross-section XX-XX of FIG. 19.

[0104] In the present embodiment, considering the direction crossing the inclination direction shown in FIG. 18, instead, it is understood how the longitudinal axis 307 of the axially penetrating cavity 304 is not inclined with respect to the longitudinal axis of the metal body 301.

[0105] FIG. 21 shows a front view of the reinforcing element 300 for a prosthesis having a geometric representation related to the metal body 301.

[0106] Preferably, the metal body 301 has side walls 321 in the notches 320, and such side walls 321 have a curved shape and a concave shape with respect to the outside of the metal body 301, respectively, in order to reproduce the anatomical structure of the intermediate / lateral and posterior bones.

[0107] In particular, at each of the first end 305 and the second end 306, the overall concavity 313 of the symmetric side walls 321, measured with respect to the virtual straight line passing through the two edges of the metal body 301, is between 12° and 20° in total, and more preferably equal to 18°.

[0108] FIG. 22 shows a side view of the reinforcing element 300 for a prosthesis having a geometric representation related to the metal body 301.

[0109] In an example of the reinforcing element 300, the front wall 308 is close to vertical and has an inclination 315 equal to 2° with respect to the vertical. Generally, the inclination of the front wall 308 with respect to the longitudinal axis can be configured between 0° and 5°, and more preferably between 0° and 2°.

[0110] In the example of the reinforcement element 300, the rear wall 309 has an inclination of 16° with respect to the vertical. Generally, the inclination of the rear wall 309 with respect to the longitudinal axis is configured to be between 15° and 20°.

[0111] Preferably, the rear wall 309 further has a curved shape and a concave shape with respect to the outside of the metal body 301 in order to reproduce the anatomical structure of the posterior tibia.

[0112] FIG. 23 shows a plan view of the reinforcement element 300 for a prosthesis.

[0113] In this drawing, it can be understood that the eccentricity 312 results in a difference between the first cross-section (in this case, circular) at the first end 305 of the axial through-cavity 304 and the second cross-section (in this case, circular) at the second end 306.

[0114] FIG. 24 shows a perspective view of a fourth embodiment of the reinforcement element 400 for a prosthesis according to the present invention. The reinforcement element 400 of this example is an element for application to the tibia in combination with a knee prosthesis.

[0115] The reinforcement element 400 includes a generally frustoconical metal body 401 configured to be inserted into the end of the tibia. Preferably, the metal body 401 is made of titanium or its alloy for biomedical applications.

[0116] The metal body 401 has an outer surface including a metal stud surface 402, and preferably, the metal stud surface 402 is directly applied to the metal body 401 by a co-manufacturing procedure that is integral and seamless, for example, by EBM (electron beam machining) technology.

[0117] The metal body 401 preferably has a smooth edge 403 on the outer surface surrounding the metal stud surface 402 on one or more sides, preferably all sides.

[0118] The metal body 401 is hollow and has an axial through-cavity 404 defining a plurality of generally annular cross-sections, and its configuration will be further described.

[0119] FIG. 25 shows a front view of a reinforcing element 400 for a prosthesis, where two identical symmetric side walls 421 having the same inclination and configuration are shown.

[0120] FIG. 26 shows a side cross-sectional view of the reinforcing element 400 for a prosthesis with respect to section XVI-XVI of FIG. 25.

[0121] The metal body 401 is inclined in the inclined direction, in this case to the right in the figure, so as to define at least one eccentricity between a first cross-section at a first end 405 of the axially penetrating cavity 404 and a second cross-section at a second end 406 of the axially penetrating cavity 404.

[0122] In particular, the axially penetrating cavity 404 has a longitudinal axis 407 inclined in the inclined direction with respect to the longitudinal axis of the metal body 401. The longitudinal axis, which is not shown in the figure for the sake of simplicity, is perpendicular to one of the first cross-section or the second cross-section at each of the ends 405 or 406.

[0123] The metal body 401 includes a front wall 408 extending in the inclined direction and a rear wall 409 facing the front wall 408 and extending away from the inclined direction.

[0124] The front wall 408 has an inclination with respect to the longitudinal axis, and the inclination is smaller than that of the rear wall 409.

