SUPPORT FOR AN ANATOMICAL STRUCTURE
20220168028 ยท 2022-06-02
Inventors
Cpc classification
A61B90/14
HUMAN NECESSITIES
A61B2034/108
HUMAN NECESSITIES
A61B2034/102
HUMAN NECESSITIES
A61B90/37
HUMAN NECESSITIES
A61B2034/105
HUMAN NECESSITIES
A61B17/808
HUMAN NECESSITIES
A61B2017/568
HUMAN NECESSITIES
A61B34/10
HUMAN NECESSITIES
International classification
A61B17/80
HUMAN NECESSITIES
A61B34/10
HUMAN NECESSITIES
Abstract
An apparatus for providing structural support to an anatomical structure is disclosed. The apparatus comprises a plurality of connection structures and a frame structure. Each of the plurality of connection structures is arranged that, in use, they are connected to at least two points on an anatomical structure. In use, each connection structure is arranged to be orientated in a predetermined orientation and to be separated from each other connection structure by a predetermined separation. The frame structure connects each of the plurality of connection structures. The frame structure is arranged to maintain the predetermined orientations of the plurality of connection structures and the predetermined separations between the plurality of connection structures.
Claims
1. An apparatus for providing structural support to an anatomical structure, the apparatus comprising: a plurality of connection structures being arranged that, in use, they are connected to at least two points on an anatomical structure, and wherein, in use, each connection structure is arranged to be orientated in a predetermined orientation relative to the other connection structures and to be separated from the other connection structure by a predetermined separation; and a removable frame structure connecting each of the plurality of connection structures, the frame structure being arranged to maintain the predetermined orientations of the plurality of connection structures and the predetermined separations between the plurality of connection structures.
2. The apparatus according to claim 1, wherein the plurality of connection structures each comprises one or more connection portions for connecting the respective connection structures to an anatomical structure.
3. The apparatus according to claim 2, wherein the one or more connection portions each comprises a through hole for receiving a fixing device arranged to fix the respective connection structure to an anatomical structure.
4. The apparatus according to claim 3, wherein the through holes are for receiving a screw arranged to fix the respective connection structure to an anatomical structure.
5. The apparatus according to claim 1, wherein the apparatus is for providing structural support to a plurality of bone fragments.
6. The apparatus according to claim 1, wherein the plurality of connection structures is formed with the frame structure by an additive manufacturing process.
7. The apparatus according to claim 1, comprising separation portions located between the frame structure and the plurality of connection structures, the separation portions each being arranged to provide a break point between the frame structure and the plurality of connection structures.
8. The apparatus according to claim 1, comprising a metal material.
9. The apparatus according to claim 8, wherein the metal material comprises titanium and/or cobalt chrome.
10. The apparatus according to claim 1, claim wherein the removable frame structure comprises a support member and a plurality of spurs that extend away from the support member, wherein each one of the plurality of spurs connects to a respective one of the connection structures.
11. A method of manufacturing the apparatus according to claim 1, the method comprising: receiving a model of the apparatus, the model being based on image data representing an image of an anatomical structure; and manufacturing the apparatus based on the received model.
12. The method according to claim 11, comprising: receiving image data representing an image of an anatomical structure; and generating the model on the basis of the received image data.
13. The method according to claim 12, comprising generating the image data.
14. The method according to claim 13, wherein the image data represents computed tomography data.
15. The method according to claim 11, wherein the apparatus is manufactured using an additive manufacturing process.
16. A method of operating the apparatus according to claim 1, the method comprising: fixing the one or more connection structures to one or more anatomical structures; and separating the frame structure from the one or more connection structures.
17. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION
[0035]
[0036] Although, the reconstruction plate 100 described above with reference to
[0037] The reconstruction plate 100 is designed to be attached via the connection portions 102 to the first and second bone portions 104, 106. For example, the connection portions 102 may comprise through holes located in the apparatus 100 through which screws or other fasteners may be inserted to connect the reconstruction plate 100 to the first and second bone portions 104, 106, thereby providing structural support for the first and second bone portions 104, 106 while the respective bone portions 104, 106 heal.
[0038]
[0039] The apparatus 200 comprises a series of connection structures, referred to herein as miniplates 202, attached to each other by a removable frame structure referred to herein as a jig bar 204.
[0040] The connection structures each comprise one or more connection portions 206, which are the same or similar to the connection portions 106 described above with reference to
[0041] The jig bar 204 is formed with the miniplates 202 to maintain the position and orientation of each of the miniplates 202 while the miniplates are being fixed to the appropriate anatomical structures during a surgical procedure. In particular, at the time of fixation of the apparatus 200 to a patient, the multiple miniplates 202 are fixed to the jig bar 204 so that the surgeon can easily handle the apparatus 200 (by e.g. gripping the jig bar 204), can manipulate the apparatus 200 (and therefore all of the respective miniplates 202, at once) into the correct position and orientation, and then affix the miniplates 202 to the appropriate tissue or bone structures of the patient. In other words, the apparatus 200 described with reference to
[0042] As described in more detail below, with reference to
[0043] In some embodiments, as shown in
[0044] As depicted in
[0045] In some examples the separation portions 208 may comprise a thinned portion of the respective spurs 210 located at or near the points where the spurs 210 meet the miniplates 202. In some examples, the separation portion 208 may be sufficiently thinned as to allow the surgeon to snap the jig bar 204 away from the miniplates 202.
