Implants
Customized maxillofacial implants and drilling guides, based on pre-operative models, address the inaccuracies in bone surgery by ensuring precise alignment and fixation of bone segments, improving surgical outcomes and safety.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-15
- Publication Date
- 2026-03-11
AI Technical Summary
Existing bone surgery techniques for repositioning bone fragments are dependent on the quality of the osteotomy or resection procedure, leading to potential inaccuracies in achieving a good connection between bone portions, especially when the osteotomy and/or resection is incomplete, imprecise, or rough.
Customized maxillofacial implants and drilling guides are created using pre-operative three-dimensional models to precisely position and fix bone segments, involving virtual osteotomy and repositioning simulations, followed by the fabrication of implants and guides that correspond to the desired postoperative orientation, ensuring accurate alignment and fixation.
The method ensures precise alignment and fixation of bone segments, reducing the impact of osteotomy imperfections and minimizing damage to critical anatomical structures, thereby enhancing the accuracy and safety of bone surgery procedures.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a technique for repositioning bone segments for bone surgery, particularly facial surgery, which technique is based on the use of customized implants and guides. [Background technology]
[0002] Surgical interventions may be performed to correct bone deformities, facial imbalances or imbalances, or to correct sequelae of traumatic injuries. These interventions involve the surgeon repositioning some of the bone fragments that have previously been separated from their bases into ideal positions.
[0003] Such surgical interventions therefore include osteotomies performed to remove one or more malpositioned bone fragments, for example by mobilizing the one or more bone fragments, i.e., by translation and / or rotation, so that they can be repositioned in an ideal position after the movement.
[0004] Once all bone fragments are in their new ideal positions, the surgeon uses one or more implants to fix the bone fragments to the patient's other adjacent bone segments. Implants include drilled implants that have different shapes, such as I-, L-, T-, X-, H-, or Z-shaped plates, or more complex shapes. The implants are secured to all bone segments with bone screws that pass through the drilled holes, ensuring they are joined in the correct relative positions.
[0005] In this way, facial symmetry and normal physical relationships can be restored.
[0006] US Pat. Nos. 5,690,631 and 6,221,075 describe such implants in the form of plates or lattices that allow at least two bone portions to be joined and fixed to one another.
[0007] Among the various types of surgery that affect the facial skeleton, the following may be mentioned: Orthognathic surgery aimed at repositioning the dental bridge in a more comfortable position can improve the alignment of the teeth. Such interventions involve maxillary osteotomies if the upper dental bridge needs to be moved, mandibular osteotomies if the lower dental bridge needs to be moved, or bimanual osteotomies if moving bone fragments bimanually is also desirable to restore normal facial balance. - genioplasty, which involves surgery on the patient's chin for aesthetic reasons (to correct an overly protruding chin or, on the other hand, a receding chin) or for functional reasons, for example, to allow the patient to move the upper and lower lips comfortably so that they come into contact with each other; - Correction of sequelae following accidental impact trauma, for example involving the cheekbones.
[0008] A technique for creating custom-sized, pre-formed implants is described in International Publication No. WO2011 / 136898, published November 3, 2011. The technique involves creating a custom-sized guide, which is also pre-formed, to guide the drilling of several holes for bone screws and to serve as a guide for the osteotomy.
[0009] A drawback of the above prior art is that it is dependent on the quality of the osteotomy or resection procedure performed by the surgeon. Summary of the Invention [Problem to be solved by the invention]
[0010] The object of the present invention is to overcome such drawbacks, for example, when a good connection between a first portion of a bone and a second portion of a bone is desirable even if the osteotomy and / or resection is incomplete, imprecise, or rough. [Means for solving the problem]
[0011] One embodiment of the present invention is a maxillofacial implant for osteosynthesis, comprising: a first plurality of apertures connecting the implant to a first maxillofacial bone portion of the patient; a second plurality of apertures connecting the implant to a second maxillofacial bone portion of the patient; a monolithic three-dimensional structure connecting the first and second pluralities of openings; the three-dimensional structure having a shape that varies in each of three dimensions to position the second maxillofacial bone portion relative to the first maxillofacial bone portion according to a desired postoperative orientation; following an osteotomy defining at least one cut resulting in a second maxillofacial bone portion being separated from a first maxillofacial bone portion, the implant being positioned to position the second maxillofacial bone portion relative to the first maxillofacial bone portion; the desired postoperative orientation corresponds to a selected disposition of the second maxillofacial bone portion relative to the first maxillofacial bone portion, the disposition including at least one of a translation and a rotation of the second maxillofacial bone portion relative to the first maxillofacial bone portion; It consists of maxillofacial implants. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 shows, according to an embodiment, a method that allows the creation of custom-sized implants and drilling guides. [Figure 2] FIG. 2 shows, according to an embodiment, a method that allows the creation of custom-sized implants and drilling guides. [Figure 3] FIG. 3 shows, according to an embodiment, a method that allows the creation of custom-sized implants and drilling guides. [Figure 4] FIG. 4 shows, according to an embodiment, a method that allows the creation of custom-sized implants and drilling guides. [Figure 5] FIG. 5 shows, according to an embodiment, a method that allows the creation of custom-sized implants and drilling guides. [Figure 6] FIG. 6 shows, according to an embodiment, a method that allows for the creation of custom-sized implants and drilling guides. [Figure 7] FIG. 7 shows, according to an embodiment, a method that allows the creation of custom-sized implants and drilling guides. [Figure 8] FIG. 8 shows, according to an embodiment, a method that allows for the creation of custom-sized implants and drilling guides. [Figure 9] FIG. 9 shows, according to an embodiment, a method that allows for the creation of custom-sized implants and drilling guides. [Figure 10a] FIG. 10a illustrates a longitudinal cross-sectional view of a drill bushing associated with a drill guide hole of an exemplary drill guide, the drill bushing being associated with a stop bit. [Figure 10b] FIG. 10b shows the osteotomy fixture placed in the drilled hole. [Figure 11] FIG. 11 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 12] FIG. 