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用于全层皮肤再生的含脂肪干细胞的梯度增强明胶-藻酸盐水凝胶的3D生物打印

3D bioprinting of a gradient stiffened gelatin-alginate hydrogel with adipose-derived stem cells for full-thickness skin regeneration.

作者信息

Ma Yuan, Wang Yilin, Chen Danni, Su Ting, Chang Qiang, Huang Wenhua, Lu Feng

机构信息

Department of Plastic and Cosmetic Surgery, Nanfang Hospital, Southern Medical University, 1838 Guangzhou North Road, Guangzhou, 510515, Guangdong, China.

Guangdong Engineering Research Center for Translation of Medical 3D Printing Application, Guangdong Provincial Key Laboratory of Medical Biomechanics, National Key Discipline of Human Anatomy, School of Basic Medical Sciences, Southern Medical University, Guangzhou, 510515, China.

出版信息

J Mater Chem B. 2023 Mar 30;11(13):2989-3000. doi: 10.1039/d2tb02200a.

Abstract

Current hydrogel-based scaffolds offer a promising approach to accelerate tissue regeneration, but great challenges remain in developing platforms that mimic the physical microenvironment of tissues combined with therapeutic biological cues. Here, a 3D bioprinting gelatin-alginate hydrogel for the construction of gradient composite scaffolds that mimic the dermal stiffness microenvironment was developed for architecture construction by extruding the bioink on calcium-containing substrates to achieve gradient secondary cross-linking, meanwhile, adipose-derived stem cells were encapsulated in the present hydrogels for therapeutic purposes. The gradient-stiffness scaffold exhibited good stability and biocompatibility as well as enhanced proliferation and migration of the adipose-derived stem cells. In addition, the promoted angiogenesis and healing efficiency was demonstrated the animal wound model and was mainly attributed to the enhanced paracrine secretion of adipose-derived stem cells by the physical microenvironment provided within the gradient stiffness scaffold. The current 3D printed gradient scaffolds provide adipose-derived stem cells with a distinct yet successive architecture rather than the typical uniform microenvironment to accelerate skin regeneration, which may have broader applications in other chronic wounds or tissue defects.

摘要

当前基于水凝胶的支架为加速组织再生提供了一种有前景的方法,但在开发能够模拟组织物理微环境并结合治疗性生物信号的平台方面,仍存在巨大挑战。在此,通过将生物墨水挤压在含钙底物上以实现梯度二次交联,开发了一种用于构建模拟皮肤硬度微环境的梯度复合支架的3D生物打印明胶 - 藻酸盐凝胶,用于构建结构,同时,为了治疗目的,将脂肪干细胞封装在当前的水凝胶中。梯度硬度支架表现出良好的稳定性和生物相容性,以及脂肪干细胞增殖和迁移的增强。此外,在动物伤口模型中证明了血管生成和愈合效率的提高,这主要归因于梯度硬度支架内提供的物理微环境增强了脂肪干细胞的旁分泌分泌。当前的3D打印梯度支架为脂肪干细胞提供了一种独特而连续的结构,而不是典型的均匀微环境,以加速皮肤再生,这可能在其他慢性伤口或组织缺损中有更广泛的应用。

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