Bone fixation device
The bone fixation device addresses the issue of periosteum injury by using a load distributor with smooth contact surfaces and recesses only on lateral sides, ensuring secure fixation and minimizing trauma during application.
Patent Information
- Application Number
- JP2024552384
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-03-02
- Filing Date
- 2023-02-27
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2043-02-27
AI Technical Summary
Existing bone fixation devices, such as those disclosed in EP 3378424 A1, can injure the periosteum due to the load distributor's segmented design with recesses and edges that contact the bone during application.
A bone fixation device with a load distributor featuring smooth contact surfaces and recesses only on lateral sides, allowing it to glide across the bone without causing trauma, and a wire with undulating portions for secure fixation without additional bonding.
The device minimizes damage to the periosteum by distributing the tightening force over a wider area and using flexible, smooth contact surfaces, ensuring secure fixation without additional bonding or injury.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates generally to surgical devices, and more particularly to bone fixation devices and load distributors for bone fixation devices. [Background technology]
[0002] Fragmented or severed bones often require the application of bone fixation devices, which involve looping flexible straps or wires around the bone segments and tightening them like cable ties.
[0003] During cardiac surgery, a longitudinal incision of the sternum is often required to gain access to the heart. Once the surgery is complete, the two sternum sections are reattached. This is typically accomplished using a simple wire or a more advanced sternal closure device with a wire and load distributor, such as that disclosed in EP 3378424 A1. To apply the device, the known device is passed under the bone and looped around it. Finally, the free end of the wire is twisted to tighten the device, exerting an external force that compresses the bone sections.
[0004] The sternum closure device disclosed in EP 3378424 A1 includes a load distributor molded around the wire to prevent cutting of the bone when tightening the wire around the bone. However, the load distributor is composed of multiple segments separated from each other by recesses. Because the individual segments are spaced apart and have edges on the bone-contacting side, the load distributor may injure the periosteum when pulled longitudinally across the bone surface during application.
[0005] US 2020 / 297402 A1 discloses a bone fixation device (2) comprising a wire (12) and a load distributor surrounding the wire, the device having a channel extending longitudinally therethrough, one contact side with a contact area configured to press against the bone to be fixed when the wire is tightened, and two opposing lateral sides that do not contact the bone when the wire is tightened, the lateral sides having a plurality of recesses. US 2021 / 307799 A1 teaches a bone fixation device consisting of a load distributor surrounding the wire and having a smooth contact surface. Other bone fixation devices comprising load distributors are disclosed in US 2011 / 054545 A21 and US 5 993 452 A. Summary of the Invention
[0006] An object of the present invention is to provide a bone fixation device that is less harmful to bone, and in particular to the periosteum, when applied.
[0007] According to one aspect of the present invention, a bone fixation device is provided, which includes a load distributor and a wire. The load distributor has one or two contact sides with a contact area that presses against the bone to be fixed when the wire is tightened. The bone fixation device further includes two opposing lateral sides that do not contact the bone when the wire is tightened.
[0008] According to one embodiment of the present invention, one or both contact regions have a smooth contact surface configured to glide across the bone without damaging the bone when the load distributor is pulled longitudinally across the bone during application. In some embodiments, the injection molding of the load distributor may result in one or more injection points at the contact surface. However, these injection points do not extend across the entire width of the load distributor and have a soft contour, so as not to cause trauma to the periosteum.
[0009] When viewed from above or below, the load distributor is preferably formed as a strip-shaped member with parallel, straight side edges. In an embodiment, the load distributor has a constant width at least in its central portion, particularly in the contact area.
[0010] When used as a sternum closure, the contact area, i.e., the portion of the load distributor that rests on the bone after the device is applied to the bone, can have a length of 50 mm to 70 mm, but can be shorter or longer depending on the size of the bone being secured. The total length of the load distributor can be, for example, 60 mm to 80 mm.