12 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 13] FIG. 13 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 14] FIG. 14 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 15] FIG. 15 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 16]FIG. 16 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 17] FIG. 17 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 18] FIG. 18 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 19] FIG. 19 illustrates the different steps of an orthognathic surgery that can be performed using the drilling guide and implants obtained by implementing the method illustrated in FIGS. [Figure 20] FIG. 20 illustrates a second exemplary method as applied to chin surgery. [Figure 21] FIG. 21 illustrates a second exemplary method as applied to chin surgery. [Figure 22] FIG. 22 illustrates a second exemplary method as applied to chin surgery. [Figure 23] FIG. 23 illustrates a second exemplary method as applied to chin surgery. [Figure 24] FIG. 24 illustrates a second exemplary method as applied to chin surgery. [Figure 25] FIG. 25 illustrates a second exemplary method as applied to chin surgery. [Figure 26] FIG. 26 illustrates a third exemplary method applied to mandibular reconstruction. [Figure 27] FIG. 27 shows a third exemplary method applied to mandibular reconstruction. [Figure 28] FIG. 28 illustrates a third exemplary method applied to mandibular reconstruction. [Figure 29] FIG. 29 illustrates a third exemplary method applied to mandibular reconstruction. [Figure 30]FIG. 30 illustrates a third exemplary method applied to mandibular reconstruction. [Figure 31] FIG. 31 shows a third exemplary method applied to mandibular reconstruction. [Figure 32] FIG. 32 shows a fourth embodiment having multiple guides and implants. [Figure 33] FIG. 33 shows a fourth embodiment having multiple guides and implants. [Figure 34a] FIG. 34a shows a variant of several embodiments. [Figure 34b] FIG. 34b shows a variant of several embodiments. [Figure 35a] Figure 35a shows the avoidance of high-risk anatomical regions. [Figure 35b] Figure 35b shows the avoidance of high-risk anatomical areas. DETAILED DESCRIPTION OF THE INVENTION
[0013] The techniques used in some embodiments described herein involve creating three-dimensional pre-operative or modified models of the entire bone. In some cases, these models are digitized and used to create implants and / or drill guides. The implants and / or drill guides can be custom-made for the patient, i.e., made to size or customized.
[0014] In some cases, pre-operative planning of repositioning operations to be performed on various bone fragments or segments is desirable to define ideal positions for the fragments or segments.
[0015] This preoperative planning involves the use of conventional x-ray studies or cross-sectional images from a CT scanner. Such image data is processed by a computer using specialized applications to generate a three-dimensional reconstruction of the image. For example, this step may involve accessing data representing the patient's preoperative maxillofacial skeleton and using this data to generate a three-dimensional model of the skeleton.
[0016] When this planning is complete, a three-dimensional pre-operative model of the bone structure, such as the skull or a portion thereof, is created. This constitutes the pre-operative shape of the bone. This shape is then modified in three dimensions to create a modified model that corresponds to the planned post-operative shape of the bone.
[0017] Among the means to achieve this, the surgeon, in collaboration with the technician if necessary, can use a surgical navigation system, which allows the definition of various cutting planes on the modified model. The bone fragments are then virtually separated from their base by osteotomies and can be translated to move them in one or more determined directions so that they can be repositioned in the correct position.
[0018] In this manner, an osteotomy is simulated in a pre-operative three-dimensional model of the maxillofacial skeleton. In one instance, the simulated osteotomy defines at least one cut, resulting in one or more bone segments separated from one or more other bone segments. In some instances, the at least one cut results in no bone connecting the bone segments. That is, the cut is a complete cut, completely separating at least one bone segment from one or more other bone segments. Thus, the cut results in no continuous bone connecting the bone segments.
[0019] After this virtual osteotomy, the second step involves performing an ideal repositioning of the various bone fragments, also virtually.
[0020] Repositioning or positioning one or more bone segments relative to one or more other bone segments allows for the generation of a modified three-dimensional model, which represents the desired post-operative orientation of the bone segments.
[0021] For this purpose, surgeons typically use symmetry and cephalometric criteria.
[0022] The repositioning operation performed is a transformation combining translational and / or rotational movements. In one example, this positioning can include at least one of a translation of one or more bone segments relative to one or more other bone segments and a rotation of one or more bone segments about an axis, the rotation being oriented at a non-zero angle relative to the plane of the osteotomy, e.g., at least one plane of the virtual osteotomy cut in the initial preoperative model. In more complex operations, the osteotomy can follow a complex shape in multiple planes. In some cases, in the surgical procedure following the virtual osteotomy, the cut can be partial, with the complete separation achieved by a surgeon-imposed fracture of one or more bones.
[0023] In this second step, the surgeon also defines any bone segments to be resected, at least while the surgeon views the bone fragments on the computer screen, in case some bone fragments may overlap each other when translated together.
[0024] Thus, in a third step, an engineer or technician, working closely with the surgeon, may physically design one or more implants. In one example, the engineer or technician may also be involved in virtual osteotomies and / or repositioning, and / or may perform this in collaboration with a medically trained professional. Following the fabrication of one or more implants according to the design, the surgeon may perform real osteotomies, rather than virtual ones, and then fix the implants to different bone fragments. This procedure may optionally include a resection procedure, which holds the bone fragments in place and is fixed by one or more implants. The implants may be left in place for as long as necessary for restoration and bone strengthening.
[0025] Some embodiments are described in detail in the following description in conjunction with the accompanying drawings, which should be noted that these drawings are intended only to illustrate the text of the description and are not limiting in themselves.
[0026] In some embodiments, a method is described that includes customizing one or more of the following: (a) a preformed implant; and (b) a preformed guide that is used to guide the drilling of all screw holes necessary to secure the implant to the bone segments that will be fixedly joined after maxillofacial osteotomy. The preformed guide may also, in some cases, include an osteotomy template to guide the osteotomy. One exemplary method is described with reference to FIGS. 1-9.
