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间充质干细胞在纤维素-丝复合纳米纤维基质上的软骨诱导:基质弹性的作用

Chondroinduction of Mesenchymal Stem Cells on Cellulose-Silk Composite Nanofibrous Substrates: The Role of Substrate Elasticity.

作者信息

Begum Runa, Perriman Adam W, Su Bo, Scarpa Fabrizio, Kafienah Wael

机构信息

Faculty of Biomedical Sciences, School of Cellular and Molecular Medicine, University of Bristol, Bristol, United Kingdom.

Bristol Dental School, University of Bristol, Bristol, United Kingdom.

出版信息

Front Bioeng Biotechnol. 2020 Mar 19;8:197. doi: 10.3389/fbioe.2020.00197. eCollection 2020.

Abstract

Smart biomaterials with an inherent capacity to elicit specific behaviors of biological prompts would be advantageous for regenerative medicine applications. In this work, we employ an electrospinning technique to model the nanofibrous extracellular matrix (ECM) of cartilage using a chondroinductive cellulose and silk polymer blend (75:25 ratio). This natural polymer composite is directly electrospun for the first time, into nanofibers without post-spun treatment, using a trifluoroacetic acid and acetic acid cosolvent system. Biocompatibility of the composite nanofibres with human mesenchymal stem cells (hMSCs) is demonstrated and its inherent capacity to direct chondrogenic stem cell differentiation, in the absence of stimulating growth factors, is confirmed. This chondrogenic stimulation could be countered biochemically using fibroblast growth factor-2, a growth factor used to enhance the proliferation of hMSCs. Furthermore, the potential mechanisms driving this chondroinduction at the cell-biomaterial interface is investigated. Composite substrates are fabricated as two-dimensional film surfaces and cultured with hMSCs in the presence of chemicals that interfere with their biochemical and mechanical signaling pathways. Preventing substrate surface elasticity transmission resulted in a significant downregulation of chondrogenic gene expression. Interference with the classical chondrogenic Smad2/3 phosphorylation pathway did not impact chondrogenesis. The results highlight the importance of substrate mechanical elasticity on hMSCs chondroinduction and its independence to known chondrogenic biochemical pathways. The newly fabricated scaffolds provide the foundation for designing a robust, self-inductive, and cost-effective biomimetic biomaterial for cartilage tissue engineering.

摘要

具有引发特定生物学反应内在能力的智能生物材料,将有利于再生医学应用。在这项工作中,我们采用静电纺丝技术,使用软骨诱导性纤维素和丝绸聚合物共混物(比例为75:25)来模拟软骨的纳米纤维细胞外基质(ECM)。这种天然聚合物复合材料首次使用三氟乙酸和乙酸共溶剂体系,直接静电纺丝成纳米纤维,无需后纺处理。证明了复合纳米纤维与人间充质干细胞(hMSCs)的生物相容性,并证实了其在没有刺激生长因子的情况下引导软骨生成干细胞分化的内在能力。可以使用成纤维细胞生长因子-2进行生化对抗这种软骨生成刺激,成纤维细胞生长因子-2是一种用于增强hMSCs增殖的生长因子。此外,还研究了在细胞-生物材料界面驱动这种软骨诱导的潜在机制。将复合基质制成二维薄膜表面,并在存在干扰其生化和机械信号通路的化学物质的情况下与hMSCs一起培养。阻止底物表面弹性传递导致软骨生成基因表达显著下调。干扰经典的软骨生成Smad2/3磷酸化途径对软骨生成没有影响。结果突出了底物机械弹性对hMSCs软骨诱导的重要性及其对已知软骨生成生化途径的独立性。新制备的支架为设计用于软骨组织工程的坚固、自诱导且经济高效的仿生生物材料奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b66e/7096586/9b6c53065959/fbioe-08-00197-g0001.jpg

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