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采用3D生物打印技术制备SA/Gel/C支架以生成用于皮肤伤口愈合的微纳孔隙结构:一项详细的动物体内研究。

Fabrication of SA/Gel/C scaffold with 3D bioprinting to generate micro-nano porosity structure for skin wound healing: a detailed animal in vivo study.

作者信息

Niu Changmei, Wang Liyang, Ji Dongdong, Ren Mingjun, Ke Dongxu, Fu Qiang, Zhang Kaile, Yang Xi

机构信息

Novaprint Therapeutics Suzhou Co., Ltd, Suzhou, 215000, China.

Shanghai University of Engineering Science, Shanghai, 201620, China.

出版信息

Cell Regen. 2022 May 1;11(1):10. doi: 10.1186/s13619-022-00113-y.

Abstract

Bioprinting has exhibited remarkable promises for the fabrication of functional skin substitutes. However, there are some significant challenges for the treatment of full-thickness skin defects in clinical practice. It is necessary to determine bioinks with suitable mechanical properties and desirable biocompatibilities. Additionally, the key for printing skin is to design the skin structure optimally, enabling the function of the skin. In this study, the full-thickness skin scaffolds were prepared with a gradient pore structure constructing the dense layer, epidermis, and dermis by different ratios of bioinks. We hypothesized that the dense layer protects the wound surface and maintains a moist environment on the wound surface. By developing a suitable hydrogel bioink formulation (sodium alginate/gelatin/collagen), to simulate the physiological structure of the skin via 3D printing, the proportion of hydrogels was optimized corresponding to each layer. These results reveal that the scaffold has interconnected macroscopic channels, and sodium alginate/gelatin/collagen scaffolds accelerated wound healing, reduced skin wound contraction, and re-epithelialization in vivo. It is expected to provide a rapid and economical production method of skin scaffolds for future clinical applications.

摘要

生物打印在功能性皮肤替代物的制造方面展现出了显著的前景。然而,在临床实践中治疗全层皮肤缺损仍存在一些重大挑战。确定具有合适机械性能和理想生物相容性的生物墨水很有必要。此外,打印皮肤的关键在于优化设计皮肤结构,以实现皮肤的功能。在本研究中,通过不同比例的生物墨水制备了具有梯度孔隙结构的全层皮肤支架,构建了致密层、表皮和真皮。我们假设致密层可保护创面并维持创面的湿润环境。通过开发合适的水凝胶生物墨水配方(海藻酸钠/明胶/胶原蛋白),经由3D打印模拟皮肤的生理结构,对各层对应的水凝胶比例进行了优化。这些结果表明,该支架具有相互连通的宏观通道,海藻酸钠/明胶/胶原蛋白支架在体内加速了伤口愈合,减少了皮肤伤口收缩和再上皮化。有望为未来临床应用提供一种快速且经济的皮肤支架生产方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a977/9056587/2f65b599eedf/13619_2022_113_Fig1_HTML.jpg

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