[0125] In other words, the profile of the metal body 401 tapers towards the second end 406, and a front asymmetry can be visually recognized in the cross-section.

[0126] FIG. 27 shows a side view of the reinforcing element 400 for a prosthesis, where some features already discussed in relation to FIG. 26 are pointed out.

[0127] Regarding the application to the tibia, it can be seen that the first cross-section at the end 405 is larger in size than the second cross-section at the end 406 so as to facilitate the insertion of the above metal body into the end of the tibia.

[0128] The reinforcing element 400 further includes a pair of notches 420 that are arranged side by side with the metal body 401 and open from the first end 405 to the intermediate portion on the metal body 401.

[0129] FIG. 28 shows a front cross-sectional view of the reinforcing element 400 for a prosthesis with respect to the cross-section XXVIII-XXVIII of FIG. 27.

[0130] In the present embodiment, considering the direction crossing the inclination direction shown in FIG. 26, instead, it is understood how the longitudinal axis 407 of the axially penetrating cavity 404 is not inclined with respect to the longitudinal axis of the metal body 401.

[0131] FIG. 29 shows a plan view of the reinforcing element 400 for a prosthesis, where the first cross-section at the end 405 is bilobed annular, whereby it is understood that the outer surface of the metal body 401 tapers between the first cross-section and the second cross-section, as can be clearly seen in FIG. 24.

[0132] In a natural analogy, the metal body 401 is similar in shape to a corolla from which two opposing petals have been removed.

[0133] In this drawing, it is also possible to understand that a double eccentricity 412 occurs between the first cross-section (in this case, bilobed and thus having two circumferential centers for its description) at the first end 405 of the axially penetrating cavity 404 and the second cross-section (in this case, circular with only one circumferential center) at the second end 406.

[0134] FIG. 30 shows a front view of the reinforcing element 400 for a prosthesis having a geometric representation related to the metal body 401.

[0135] Preferably, the metal body 401 has side walls 421 in the notch 420, and such side walls 421 have a curved shape and a concave shape respectively with respect to the outside of the metal body 401 in order to reproduce the anatomical structure of the intermediate / lateral and posterior bones.

[0136] In particular, the overall concave surface 413 of the laterally symmetric wall 421 is configured to be between 45° and 55° in total, more preferably equal to 50°.

[0137] FIG. 31 shows a side view of a reinforcement element 400 for a prosthesis having a geometric representation related to the metal body 401.

[0138] In the example of the reinforcement element 400, the front wall 408 is close to vertical and has an inclination 415 equal to 2° with respect to the vertical. Generally, the inclination of the front wall 408 with respect to the longitudinal axis can be configured between 0° and 5°, more preferably between 0° and 2°.

[0139] In the example of the reinforcement element 400, the rear wall 409 has an inclination of 19.4° with respect to the vertical. Generally, the inclination of the rear wall 409 with respect to the longitudinal axis is configured between 15° and 20°.

[0140] Preferably, the rear wall 409 further has a curved shape and a concave shape with respect to the outside of the metal body 401 in order to reproduce the anatomical structure of the posterior tibia.

[0141] FIGS. 32 and 33 show respective perspective views of a deformation of the reinforcement element 400' for a prosthesis.

[0142] In this deformation, the reinforcement element 400' comprises a plurality of through slits 410 in the metal body that are open from a first end to an intermediate part of the metal body. The plurality of through slits 410 are configured for radial compression of the metal body, locally reducing the circumference during insertion of the reinforcement element 400' and increasing the press fit into the bone part. Preferably, each of the through slits 410 terminates in a respective enlarged circular hole 411.

[0143] FIG. 34 shows an example of the application of the reinforcement element 200 for a prosthesis to the end of the femur.

[0144] FIG. 35 shows an example of the application of the reinforcement element 300 for a prosthesis to the end of the tibia.

[0145] It is obvious that further implementations and modifications of the present invention are possible for those skilled in the art to meet occasional needs.

[0146] In particular, the specific features described with reference to the embodiments can also be applied to other embodiments described herein in their modified forms, provided there are no technical prejudices regarding this.

[0147] Therefore, the above embodiments should be understood as being provided for illustrative and non - limiting purposes.