[0011] One of the lateral sides of the load distributor may be provided with one or more recesses that weaken the material of the load distributor, increasing flexibility and allowing excess material of the load distributor to be easily separated. Thus, a surgeon can shorten the length of the load distributor as needed by simply cutting or twisting off the protruding end. In a preferred embodiment, the recess(es) are located exclusively on one or both sides of the load distributor, without touching or extending onto the contact side, respectively.
[0012] If the load distributor material is sufficiently soft and flexible, embodiments without lateral recesses are possible.
[0013] In the context of this disclosure, the term "wire" refers to any elongated element such as: B. thread, strap, ribbon, etc., and should not be understood as being limited to metal wire.
[0014] In some embodiments, the load distributor comprises a fixing portion for securely fixing the wire, in particular by friction, so that the wire cannot be removed under normal operating conditions. According to one embodiment of the present invention, the wire has one or more bends in the area of the load distributor that create sufficient friction to securely fix the wire in the load distributor. The bends can be created by pushing or bending the wire. The preformed wire is overmolded with the load distributor.
[0015] According to a particular embodiment, the wire has an undulating course within the load distributor. In this context, the term "undulating course" relates to a wave-like or zigzag course. If the wire creates sufficient friction within the load distributor, no additional bonding is necessary. In other embodiments, the wire may be bonded to the load distributor.
[0016] In a preferred embodiment of the load distributor, the contact side does not have any recesses or depressions in its contact area that may injure the periosteum during application of the device.
[0017] In some embodiments, the continuous smooth surface of the contact side extends essentially along the entire length of the load distributor from the front end to the rear end of the load distributor.
[0018] In some embodiments, the load distributor has a slit running its entire length, allowing for wire assembly after the load distributor is manufactured. In some embodiments, also known as "top loaders," the slit is located on the top side of the load distributor, i.e., the side opposite the contact side. In some embodiments, also known as "side loaders," the slit is located on one of the sides of the load distributor. The width of the slit is designed to be slightly smaller than the diameter of the wire, requiring the wire to be pushed through the slit and into the internal channel. Once inserted, the wire is held within the channel, and the narrow gap prevents the wire from easily slipping out.
[0019] The recess provided in at least one of the lateral sides of the load distributor can be configured as a through hole, a blind hole, or generally as a hole or aperture.
[0020] The recesses may be located outside the contact area in the region of the free end of the load distributor, or one or more recesses may be located within the contact area to increase the flexibility of the load distributor.
[0021] In a particular embodiment of the load distributor, at least one of the lateral sides is provided with a plurality of recesses, some of which may be located inside the contact area and other recesses may be located outside the contact area.
[0022] Regarding the manufacture of the bone fixation device, the load distributor can be molded around the wire in a molding process such as injection molding. Alternatively, the load distributor can be manufactured by 3D printing or other known techniques. The load distributor can be made from a moldable material, such as a polymeric material.
[0023] In some embodiments, the load distributor may be integrally formed. In other embodiments, the load distributor may comprise multiple parts that are joined together after the wires are inserted into the channels. The various parts of the load distributor may be joined by, for example, ultrasonic welding or adhesive or other known techniques.
[0024] In some embodiments, the load distributor is configured axisymmetrically about the central longitudinal axis.
[0025] The load distributor can have two contact surfaces located on two opposite sides of the load distributor. The contact surfaces can be essentially identical. This allows the surgeon to use the bone fixation device in both orientations (normal or top-down) without having to pay attention to the orientation of the device, making it easier to use.
[0026] The tapered free end of the load distributor facilitates annular fixation of the load distributor to the bone, causing less trauma to the bone.
[0027] In embodiments, the tapered end can have one or more edges that act as blades to facilitate insertion of the device. The end can extend substantially longitudinally. It can also be curved and / or angled relative to the longitudinal direction.