[0027] Orthognathic surgery, the different preparatory steps of which are shown as a first example in Figures 1 to 9, is intended to correct the occurrence of asymmetry, and the intervention involves, in this case, maxillary osteotomy. In some embodiments, this may be combined with chin surgery of the kind shown in Figures 20 to 25.
[0028] As mentioned above, a technician, often working with a surgeon, first uses a computer to create a three-dimensional pre-operative model 40 of the bone, constituting the pre-operative shape of the bone (FIG. 1). For example, in this case, the pre-operative model is a portion of the skull. This bone model may be a model of the finished portion of the bone involved in the repositioning operation.
[0029] Using dedicated planning software, such as software sold by the Belgian company Materialise under the name Mimics, the user, usually a medically trained professional such as a surgeon, modifies the preoperative model by performing a virtual osteotomy 3 (Figure 2), assisted by a technician if necessary. Following this, a modified model 50 is reached that provides the ideal result desired by the surgical intervention and thus corresponds to the planned bone geometry (Figure 3). For example, this can be the desired postoperative orientation of the first and second bone segments. This model is modified during the preoperative phase. In Figure 3, the ideal result is the positioning of the maxillary segment (2) relative to the skull (1). This can reflect, for example, the desired alignment of the maxilla and mandible, alignment following bone trauma or fracture, and / or alignment to correct a deformity.
[0030] As described above, while virtually performing the osteotomy, a user such as a surgeon can imagine performing one or more resection operations if interference occurs between several bone fragments in order to achieve perfect positioning of the separated bone portion 2 relative to the underlying bone portion 1.
[0031] In this description, the underlying bone portion 1 will be referred to as the "first portion of the bone," and the separated portion 2 (or separated portions) will be referred to as the "second portion of the bone." However, as noted elsewhere herein, this method may also be applied to multiple bone portions, such that one or more of the first and second bone portions include multiple bone fragments and / or involve other bone portions that are to be repositioned.
[0032] After ideally repositioning the second portion 2 of the bone relative to the first portion 1 in the virtual three-dimensional space of the modified model, the user defines future fixation positions of the two portions of the bone using one or more implants. In this case, the fixation positions are related to the axes of the bone screws, which ensures that the user fully fixes the one or more implants to the bone portions so that the bone portions are fixedly held in the correct desired relative positions.
[0033] A sufficient number of such fixation positions 4 (e.g., eight on the first part 1 of the bone and eight on the second part 2 of the bone) are provided to ensure fixation of the second part 2 of the bone to the first part 1 (see Figure 4).
[0034] In this example, the future fixation locations, referred to as attachment locations, have a first plurality of attachment locations for implants in a first bone portion and a second plurality of attachment locations for implants in a second bone portion, e.g., in Figure 4, there are eight attachment locations in each bone portion.
[0035] As described above and shown in Figure 4, the first and second plurality of attachment locations are defined on the three-dimensional model based on the location of at least one of one or more anatomical features of the patient. For example, the fixation or attachment locations can be defined to avoid numerous anatomical obstacles, such as at least one or more tooth roots, nerves, and / or blood vessels within the bone portions. Similarly, some of the bone portions may be very thin, making it difficult to achieve a stable osteosynthesis, for example, this is particularly true in the region of the maxilla.
[0036] By defining the fixation location, screws can be individually placed in the most favorable locations to successfully complete the repositioning without complications, e.g., placing screws in areas with the best bone quality with significantly reduced risk of damaging critical anatomical structures.
[0037] In practice, as shown in FIG. 4, this results in at least a first set of adjacent attachment locations being spaced apart at a different distance than a second set of adjacent attachment locations when compared to the comparative example. In this case, the first and second sets of adjacent attachment locations include either two sets of attachment locations, each set having adjacent attachment locations on the same bone portion, or two sets of attachment locations, each set having a first attachment location on a first bone portion and a second adjacent attachment location on a second bone portion. That is, the attachment locations are typically not defined in a standard square or rectangular relationship, and individual placements will result in variations in the relative spacing between attachment locations. While not all fixation locations need to be individually placed, at least one should be placed to avoid high-risk anatomical areas.
[0038] According to some embodiments described herein, after defining the fixation or attachment locations, a monolithic three-dimensional structure of the implant is defined. This structure connects the first and second plurality of attachment locations in the modified three-dimensional model. The defined structure has a shape that varies in each of the three dimensions to position or align the second bone portion relative to the first bone portion according to a desired postoperative orientation. In this case, at least one attachment location in the implant structure corresponds to an opening for a bone anchor. For example, each fixation location corresponds to a hole through which a bone screw secures the implant to the bone portion.
[0039] For example, the user can then draw implant 5, which can be seen in Figure 9. Sixteen bone screws, which ensure the fixation of the implant to the first and second parts of the bone, are designated by positions 6. These screws correspond exactly to the fixation or attachment positions 4, which can be seen in Figure 4.
[0040] In the above examples, the anchoring or mounting locations are defined prior to the construction of the implant. In fact, the construction of the implant is designed around the placement of the anchoring locations. For example, in Figure 9, the implant has a portion in the form of a member connecting several adjacent openings for the mounting screws.
[0041] Thus, the implant 5 is positioned preoperatively to correspond to the planned postoperative shape of the desired anatomy. Along with being customized to the shape of the specifically tailored connector between the individually placed screw openings, the implant 5 is preformed so that its inner annular surface matches, enabling unique and precise positioning of the two bone segments to be joined at the end of the surgical procedure. In other words, the implant has a shape that varies in three dimensions to position the second bone segment relative to the first bone segment according to the desired postoperative orientation, and the implant has a shape that fits the anatomy of both the first and second bone segments. The term "inner annulus" refers to the underside of the arch and is used to refer to the curvature of the implant. In particular, in this example, it refers to the inner curvature that corresponds to the outer curvature of the bone segments. Such curvature is customized for each patient, and the inner surface of the implant 5 in this example can vary non-uniformly with multiple contours to reflect the patient's anatomy. In this case, a first portion of the implant structure has a three-dimensional shape and includes a defined inner surface or plane that fits into an outer surface or plane defined by the anatomy of a first portion of bone, i.e., the upper skull, and a second portion of the implant structure has a three-dimensional shape and includes a defined inner surface or plane that fits into an outer surface or plane defined by the anatomy of a second portion of bone, i.e., the maxillary portion that is realigned with the upper skull.
