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基于细胞黏附产生压电势梯度的仿生纳米纤维垫上间充质干细胞的一体化骨软骨分化。

Integrated osteochondral differentiation of mesenchymal stem cells on biomimetic nanofibrous mats with cell adhesion-generated piezopotential gradients.

机构信息

Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, Sichuan 610031, PR China.

The Peac Institute of Multiscale Sciences, Chengdu, Sichuan 610031, PR China.

出版信息

Nanoscale. 2022 Mar 10;14(10):3865-3877. doi: 10.1039/d1nr06676e.

Abstract

Biomimetic piezoelectric scaffolds provide a noninvasive method for cell regulation and tissue regeneration. Herein, considering the gradually varied piezoelectric properties of native cartilage and bone tissues, we fabricated biomimetic electrospun poly(L-lactic acid) (PLLA) nanofibrous mats with gradient piezoelectric properties to induce the integrated osteochondral differentiation of rat mesenchymal stem cells (MSCs). Nanofibrous mats are polarized under electric fields with linear variation of strength to generate gradient piezoelectricity, and cell adhesion-derived contraction forces could produce gradient piezoelectric potential on the scaffolds. Our results demonstrated that the piezoelectric potential could positively modulate cell adhesion, intracellular calcium transients, Ca binding proteins, and differentiation-related genes. In addition, the differentiation of MSCs into osteogenic and chondrogenic lineages was integrated on a single scaffold at different areas with relatively high and low piezoelectricity values, respectively. The continuous gradient scaffold exhibited the potential to provide a smooth transition between the cartilage and bone, offering new insights to probe the regeneration mechanisms of the osteochondral tissue in a single scaffold and inspiring a future efficient and rational design of piezoelectric smart biomaterials for tissue engineering.

摘要

仿生压电支架为细胞调控和组织再生提供了一种非侵入性的方法。在此,考虑到天然软骨和骨组织的压电性能逐渐变化,我们制备了具有梯度压电性能的仿生电纺聚 L-乳酸(PLLA)纳米纤维垫,以诱导大鼠间充质干细胞(MSCs)的整合性骨软骨分化。纳米纤维垫在电场中进行极化,强度呈线性变化,从而产生梯度压电性,并且细胞黏附产生的收缩力可以在支架上产生梯度压电势。我们的结果表明,压电势可以积极调节细胞黏附、细胞内钙瞬变、钙结合蛋白和分化相关基因。此外,MSCs 可以在具有相对较高和较低压电值的不同区域的单个支架上整合为成骨和成软骨谱系。连续的梯度支架具有在软骨和骨骼之间提供平稳过渡的潜力,为在单个支架中探测骨软骨组织的再生机制提供了新的见解,并为组织工程中压电智能生物材料的高效和合理设计提供了启示。

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