[0028] According to one embodiment of the present invention, one or both of the contact sides may have a convex shape. [Brief explanation of the drawings]
[0029] Further details, advantages and aspects of the present invention will become apparent from the following embodiments taken in conjunction with the drawings. [Figure 1a] 1 is a perspective top view of a load distributor of a bone fixation device according to a first embodiment. FIG. [Figure 1b] 1b shows a cross-sectional view of the load distributor of FIG. 1a along a central horizontal plane. [Figure 1c] 1b shows a cross section along a central vertical plane of the load distributor of FIG. 1a. [Figure 1d] FIG. 1c is a cross-sectional view of the load distributor taken along line AA. [Figure 1e] 1 is a perspective view of a bone anchoring device according to a first embodiment; [Figure 2a] 10 is a perspective top view of a load distributor of a bone fixation device according to a second embodiment. FIG. [Figure 2b] 10 shows a longitudinal view of the load distributor according to a second embodiment. FIG. [Figure 2c] FIG. 10 is a cross-sectional view of a load distributor according to a second embodiment. [Figure 3a] FIG. 10 is a top perspective view of a load distributor, also referred to as a "side loader," according to a third embodiment of the present invention. [Figure 3b] 10 shows a load distributor according to a third embodiment as viewed in the longitudinal direction. [Figure 3c] FIG. 10 is a cross-sectional view of a load distributor according to a third embodiment. [Figure 3d] FIG. 10 is a cross-sectional view of a load distributor according to a third embodiment. [Figure 4a] 10 shows a top perspective view of a load distributor according to a fourth embodiment of the invention comprising two halves; FIG. [Figure 4b] FIG. 10 is a view of the load distributor according to the fourth embodiment as viewed from the longitudinal direction. [Figure 4c] FIG. 10 is a cross-sectional view of a load distributor according to a fourth embodiment. [Figure 5] FIG. 10 is a top view of a load distributor according to a fifth embodiment, showing the two halves of the load distributor before wire assembly. [Figure 6a] FIG. 10 is a side view of the wires and hooks used in the load distributor. [Figure 6b] FIG. 6b is a top view of the wire and hook assembly of FIG. 6a. [Figure 7a] 1A-1D show various views of an embodiment of a bone fixation device having a cutting tool at its end. [Figure 7b] 1A-1D show various views of an embodiment of a bone fixation device having a cutting tool at its end. [Figure 7c] 1A-1D show various views of an embodiment of a bone fixation device having a cutting tool at its end. DETAILED DESCRIPTION OF THE INVENTION
[0030] In the following, the same reference numerals are used to denote the same or similar structural features.
[0031] 1a to 1e show various views of a bone anchoring device 1 according to a first embodiment, which can be used as a sternum closure, for example, in cardiac surgery. However, the device 1 can also be used in other applications where parts of a bone have to be fixed by external force.
[0032] The bone fixation device 1 shown in Figures 1a-1e is essentially used to fix a portion of a bone using an external force. Figures 1a-1e essentially consist of a wire 7 and a load distributor 9 disposed around the wire 7. During application, the wire 7 is threaded under the bone using a curved needle 8. The surgeon then pulls the wire 7 until the load distributor 9 is correctly positioned, aligning the free end of the wire 7 proximal to the bone. Finally, the bone fixation device 1 is tightened by simply twisting the free end, which applies an external force to the bone segment, firmly compressing it. The load distributor 9 prevents the wire 7 from cutting into the bone because the force exerted by the wire 7 is distributed over a wider area.
[0033] In the embodiment of Figures 1a-1e, the wire 7 is a metal wire, and the load distributor 9 is made of plastic. The load distributor 9 has a channel 10 extending therethrough in a longitudinal direction L. The load distributor 9 further has two contact surfaces 2, one at the top and one at the bottom, one of which presses against the bone surface when the wire 7 is tightened. The area of the contact surface 2 that contacts the bone after tightening the device 1 is referred to as the "contact area" 11 (see Figure 1a). As can be easily understood, the length of the contact area 11 varies depending on the size of the bone. To shorten the length of the load distributor 9 as needed, the excess material of the load distributor 9 that protrudes beyond the contact area 11 can simply be cut or threaded off. For this purpose, each of the lateral sides 4 of the load distributor 9 has a plurality of recesses 5 in the form of holes or bores that weaken the material and facilitate cutting off or twisting the ends of the load distributor 9.