[0046] The apparatus 200 described above with reference to
[0047] In the example of a fibular mandibular reconstruction, as described above, the surgeon can manipulate the apparatus 200 such that the miniplates 202 configured (i.e. positioned and orientated) to meet with the first bone portions 104), fix those miniplates 202 to the first bone portions 202, and then fix the second bone portions 106 to the correspondingly positioned and orientated miniplates 202. Accordingly, the second bone portions 106 can be fixed in the correct position and orientation as a single unit thus minimising the possibility that the miniplates 202 will be positioned incorrectly. Once the miniplates 202 are fixed to the first and second bone portions 104, 106, in the required spatial position and orientation, the surgeon can remove the jig bar 204.
[0048] Attaching the miniplates 202 to the jig bar 204 as a single unit may provide that fixation will be technically easier and therefore quicker to perform, reducing surgical time.
[0049] Advantageously, the jig bar 204 connects the miniplates 202 in parallel but stands away from the bone portions 104, 106 when the surgical procedure to fix the miniplates 202 into position is ongoing. This reduces the likelihood of there being damage or interruption of the blood vessels and/or muscle or soft tissue around the bone portions 104, 106 and between the individual miniplates 202.
[0050] Furthermore, removing the jig bar 204 as a single unit from the miniplates 202 after the miniplates 202 have been fixed into position simplifies the surgical procedure.
[0051] It will be understood that while the examples described herein relate to reconstruction plates for repair or reconstruction of mandibles, the principles disclosed are applicable to apparatus for supporting other anatomical structures. For example, the apparatus 200 may be designed to provide structural support to other axial or appendicular skeletal structures such as leg, arm, hand or foot bones, cranial bones, facial bones, vertebral bones and/or pelvic bones, or for soft tissues such as tendons, ligaments, blood vessels, muscle tissue, neural tissue (in the brain or elsewhere in the nervous system), and/or cardiac tissue (such as heart valves or myocardium).
[0052]
[0053] At block 302, a model of an apparatus is received. The model is based image data representing an image of an anatomical structure. For example, in relation the mandibular reconstruction example described above with reference to
[0054] In some examples, the model may be generated based on image data received from a third party. For example, the image data may be retrieved from a picture archiving and communication system (PACS). For example, the image may be routed to a data processing apparatus using Digital Imaging and Communications in Medicine (DICOM) routing. In some embodiments, the data processing apparatus may be part of an image acquisition system, such as, for example, an X-ray fluoroscopy device, a computed tomography device, a magnetic resonance imaging device a molecular imaging device, a SPECT device, a PET device or combinations thereof. Alternatively, the data processing apparatus may be separate from the imaging device used to acquire an image and may be retrieved by the data processing apparatus or sent to the data processing apparatus via a communications interface.
[0055] The data processing apparatus may be a general-purpose computing device executing software arranged to generate the model based on the image data representing the image of the anatomical structure.
[0056] At block 304, an apparatus, such as the apparatus 200 described above with reference to
[0057] Additive manufacturing is a process by which a structural component can be formed by selectively adding layers of material, rather than removing, for example by machining, material to form the component. For example, in some additive manufacturing processes, a layer of powdered material is deposited, and particles of the powdered material are selectively fused (for example by melting the powdered particles with a directable energy source). Following fusion of a selected portion of the layer, a further layer of powdered material is deposited and selectively fused. By selectively fusing the powdered material in multiple layers, a three-dimensional object or component can be manufactured.
[0058] Additive manufacturing processes can be used to produce bespoke components because the dimensions of components manufactured by an additive manufacturing process can be easily specified using, for example, computer aided design (CAD) tools. Furthermore, additive manufacturing processes can enable components with complex geometries to be produced, which would otherwise be difficult to produce using non-additive manufacturing processes.
[0059] The additive manufacturing process may include one or more of: selective laser melting; 3D inkjet printing; laser sintering; electron beam melting.
[0060] Alternatively, the apparatus 200 could be manufactured by a subtractive manufacturing method, such as milling, or by other manufacturing (not classified as additive or subtractive), such as casting.
[0061]
[0062] At block 402, one or more connection structures (e.g. miniplates 202) is connected to one or more anatomical structures. For example, as described above, the connection structures may comprise through holes for receiving screws, plates, nails wires, pins, sutures, or other fixing means to physically fix the connecting structures to a portion of the anatomy of a patient.
[0063] At block 404, once each of the required connection structures (e.g. miniplates 202) is connected and the apparatus (e.g. apparatus 200) is fixed in place, the frame structure (e.g. the jig bar 204) is separated from the one or more connection structures (e.g. miniplates 202). For example, during a surgical procedure, a surgeon may use a surgical bur tool, cutting pliers, or any other appropriate tool, to cut through a join between the frame structure and the connection structures. That is, in relation to the apparatus 200 described with reference to
[0064] Accordingly, the apparatus 200 described herein, the methods of manufacturing such an apparatus, and the methods of installing such an apparatus, may provide significant improvements to the ease and/or efficiency with reconstructive surgery can be performed. In particular, the apparatus 200 described above with reference to
[0065] The above embodiments are to be understood as illustrative examples of the invention. Further embodiments of the invention are envisaged. For example, although the embodiments described above with reference to