Claims

Claim 1 A reinforcement element (300, 400) for application to the tibia in a knee prosthesis, wherein the reinforcement element (300, 400) comprises a substantially frustoconical metal body (301, 401), the metal body being configured to be inserted into the bone end and having an outer surface including a metal stud surface (302, 402). The metal body (301, 401) is hollow and has an axially penetrating cavity (304, 404) defining a plurality of substantially annular cross-sections. The metal body (301, 401) is inclined in an inclined direction so as to define at least one eccentricity (312, 412) between a first cross-section at a first end (305, 405) of the axially penetrating cavity (304, 404) and a second cross-section at a second end (306, 406) of the axially penetrating cavity (304, 404). The first cross-section at the first end (305, 405) is larger in size than the second cross-section at the second end (306, 406), and the metal body (301, 401) has side walls (321, 421) having a curved shape and a concave shape respectively curved with respect to the outside of the metal body (301, 401) in order to reproduce the anatomical structure of the intermediate / lateral and posterior bones. The reinforcement element (300, 400) is characterized by this. Claim 2 The axially penetrating cavity (304, 404) has a longitudinal axis (307, 407) inclined in the inclined direction with respect to the longitudinal axis of the metal body (301, 401), and the longitudinal axis is perpendicular to one of the first cross-section or the second cross-section. The reinforcement element according to claim 1. Claim 3 The metal body (301, 401) comprises a front wall (308, 408) extending in the inclined direction, and further comprises a rear wall (309, 409) facing the front wall and extending away from the inclined direction. The front wall (308, 408) has an inclination with respect to the longitudinal axis, and the inclination of the front wall is smaller than the inclination of the rear wall (309, 409). The reinforcement element according to claim 2. Claim 4 The inclination of the front wall (308, 408) with respect to the longitudinal axis is configured between 0° and 5°. The reinforcement element according to claim 3. Claim 5 Regarding application to the tibia, the inclination of the rear wall (309, 409) with respect to the longitudinal axis is configured between 15° and 20°. The reinforcement element according to claim 4. Claim 6 The reinforcing element according to claim 5, wherein the rear wall (309, 409) further has a concave shape curved with respect to the outside of the metal body (301, 401) in order to reproduce the anatomical structure of the posterior part of the tibia.

7. The reinforcing element according to any one of claims 1 to 6, further comprising a plurality of through slits (410) in the metal body (401), the reinforcing element being open from the first end (405) to an intermediate portion on the metal body (401), the plurality of through slits (410) being configured for radial compression of the metal body (401), locally reducing the circumference of the substantially annular cross-section during insertion of the reinforcing element (400), and increasing press-fitting into the bone portion.

8. The reinforcing element according to claim 7, wherein the first cross-section (305, 405) is larger in size than the second cross-section (306, 406) so as to facilitate insertion of the metal body (301, 401) into the end of the tibia with respect to application to the tibia.

9. The reinforcing element according to claim 7 or 8, wherein each of the plurality of through slits (410) terminates at a respective enlarged circular hole (411) in the intermediate portion, the enlarged circular hole (411) being configured to improve the local mechanical resistance of the metal body (401).

10. The reinforcing element according to claim 1, further comprising a pair of notches (320, 420) arranged on the side wall (321, 421) and open from the first end (305, 405) to an intermediate portion on the metal body (301, 401).

11. The reinforcing element according to claim 1 or 10, wherein the first cross-section (405) is bilobed annular, the second cross-section (406) is circular annular, and the outer surface of the metal body (401) tapers between the first cross-section (405) and the second cross-section (406).

12. The reinforcing element according to any one of claims 1 to 11, wherein the metal body (301, 401) comprises smooth edges (303, 403) on the outer surface surrounding the metal stud surface (302, 402).

13. The reinforcing element according to any one of claims 1 to 12, wherein the metal stud surface (302, 402) is integrally and seamlessly formed with the metal body (301, 401).

14. The reinforcing element according to any one of claims 1 to 13, wherein the metal body (301, 401) comprises walls (308, 408; 309, 409; 321, 421) having a substantially constant thickness.

Citation Information

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