[0042] The implant 5 extends on either side of one or more osteotomy lines 7. The one or more osteotomy lines 7 each define a cut that includes a line separating two portions of the bone 1, 2. The structure of the implant 5 has through holes for screws that correspond to drill guide holes or attachment locations for the screws, as defined on the modified model, relative to the second portion 2 of the bone.
[0043] The implant 5 can be manufactured or created based on a defined structure, for example based on a three-dimensional model as shown in Figure 9. The implant can be manufactured by additive manufacturing, for example by three-dimensional printing, i.e. selective laser sintering.
[0044] In contrast to the comparative example, the through-holes in the implant 5 for receiving screws to allow fixation of the implant to the first portion of bone are not provided in a completely random and haphazard manner. Instead, in some embodiments described herein, such holes are provided in the first portion of bone 1 to correspond to attachment or fixation locations as defined in the modified model.
[0045] In the embodiment described herein, a user, e.g., a technician, possibly assisted by a surgeon, uses a computer application to perform an inverse transformation of the ideal repositioning performed, i.e., back to a pre-operative model of the bone, which constitutes the pre-operative shape of the bone. In this case, the first and second plurality of attachment locations are mapped to corresponding positions on a three-dimensional model of the pre-operative maxillofacial skeleton.
[0046] For example, in a preoperative maxillofacial skeleton prototype (FIG. 5), a user defines hole positions, e.g., using a virtual model of a drill bushing or drill bit 8. In this case, these positions are derived from pre-planned fixation positions 4 for the modified model, i.e., correspond to fixation positions 4 (FIG. 4). In the example shown in FIGS. 1-9, fixation positions 4 for a first portion 1 can be directly positioned between the modified and unmodified models. The position of the first portion of bone 1 in three-dimensional space does not change between the modified and unmodified models. In the same example, fixation positions 4 for a second portion 2 are positioned based on its relative position with respect to the second portion 2. In the latter case, the position, placement, and / or orientation of the second portion changes with respect to the first portion between the modified and unmodified models as a result of the virtual osteotomy. Therefore, fixation positions 4 can be positioned by applying a function inverse to the function that defines the translation and / or rotation resulting from the virtual osteotomy. In both cases, this positioning can be achieved by applying functions to the 3D coordinates or model elements.
[0047] Following the positioning step, a monolithic three-dimensional structure of the surgical guide is determined and connects to corresponding locations in a three-dimensional model of the preoperative maxillofacial skeleton. For example, in one case, a user can "draw" or define a surgical guide in the virtual model that corresponds to the preoperative shape of the bone and has drill guide holes for fixation screws. In a preferred case, the location of one or more osteotomies to be performed is also defined by the surgical guide structure. An exemplary surgical guide defined as a three-dimensional model is shown in FIG. 6.
[0048] The drilling guide 9 thus defined and visible in FIG. 6 consequently comprises: - in the second part 2 of the bone that needs to be separated, drilling guide holes for the screws that correspond to the drilling guide holes for the screws of the modified model, provided for the second part; - Two notches 10, 11 that correspond to the template for subsequent osteotomies.
[0049] The notch can have an elongated opening with a three-dimensional guide structure positioned to allow passage of a cutting tool, such as a bone saw, to perform one or more osteotomies, respectively.
[0050] Like implants, drilling guides are configured so that there is excellent correspondence between the surface of their inner ring and the patient's bone support or anatomy. In this way, there is only one possible position for such a guide relative to the patient's anatomy. For example, the guide can be positioned flush with the patient's bone segment in only one unique spatial position or configuration. In this case, if the guide is placed in an incorrect orientation relative to the bone segment, the guide will not be properly positioned, i.e., will be in an unstable configuration. Therefore, by moving the guide to the correct configuration, the inner surface defined by the guide and the outer surface defined by the bone segment will stably match. This allows for easier and more accurate surgical procedures at a later stage.
[0051] The guide 9 in this embodiment has drilled guide holes for screws for the first portion of the bone (and also for the second portion of the bone), the exact positions of these holes being defined during the operation seen in Figure 4.
[0052] Figure 7 shows a pre-operative or unmodified model in which holes have been defined in the first and second bone portions for the passage of screws that will later secure the implants 5. Since no virtual osteotomy or repositioning operation has yet been performed at the stage shown in Figure 7, the relative spatial arrangement of the holes differs in this case from the relative spatial arrangement of the fixation locations 4 seen in Figure 4. These holes represent holes that will be drilled for pre-defined fixation or attachment locations.
[0053] Figure 8 shows different positions of multiple drill bits 8 (or at least the ends of the drill bits) in a first bone portion 1 and a second bone portion 2 after osteotomy but before repositioning. In this case, the drill bits 8 are modeled in a virtual three-dimensional model, as shown in more detail in Figures 10a and 10b. Modeling the drill bits 8 can facilitate defining the height of one or more drill bushings 15, as will be described below.
[0054] Finally, FIG. 9 shows a simulation of two portions of bone joined together after an osteotomy and repositioning operation. Once the implant 5 and guide 9 are determined, i.e., designed, in virtual three-dimensional space, they can be manufactured for use in the osteotomy and repositioning operation. Thus, FIG. 9 illustrates the use of the implant 5 after surgery. The connection between the two portions of bone is securely maintained using the implant 5. The implant can remain in the body indefinitely or for as long as the surgeon deems necessary to stabilize and strengthen the two portions of bone. For example, in a case similar to FIG. 9, bone may grow to join both the first and second portions into the configuration established by the implant 5.
