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Laponite-明胶纳米纤维微球促进人牙滤泡干细胞黏附及成骨分化用于非侵入性干细胞移植。

Laponite-Gelatin Nanofibrous Microsphere Promoting Human Dental Follicle Stem Cells Attachment and Osteogenic Differentiation for Noninvasive Stem Cell Transplantation.

机构信息

Department of Biomedical Engineering, Indian Institute of Technology Hyderabad, Telangana, 502285, India.

Department of Chemistry and Biotechnology, Swinburne Institute of Technology, Hawthorn, Victoria, Vic-3122, Australia.

出版信息

Macromol Biosci. 2023 Jan;23(1):e2200347. doi: 10.1002/mabi.202200347. Epub 2022 Nov 17.

Abstract

Nanofibrous microspheres (NFM) are emerging as prominent next-generation biomimetic injectable scaffold system for stem cell delivery and different tissue regeneration where nanofibrous topography facilitates ECM-like stem cells niches. Addition of osteogenic bioactive nanosilicate platelets within NFM can provide osteoconductive cues to facilitate matrix mediated osteogenic differentiation of stem cells and enhance the efficiency of bone tissue regeneration. In this study, gelatin nanofibrous microspheres are prepared containing fluoride-doped laponite XL21 (LP) using the emulsion mediated thermal induce phase separation (TIPS) technique. Systematic studies are performed to understand the effect of physicochemical properties of biomimicking NFM alone and with different concentrations of LP on human dental follicle stem cells (hDFSCs), their cellular attachment, proliferation, and osteogenic differentiation. The study highlights the effect of LP nanosilicate with biomimicking nanofibrous injectable scaffold system aiding in enhancing stem cell differentiation under normal physiological conditions compared to NFM without LP. The laponite-NFM shows suitability as excellent injectable biomaterials system for stem cell attachment, proliferation and osteogenic differentiation for stem cell transplantation and bone tissue regeneration.

摘要

纳米纤维微球(NFM)作为新兴的下一代仿生可注射支架系统,在干细胞递送和不同组织再生方面具有重要意义,其中纳米纤维形貌有利于细胞外基质样干细胞龛位。在 NFM 中添加成骨生物活性纳米硅酸盐片可以提供骨传导信号,促进干细胞的基质介导成骨分化,并提高骨组织再生的效率。在这项研究中,使用乳液介导的热诱导相分离(TIPS)技术制备了含有氟掺杂的皂石 XL21(LP)的明胶纳米纤维微球。系统地研究了仿生 NFM 的物理化学性质以及不同浓度 LP 对人牙囊干细胞(hDFSCs)的影响,包括细胞附着、增殖和成骨分化。该研究强调了具有仿生纳米纤维可注射支架系统的 LP 纳米硅酸盐的作用,有助于在正常生理条件下增强干细胞分化,与不含 LP 的 NFM 相比。表明了该明胶-纳米纤维微球具有作为优异的可注射生物材料系统的潜力,适用于干细胞附着、增殖和成骨分化,可用于干细胞移植和骨组织再生。

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