[0034] As shown in Figure 1a, each contact side 2 has a continuous, smooth surface that prevents damage to the bone, specifically the periosteum, when the load distributor 9 is pulled longitudinally across the bone during application. Figure 1a also shows that the contact surfaces 2 have no recesses or depressions within the contact area 11 (aside from possible injection points resulting from injection molding). Additionally, the load distributor 9 has a tapered end 3 that further contributes to bone-friendly application.
[0035] The load distributor 9 of the first embodiment is configured axially symmetrically with respect to the central longitudinal access A.
[0036] FIG. 1b shows the internal structure of the load distributor 9, in a cross-section taken along a horizontal central plane. As can be seen, the load distributor 9 is provided with a fixing portion 6 for securely fixing the wire 7. For this purpose, the wire 7 has one or more curved portions that create sufficient friction to securely fix the wire inside the load distributor 9. The undulating portion of the wire 7 may be, for example, wavy or zigzag, as shown.
[0037] In the embodiment of Figures 1a-1e, the load distributor is integrally formed around the wire 7 in an injection molding process.
[0038] 2-2c show various views of a load distributor 9 according to a second embodiment, also known as a "top loader." In this embodiment, the load distributor 9 is manufactured in a first step, for example by injection molding, after which the wire 7 is assembled through the top surface of the load distributor 9. To this end, the load distributor 9 is provided with a slit 12 extending along its entire length and communicating with the internal channel 10. The width of the slit 12 is smaller than the diameter of the wire 7, so that the wire 7 must be pushed into the channel 10 from the outside. Due to the small width of the slit 12, the wire 7 is retained in the channel 10 after assembly.
[0039] Figure 2b is a view of the load distributor 9 according to the second embodiment as seen in the longitudinal direction L, and Figure 2c is a cross-sectional view of the load distributor 9. As can be seen from Figure 2c, the recesses 5 are provided in the form of blind holes on both lateral sides 4 of the load distributor 9.
[0040] 3a-3c show various views of a load distributor 9 according to a third embodiment, also known as a "side loader." The load distributor 9 has a slit 12 extending the entire length of the load distributor 9, the slit 12 being provided in one lateral side 4 of the load distributor 9. The other lateral side 4 has a number of recesses 5.
[0041] FIG. 3b is a view of the load distributor 9 according to the third embodiment as viewed in the longitudinal direction L, and FIG. 3c is a cross-sectional view of the load distributor 9. As shown in FIG.
[0042] 4a-4c show various views of a load distributor 9 according to a fourth embodiment. In this embodiment, each lateral side 4 is provided with a plurality of through-holes that communicate with the internal channel 10. The through-holes are arranged side by side, thereby leaving ribs 14 between them. The ribs 14 arranged on one side 4 of the channel 10 are offset from the ribs 14 arranged on the other side of the channel 10. This forms a kind of stitch pattern, as shown in FIG. 4a.
[0043] In a fourth embodiment of Figures 4a-4c, the load distributor 9 is made of two halves 9a, 9b that are manufactured separately and connected together after the wire 7 is inserted into the channel 10. As shown, the channel 10 has curved or undulating portions to ensure that the wire 7 is securely fixed to the load distributor 9 by friction. Figure 4b shows the load distributor 9 as viewed in the longitudinal direction L with the two halves 9a, 9b assembled together. Figure 4c is a cross-sectional view of the load distributor 9 according to the fourth embodiment.