[0055] Figures 1 to 9 show different preparatory stages of the customized creation of a preformed implant 5 and a preformed guide 9. Following this, orthognathic surgical procedures in which the manufactured implants and guides can be used will be described below with reference to Figures 11 to 19.
[0056] The facial skeleton 40 to be restored is shown in FIG. 11, which is similar to the virtual model of FIG.
[0057] The surgeon places the custom-sized guide 9 on the patient's face. In one instance, for example, if the procedure is simple and brief, the guide 9 may be manually held in the position shown in FIG. 12. In another instance, for example, if the procedure is relatively lengthy, the guide may be temporarily secured using one or more osteotomy screws on one or more sides of the osteotomy or cutting template 3, for example, as shown in FIG. 13. In some instances, at least one of the one or more openings for attaching the surgical guide 9 is perfectly aligned with the defined osteotomy cut.
[0058] In both of the above cases, i.e., relating to Fig. 12 or Fig. 13, the drilling guide 9 is held stable. In this case, the surgeon then drills holes (16 in this example) at the locations provided according to the drilling guide holes in the guide. For example, Fig. 14 shows at least a portion of a drill bit 8 being inserted into one of the guide holes in the guide 9 to drill a hole.
[0059] If the guide 9 is stabilized by one or more osteotomy screws, the holes created by these screws can replace, in a corresponding number, one or more holes provided at designated positions, i.e., fixed or attachment positions.
[0060] In some cases, as part of defining the fixation locations, an orientation angle of an axis associated with one or more holes can also be defined based on the position of at least one of one or more anatomical features of the patient, and this axis can be offset from a standard, i.e., an axis perpendicular to the surface of the bone portion.
[0061] Depending on the surgeon's preference, the osteotomy can then be delineated with notches 10 and 11 using a pencil or medical felt-tip pen, or these notches can be used immediately to begin the osteotomy immediately, as shown in Figure 15.
[0062] The surgeon then removes the temporary stabilizing screws, if placed, and then removes the guide. In one instance, a tool 20, such as a saw, milling cutter, or laser, is used to complete or perform the osteotomies 12, 13, which allow the maxilla to be released and mobilized, as shown in FIG. 16.
[0063] The surgeon is then free to move the second portion of bone 2 thereafter to contact the first portion of bone 1 in a desired relative position, as shown in FIG. 17. The customized features of the construction of the implant 5 allow the surgeon to only use the implant 5 to fix the two portions 1 and 2 in one desired position or configuration. For example, there is only one position or configuration in three-dimensional space where the axes of the holes for the bone screws 6 provided for the construction of the implant 5 correspond to the holes made in the two bone portions during the procedure shown in FIG. 14. This is shown in FIG. 18.
[0064] Finally, the surgeon simply inserts and screws the bone screws 6 into the 16 holes made in the bone parts at the fixation positions 4, and finally fixes the two bone parts 1, 2 with the implants 5. This is shown in FIG.
[0065] It was previously mentioned that the exact locations of the holes intended to receive the screws in the implant 5 are shown on the modified model. Thus, in one instance, all hole locations are planned before the osteotomy is performed. This means that at the time of surgery, the holes and fixation locations are perfectly defined by the guide 9 and implant 5, thereby reducing the need for precision in the subsequent surgical procedure.
[0066] In one particular example, knowledge of the patient's anatomy can ensure that the holes for the osteotomy screws do not contact any underlying major tissue. For example, the surgical guide 9 can be defined so that the holes remain guided during drilling to avoid certain anatomical areas.
[0067] To this end, as shown in Figures 10a and 10b, one or more drill bushings 15 are defined and form part of the guide structure, either insertable into or defining the drilling guide holes of the guide. According to this particular example, the drill bushings 15 have a predetermined height to avoid high-risk anatomical features of the patient. Additionally or alternatively, the drill bushings 15 can be configured so that the subsequently drilled holes 14 have an orientation axis that also avoids high-risk anatomical features of the patient.
[0068] FIG. 10a shows a drill bit 8 used to drill a hole 14. The hole 14 then receives an osteotomy screw 6 to secure the implant 5 and / or guide 9 to the patient's bone portion, as shown in FIG. 10b. In FIG. 10a, a drill bushing 15 includes a stop 16. The stop 16 is used to prevent the drill bit 8 from penetrating the bone portion. More specifically, in one example, the stop 16 is formed by a cylindrical upper portion of the drill bushing 15, the edge of which has a ledge extending substantially perpendicular to the axis of the hole 14 and the drill bushing 15. The ledge (which in some examples may include a lip, collar, or flange) contacts a corresponding collar of the drill bit 8 to prevent the drill bit 8 from moving further along the axis of the hole and drill bushing 15.
[0069] Additionally or alternatively, the precise location of such holes 14 may be derived with certainty and precision by several exemplary methods. For example, as shown in Figure 6, drill bushings 15 may form a customized portion of the guide structure, with each guide opening containing a drill bushing having a customized height. These drill bushings then form part of the complete as-manufactured guide structure.
[0070] Therefore, the bone screws 6, one of which is shown in Figure 10b, when screwed into the patient's bone fragments, do not risk contacting nerves, tooth roots or blood vessels (i.e. high-risk anatomical areas).
[0071] As described herein, the relative spatial arrangement of the holes for receiving the screws used to fixate the implants corresponds to the relative spatial arrangement of the drill guide positions. In the field of facial surgery, multiple applications of the described method can be established, for example, for repair of defects in the mandible, chin, or at least one of the two cheekbones.
[0072] Thus, Figures 20 to 25 show, in a second embodiment, the application of this method to chin surgery.
[0073] FIG. 20 shows the chin 21 to be repaired.
[0074] 21 shows a schematic representation of a virtually defined osteotomy line 22. It also shows a schematic representation of a desired, virtually defined, reference point for the resection line 23.
