Author:
Wang Huichao,Lian Qin,Li Dichen,Li Chenghong,Zhao Tingze,Liang Jin
Abstract
Purpose
Reconstructing multi-layer tissue structure using cell printing to repairing complex tissue defect is a challenging task, especially using in situ bioprinting. This study aims to propose a method of in situ bioprinting multi-tissue layering and path planning for complex skin and soft tissue defects.
Design/methodology/approach
The scanned three-dimensional (3D) point cloud of the skin and soft tissue defect is taken as the input data, the depth value of the defect is then calculated using a two-step grid division method, and the tissue layer is judged according to the depth value. Then, the surface layering and path planning in the normal direction are performed for different tissue layers to achieve precise tissue layering filling of complex skin soft tissue defects.
Findings
The two-step grid method can accurately calculate the depth of skin and soft tissue defects and judge the tissue layer accordingly. In the in situ bioprinting experiment of the defect model, the defect can be completely closed. The defect can be reconstructed in situ, and the reconstructed structure is basically the same as the original skin tissue structure, proving the feasibility of the proposed method.
Originality/value
This study proposes an in situ bioprinting multi-tissue layering and path planning method for complex skin and soft tissue defects, which can directly convert the scanned 3D point cloud into a multi-tissue in situ bioprinting path. The printed result has a similar structure to that of the original skin tissue, which can make cells or growth factors act on the corresponding tissue layer targets.
Subject
Industrial and Manufacturing Engineering,Mechanical Engineering
Reference27 articles.
1. In situ bioprinting of autologous skin cells accelerates wound healing of extensive excisional full-thickness wounds;Scientific Reports,2019
2. 3D printing: a critical review of current development and future prospects;Rapid Prototyping Journal,2019
3. In situ bioprinting of the skin for burns;Journal of the American College of Surgeons,2010
4. Designer self-assembling hydrogel scaffolds can impact skin cell proliferation and migration;Sci Rep,2014
5. Cellular and molecular basis of wound healing in diabetes;Journal of Clinical Investigation,2007
Cited by
10 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献