[0044] The load distributor 9 shown in Figure 5 is made up of two halves 9a, 9b that are connected to each other by ultrasonic welding after the wire 7 is inserted into the channel 10. The load distributor 9 has contact surfaces 2 on its upper and lower sides. The side surface 4 has a number of recesses 5. The end 3 of the load distributor 9 is tapered.
[0045] Figure 6a shows a side view of the assembly of wire 7 and needle 8. Figure 6b is a top view of the assembly of Figure 6a. As can be seen in Figure 6b, wire 7 has an undulating portion 13 created by bending or pushing wire 7 in this area. The undulating portion of wire 7 engages with fixed portion 6 of load distributor 9, thereby preventing wire 7 from disengaging.
[0046] 7a-7c show an embodiment of a bone fixation device 1 having a cutting tool at its end 3 to facilitate insertion and ejection of the device. In this embodiment, the cutting tool consists of an edge 16 or blade formed on each of the tapered ends 3 of the load distributor. The edge 16 is slightly curved but extends substantially along the length of the device 1.
[0047] The load distributor 9 as shown in Figure 7a exhibits several injection points 15 on the contact surface 2 as a result of injection molding. However, these injection points 15 are only there for technical reasons; they do not damage the bone when the device 1 is pulled under it.
Claims
1. 1. A bone fixation device comprising: A wire, a load distributor surrounding the wire; The load distributor is a channel formed in and extending longitudinally through said load distributor and configured to accommodate said wire therein; two contact sides arranged on opposite sides of the load distributor, the two contact sides having contact areas configured to be pressed against the bone and fixed to the bone when the wires are tightened; - two opposite lateral sides, each of which maintains a distance from the bone when the wire is tightened; at least one of the lateral sides has one or more recesses formed therein, the one or more recesses being holes through the lateral side; and the two contacting sides each have a smooth surface at least in a contact area of each of the two contacting sides configured to slide across the bone without damaging the bone or periosteum when the load distributor is pulled longitudinally across the bone during application. Bone fixation devices.
2. The bone fixation device according to claim 1 , wherein the contact side does not include the one or more recesses at least in the contact area, and the contact side does not have indentations at least in the contact area.
3. The bone fixation device of claim 1 , wherein the contact side has a substantially continuous smooth surface along the entire length of the load distributor.
4. The bone fixation device of claim 1 , wherein the wire has one or more bends that facilitate securing the wire to the load distributor by friction.
5. The bone fixation device of claim 1 , wherein the load distributor has a slit formed therein and extending along its entire length, the slit configured to facilitate assembly of the wire after manufacture of the load distributor.
6. The bone fixation device according to claim 1 , wherein the one or more recesses provided in at least one of the lateral sides are configured as through holes or blind holes.
7. The bone fixation device according to claim 1 , wherein the one or more recesses are located outside the contact area.
8. The bone fixation device according to claim 1 , wherein a plurality of recesses are provided on both of the two lateral sides.
9. The bone fixation device of claim 1 , wherein the load distributor is molded around the wire or manufactured by 3D printing.
10. The bone fixation device of claim 1 , wherein the load distributor comprises one or more parts that are connected to each other after the wire is inserted into the channel.
11. The bone fixation device of claim 1 , wherein the load distributor is axisymmetric about a central longitudinal axis.
12. The bone fixation device of claim 1 , wherein the load distributor has one or two tapered ends.
13. 1. A load distributor for a bone fixation device, comprising: a channel formed in and extending longitudinally through said load distributor, adapted to receive a wire therein; two contact sides arranged on opposite sides of the load distributor, each having a contact area, at least one of the contact areas adapted to be fixed against the bone when the wire is tightened; - two opposite lateral sides that each keep the wire spaced from the bone when the wire is tightened; at least one of the two lateral sides includes a plurality of recesses formed therein defining a corresponding plurality of holes therethrough, and the two contacting sides each have a continuous, smooth surface configured to slide across the bone without damaging the bone or periosteum when the load distributor is pulled longitudinally across the bone during application. Load distributor.
Citation Information
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