[0075] 22 shows the desired state of the chin after two operations, osteotomy and resection, followed by repositioning of the second part 24 relative to the first part 25 of the bone.
[0076] Based on the final result shown in FIG. 25, it can be seen that the following are predetermined: a) Implant fixation position 26, which fixes and connects the bone segments 24, 25 in their ideal relative positions. b) Implant 27 c) Drilling guide 28 Figure 23 shows a virtual model of a chin 23 to be repaired. The chin shown in the model may be fitted by the surgeon with a custom-made drill guide 28 for subsequent use. The model in Figure 23 also shows the result of the resection. The guide 28 in Figure 23 is provided with four drill guide holes. In use, the drill guide holes guide the drill bit to form a number of fixation positions 26 that will receive four fixation screws of the implant 27.
[0077] The four holes 26 drilled in this way can be seen in Figure 24. The chin must be in its ideal final position, i.e. after the guide 28 has been removed and the two bone parts 24, 25 have been repositioned after the osteotomy and resection.
[0078] Finally, FIG. 25 shows the fixation of two bone parts of the chin, similarly restored using an implant 27 provided with four bone screws.
[0079] As a third variant, Figures 26 to 31 show the application of the above method to the reconstruction of the mandible.
[0080] Figure 26 shows a restoring mandible 40. Figure 27 shows a virtually defined osteotomy cut 29, and Figure 28 virtually shows the ideal relative repositioning that would be desired for two bone segments 30, 31 separated by the virtual osteotomy.
[0081] Thus, FIG. 28 shows the post-operative shape 50 of the complete bone.
[0082] Therefore, based on this modified model, the fixation positions 32 of the planned implants 33 are accurately defined as described above, as shown in Figure 29. As a result, by returning to the pre-operative model with an inverse transformation applied by the computer application, the positions of the drill guide holes of the planned drill guide 34 are defined.
[0083] 29, in this embodiment the implant 33 is a generally I-shaped plate. There are three fixation locations 32 for bone screws aligned with a first portion 30 of the bone and three fixation locations 32 for bone screws aligned with a second portion 31 of the bone. In this embodiment, the six fixation locations 32 are arranged in a generally collinear fashion.
[0084] Once the fixation or attachment points have been defined and the implant 33 has been depicted, we return to the pre-operative model of FIG. 26 and determine the drill guide 34 to include the following elements: six drilled guide holes 35, which correspond to the six fixation positions 32 after the two bone parts 30, 31 have been returned to the positions they occupied before the resection; - A notch 36 cut in the middle of the guide 34 to act as a reference point either for drawing the osteotomy line or for starting the osteotomy.
[0085] Thus, the surgeon only needs to place the guide 34 on the patient's mandible, as shown in Figure 30, drill six fixation locations 32 in the bone segments 30, 31 using the six drill guide holes 35 of the guide 34 for this purpose, remove the guide 34, and perform the osteotomy completely or at least finish it. Thereafter, the patient's mandible, as shown in Figure 27, is captured with the six locations 32 intended to receive the six fixation screws at the end of this intervention.
[0086] After repositioning the two bone parts to the originally desired ideal relative position shown in Figure 29, the surgeon simply inserts six bone screws 6 into the six preformed holes 35 to position the implants 33. Figure 31 therefore represents the completed surgical procedure.
[0087] By way of example, to apply the method described with the aid of several embodiments, each implant and / or each drill guide is made of titanium.
[0088] Figure 32 shows an embodiment in which the above method is repeated to determine a plurality of monolithic three-dimensional structures for a plurality of surgical guides 44. In the case of Figure 32, the method is repeated for a plurality of first bone portions 1 and a common second bone portion 2. In Figure 33, a plurality of implants are defined. 43 The above-described method is repeated to determine multiple monolithic three-dimensional structures for the surgical guide. As can be seen from this example, one structure of the surgical guide corresponds to multiple structures of the implant. In other examples, this adaptation can be applied in reverse, for example, multiple structures of the surgical guide can correspond to one structure of the implant. In Figures 32 and 33, the second bone portion 2 is part of the zygomatic bone (i.e., cheek), the upper jaw is seen on the right side of the figure, the eye socket is in the upper left quarter of the figure, and the nasal cavity is facing up in each figure.
[0089] Figures 34a and 34b illustrate how a portion of a first structure of a first implant and a first surgical guide can be defined and manufactured. This portion of the first structure distinguishes the first structure from a second implant or a second structure of a second surgical guide. For example, protrusion 47a in Figure 34a distinguishes an upper implant for use in one jaw from another similar lower implant with a different protrusion 47b shown in Figure 34b for use in the other jaw.
[0090] Figures 35a and 35b show the nerve 51 and tooth root 53. In Figure 35a it can be seen how the proposed hole for the screw 6 is defined by a distance 52 to avoid the nerve 51. This can be achieved by defining one or more depths and orientations of the hole, which are then used to define the guide structure. As with the hole, in Figure 35b the screw 6 of the implant, when in use, also avoids the tooth root 53.
[0091] In the comparative example, the osteotomy and / or resection must strictly follow what the surgeon virtually previewed on the computer. This is because, when fixing an implant to a separated bone segment, the surgeon must fix the implant to the first bone segment using several completely random and unprogrammed screw holes. For example, these screw holes may be based on random pre-drilled fixation holes. In this case, it is difficult to correct imperfections in the osteotomy and / or resection. However, according to the method described herein, the predetermined attachment locations and associated holes, guided by a custom drilling guide, ensure accurate alignment of the bone segments and reduce the impact of imperfections in the osteotomy.
