System and method for implant production
Disclosed herein is a multi-modal imaging methodology for creating patient-specific three-dimensional images of a breast volume, for use in the production of breast implants. In one aspect, a surface imaging technique may be used to create a three-dimensional model of an external shape of a patient, such as the external morphology of a breast. In one aspect, an internal imaging technique may be used to create a three-dimensional model of the internal shape of the thorax underneath the breast. The external and internal models may then be referenced to one another and a unified model may be created to generate a reliable, personalized model of breast volume.
1 . A method for designing an implant for a subject, comprising:
generating an internal three-dimensional model of an internal anatomy of the subject from at least one internal image of the internal anatomy of the subject, the at least one internal image comprising at least one internal view of an anatomical landmark;
generating an external three-dimensional model of a surface of the subject from at least one surface image of the surface of the subject, the at least one surface image comprising at least one external view of the anatomical landmark;
registering the internal three-dimensional model to the external three-dimensional model with the anatomical landmark to create a unified three-dimensional model of the subject;
identifying an internal anatomical geometry of the subject from the internal three- dimensional model and an external anatomical geometry of the subject from the external three- dimensional model;
calculating an implant shape and volume based on a difference between the internal geometry and the external geometry in the unified three-dimensional model; and
creating a three-dimensional model of an implant having the calculated implant shape and volume;
wherein the implant is a breast implant, and wherein the at least one internal view comprises the pectoralis major.
2 . The method of claim 1 , wherein the method further comprises the steps of: segmenting the pectoralis major; and calculating a thickness of the pectoralis major.
3 . The method of claim 1 , wherein the anatomical landmark is selected from the group consisting of the sternum, the suprasternal notch, and a side of a ribcage.
4 . The method of claim 1 , wherein the breast implant is selected from a prepectoral breast implant or subpectoral breast implant.
5 . The method of claim 1 , wherein the at least one internal image is generated by a method selected from the group consisting of MRI, X-Ray, and Ultrasound.
6 . The method of claim 1 , wherein the at least one surface image is generated by a method selected from the group consisting of a 3D scanner, stereoscopic imaging, millimeter-wave imaging, and infrared imaging.
7 . The method of claim 1 , further comprising the step of creating the implant with an additive manufacturing process.
8 . The method of claim 1 , further comprising the steps of:
creating a three-dimensional model for a mold from the calculated implant shape; and
building the mold from the three-dimensional model; and
forming the implant with the mold.
9 . The method of claim 8 , wherein the mold is built using an additive manufacturing process.
10 . The method of claim 8 , further comprising the steps of forming a replica of the implant with the mold; and
forming the implant from the replica.
11 . The method of claim 8 , wherein the implant comprises a first material, and the method further comprises the step of coating the implant with a second material different from the first material.
12 . The method of claim 1 , further comprising the step of creating the implant, wherein the implant comprises an alginate hydrogel.
13 . The method of claim 12 , wherein the alginate hydrogel is selected from a 1% wt alginate hydrogel or an alginate hydrogel comprising sodium alginate.
14 . A system for designing an implant for a subject, comprising a computing device comprising a non-transitory computer-readable medium with instructions stored thereon, which when executed by a processor perform steps comprising:
generating an internal three-dimensional model of an internal anatomy of the subject from at least one internal image of the internal anatomy of the subject;
generating an external three-dimensional model of a surface of the subject from at least one surface image of the subject; wherein the at least one surface image is generated by a method selected from the group consisting of a 3D scanner, stereoscopic imaging, millimeter-wave imaging, and infrared imaging:
registering the internal three-dimensional model to the external three-dimensional model with an anatomical landmark present in the internal three-dimensional model and the external three-dimensional model to create a unified three-dimensional model of the subject;
identifying an internal anatomical geometry of the subject from the internal three-dimensional model and an external anatomical geometry of the subject from the external three-dimensional model;
calculating an implant shape and volume based on a difference between the internal geometry and the external geometry in the unified three-dimensional model; and creating a three-dimensional model from the of an implant having the calculated implant shape and volume.
15 . The system of claim 14 , wherein the three-dimensional model is a three-dimensional model for a mold.
16 . The system of claim 14 , wherein the implant is a breast implant.
17 . The system of claim 14 , wherein the at least one internal image is generated by a method selected from the group consisting of MRI, X-Ray, and Ultrasound.