[0092] One example is a method in which an implant and a guide are made to size together. A preformed implant is placed to fixate a first portion of the bone with a screw to a second portion of the bone that needs to be separated by an osteotomy. A guide is preformed to guide the drilling of holes for the screws and to guide the osteotomy. In such a method, the following steps are performed before the osteotomy:
[0093] a) Using a computer to create a three-dimensional pre-operative model of the complete bone, construct the pre-operative shape of the complete bone, and modify the pre-operative model to create a modified model by: a1) the planned postoperative shape of the complete bone; a2) Drilling guide holes for the screws and at least one reference point for the osteotomy template in the second part of the bone that needs to be separated.
[0094] b) Next, create the following b1) and b2) according to the dimensions. b1) A preformed bone fixation implant, which is placed in a preoperative manner to correspond to the planned postoperative shape of the complete bone, having preformed parts so that a first part and a second part of the bone can be fixed to each other, and through holes for screws are created on the preformed implant for the second part of the bone that needs to be separated, corresponding to the drilling guide holes for the screws of the modified model, and holes for passing the screws are provided randomly and haphazardly on the preformed implant so that the implant can be fixed to the first part of the bone. b2) A preformed drilling guide, which is placed in a preoperative manner to correspond to the preoperative shape of the intact bone.
[0095] On this guide, drill guide holes for the screws are created for the second portion of bone that needs to be separated, corresponding to the drill guide holes for the screws of the modified model.
[0096] During the operation for modifying the model, seen in step a), the following steps are further included: creating on the modified model additional drill guide holes for the screws of the first part of the bone in addition to the drill guide holes for the screws provided for the second part of the bone that needs to be separated and the reference points of the osteotomy template, and during the operation for making to size, seen in step b), creating on the preformed drill guide additional drill guide holes for the screws of the first part of the bone, and ensuring that the holes provided in the implant correspond to the additional drill guide holes created in the modified model for the passage of the screws that will allow the implant to be fixed to the first part of the bone.
[0097] The complete relative spatial arrangement of all screw passage locations created on the modified model using the drilling guide corresponds to the complete relative spatial arrangement of all screw holes created in the implant.
[0098] In some embodiments described herein, certain features of at least one guide and at least one implant are determined and / or created to size. In this case, the guide is configured to correspond to a certain extent to the initial situation to be corrected, and the implant is configured to correspond to a certain extent to the ideal, planned situation. In this case, a correspondence is created between drilled guide holes for fixation screws in the first portion of the bone and through holes created in the implant for the screws in the first portion of the bone. As a result, the implant is configured to accurately join the first portion of the bone to the second portion(s) of the bone, even if the osteotomy or resection is incomplete or rough.
[0099] As a result, by using the guide and / or implant as described herein, the surgeon does not have to delay performing the osteotomy and any resections due to the need to have the highest precision. Because the guide holes for the fixation screws all have defined locations in both the first portion of the bone and the second portion of the bone, it is known in advance that the implant will ideally couple all portions of the bone to the area of the patient's face being treated.
[0100] To reduce the risk of contacting underlying vital structures such as nerves, blood vessels, and tooth roots, the methods described herein require precise determination of the axis and / or depth of the drill holes, as well as the exact location of each hole to receive the fixation screw.
[0101] Thus, the drill guide described herein comprises, for at least one drill guide hole provided therein, a drill bushing whose axis corresponds to the axis of the drill hole and whose height fixes the drill hole in such a way that it limits the drilling depth, thereby eliminating the risk of the drill bit coming into contact with the main tissue.
[0102] Some of the methods described herein provide for a second portion of the bone to be separated from the first portion by osteotomy so that it can separate itself into several pieces.
[0103] The embodiments described herein also relate to a preformed implant obtained by implementing some of the methods described above. The implant is intended to fix a first portion of bone to a second portion of bone that needs to be separated from the first portion by osteotomy using screws. The implant is made to dimensions corresponding to a modified model that establishes the planned postoperative shape of the complete bone. The implant includes through-holes for screws for the second portion of bone that needs to be separated, which correspond to the drill guide holes for the screws in the modified model. The implant is determined such that the first portion of bone also has holes for screws, which correspond to the drill guide holes made in the modified model for the screws intended for the first portion of bone.
[0104] Thus, the implant described in the above example has holes for passing planned fixation screws into the first portion of the bone, which holes correspond to drill guide holes created in the modified model for screws intended for the same first portion of the bone.
[0105] In other words, the relative spatial arrangement of some or all of the fixation screw holes created in the implant corresponds to the relative spatial arrangement of some or all of the screw guide holes created in the modified model. Thus, the implant is located in only one location on the patient's face after the osteotomy and any resections. Therefore, it is not critical if the osteotomy and / or resections are incomplete or rough.
[0106] The key factor is that after the implant is secured with the bone screws, the second portion of the bone or portions is well positioned relative to the first portion of the bone, so that after restoring the bone and joining all the operated areas, the first and second portions of the patient's bone are joined as originally desired.
[0107] In the same context, the embodiments described herein relate to a preformed drilling guide, obtained by implementing the above-described method. The purpose of this guide is to guide the osteotomy and / or the drilling of holes for screws used to fixate a first portion of bone to a second portion of bone using an implant as described above. The guide is made to size and has drilling guide holes for screws corresponding to the drilling guide holes for screws in the modified model for the second portion of bone that needs to be separated. The drilling guide is further configured to have drilling guide holes for screws in the first portion of bone, which holes correspond to the drilling guide holes made in the modified model for screws intended for the first portion of bone.
[0108] In some embodiments, in contrast to the comparative drill guides, the drill guide extends on either side of a line along which the osteotomy is to be performed, and by projecting beyond this line, multiple holes can be provided to guide the drilling of screws intended to be fixed into the first portion of the bone.
[0109] The locations of these holes are also predetermined for the first portion of the bone to be created to correspond to the holes defined in the modified model.
[0110] With this configuration, after all planned holes have been drilled in the first and second parts of the bone using the guide, after the osteotomy has been assisted by any resections, and finally after the planned repositioning of the bone parts according to what was originally envisaged, the completed relative spatial arrangement of some or all of the screw passage positions created using the drilling guide exactly matches the completed relative spatial arrangement of some or all of the holes for passing the screws created in the implants in the repositioned parts of the bone.
[0111] Some of the example drilling guides described herein ensure that some or all of the holes drilled prior to osteotomy of the first and second portions of the bone align with holes drilled in the preformed implant after the osteotomy or ideally after repositioning of the bone portion performed by the surgeon.
[0112] Finally, several embodiments relate to a kit or assembly comprising a custom-made implant and a drilling guide, in which the completed relative spatial arrangement of some or all of the screw passage positions created in the modified model using the drilling guide corresponds to the completed relative spatial arrangement of some or all of the screw holes created in the implant. For example, the positions of the first and second plurality of openings in the maxillofacial surgical guide correspond to the positioned positions of the first and second plurality of openings in the maxillofacial implant, the positions of the first and second plurality of openings in the maxillofacial surgical guide correspond to the preoperative maxillofacial anatomy, and the positions of the first and second plurality of openings in the maxillofacial implant correspond to the desired postoperative maxillofacial anatomy.
[0113] The above-described embodiments are not intended to limit the present invention, and any embodiment may be modified or combined, and all possible variations are included without departing from the scope defined by the appended claims, which define the present invention.
Claims
1. 1. A maxillofacial surgical guide for osteosynthesis configured for use during the execution of an actual preoperative planning of an osteotomy to make at least one cut separating at least one bone portion of a maxillofacial bone of a patient from one or more other bone portions of the maxillofacial bone of a patient such that a second maxillofacial bone portion is separated from a first maxillofacial bone portion, a first plurality of openings provided at positions corresponding to the first maxillofacial bone portion for guiding a drilling operation to the first maxillofacial bone portion; a second plurality of openings provided at positions corresponding to the second maxillofacial bone portion for guiding the drilling operation to the second maxillofacial bone portion; a monolithic three-dimensional structure connecting the first and second pluralities of openings; the monolithic three-dimensional structure defines an interior surface that varies in each of the three dimensions; the inner surface has a shape that, in a preoperative state, matches an outer surface defined by the first and second maxillofacial bone portions; the monolithic three-dimensional structure is configured such that the inner surface is aligned with the outer surface in a configuration in three-dimensional space; the first and second plurality of openings are formed in the surgical guide based on one or more anatomical features of the maxillofacial structure of each patient; the monolithic three-dimensional structure includes elongated openings as one or more osteotomy guides, each osteotomy guide representing the location of at least one cut; Maxillofacial surgical guide.
2. at least one drill bushing associated with one of the first and second plurality of openings in the maxillofacial surgical guide; The maxillofacial surgical guide of claim 1 , wherein the at least one drill bushing has a height determined relative to the position of at least one of one or more anatomical features of the patient.
3. The maxillofacial surgical guide of claim 1 , wherein each of the one or more osteotomy guides comprises an elongated opening configured to allow passage of a cutting tool.
4. The maxillofacial surgical guide according to any one of claims 1 to 3, comprising one or more monolithic three-dimensional structure attachment openings for attaching the monolithic three-dimensional structure for the maxillofacial surgical guide to preoperative first and second bone portions in the maxillofacial surgical guide.
5. 5. The maxillofacial surgical guide according to claim 4, wherein at least one of the one or more monolithic three-dimensional structure attachment openings for attaching the monolithic three-dimensional structure for the maxillofacial surgical guide to preoperative first and second bone portions in the maxillofacial surgical guide coincides with a defined osteotomy cut.
6. one of the first and second pluralities of apertures in the maxillofacial surgical guide comprises a bore having a defined axis; The maxillofacial surgical guide according to any one of claims 1 to 5, wherein said axis is offset from an axis perpendicular to the surface of the monolithic structure at the location of said one opening.
7. 1. A kit for use during the actual pre-operative planning of an osteotomy to form at least one cut separating at least one bone portion of a patient's maxillofacial bone from one or more other bone portions of the patient's maxillofacial bone such that a second maxillofacial bone portion is separated from a first maxillofacial bone portion, and during the subsequent osteosynthesis of said first and second maxillofacial bone portions at a desired post-operative time, comprising: the desired postoperative orientation corresponds to a selected disposition of the second maxillofacial bone portion relative to the first maxillofacial bone portion; the configuration includes a configuration obtained by performing at least one of a translation and a rotation of the second maxillofacial bone portion associated with the first maxillofacial bone portion; The kit comprises: The maxillofacial surgical guide according to any one of claims 1 to 6, a maxillofacial implant; The maxillofacial implant comprises: a first plurality of openings provided at positions corresponding to the first maxillofacial bone portion, for connecting the implant to the first maxillofacial bone portion of the patient; a second plurality of openings provided at positions corresponding to the second maxillofacial bone portion, for connecting the implant to the second maxillofacial bone portion of the patient; a monolithic three-dimensional structure connecting the first and second pluralities of openings; the three-dimensional structure having a shape that varies in each of three dimensions to position the second maxillofacial bone portion relative to the first maxillofacial bone portion according to a desired postoperative orientation; the implant is configured to be positioned in a preoperative stage following an osteotomy to correspond to a desired skeletal planned postoperative shape and to position the second maxillofacial bone portion in a desired postoperative orientation relative to the first maxillofacial bone portion; the monolithic three-dimensional structure has a shape that varies in each of three dimensions to position the second maxillofacial bone portion according to a desired postoperative orientation relative to the first maxillofacial bone portion; the positions of the first and second plurality of apertures in the maxillofacial surgical guide correspond to the mapped positions of the first and second plurality of apertures in the maxillofacial implant, respectively; the positions of the first and second plurality of openings in the maxillofacial surgical guide correspond to a preoperative maxillofacial skeleton; A kit for maxillofacial bonding, wherein the locations of the first and second plurality of openings in the maxillofacial implant correspond to a desired post-operative maxillofacial anatomy.
Citation Information
Patent Citations
Orthognatic implant and methods of use
WO2011136775A1