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在缺氧和常氧条件下,静态和动态培养的纤维素纳米纤维水凝胶中间充质干细胞生长、分化及细胞外囊泡产生的特性研究

Characterization of MSC Growth, Differentiation, and EV Production in CNF Hydrogels Under Static and Dynamic Cultures in Hypoxic and Normoxic Conditions.

作者信息

Nikolits Ilias, Chariyev-Prinz Farhad, Egger Dominik, Liebner Falk, Mytzka Nicolas, Kasper Cornelia

机构信息

Institute of Cell and Tissue Culture Technologies, Department of Biotechnology, University of Natural Resources and Life Sciences Vienna, Muthgasse 18, 1190 Vienna, Austria.

Institute of Cell Biology and Biophysics, Leibniz University Hannover, Herrenhäuser Strasse 2, 30419 Hannover, Germany.

出版信息

Bioengineering (Basel). 2024 Oct 21;11(10):1050. doi: 10.3390/bioengineering11101050.

Abstract

Mesenchymal stem cells (MSCs) hold immense therapeutic potential due to their regenerative and immunomodulatory properties. However, to utilize this potential, it is crucial to optimize their in vitro cultivation conditions. Three-dimensional (3D) culture methods using cell-laden hydrogels aim to mimic the physiological microenvironment in vitro, thus preserving MSC biological functionalities. Cellulosic hydrogels are particularly promising due to their biocompatibility, sustainability, and tunability in terms of chemical, morphological, and mechanical properties. This study investigated the impact of (1) two physical crosslinking scenarios for hydrogels derived from anionic cellulose nanofibers (-CNF) used to encapsulate adipose-derived MSCs (adMSCs) and (2) physiological culture conditions on the in vitro proliferation, differentiation, and extracellular vesicle (EV) production of these adMSCs. The results revealed that additional Ca-mediated crosslinking, intended to complement the self-assembly and gelation of aqueous -CNF in the adMSC cultivation medium, adversely affected both the mechanical properties of the hydrogel spheres and the growth of the encapsulated cells. However, cultivation under dynamic and hypoxic conditions significantly improved the proliferation and differentiation of the encapsulated adMSCs. Furthermore, it was demonstrated that the adMSCs in the CNF hydrogel spheres exhibited potential for scalable EV production with potent immunosuppressive capacities in a bioreactor system. These findings underscore the importance of physiological culture conditions and the suitability of cellulosic materials for enhancing the therapeutic potential of MSCs. Overall, this study provides valuable insights for optimizing the in vitro cultivation of MSCs for various applications, including tissue engineering, drug testing, and EV-based therapies.

摘要

间充质干细胞(MSCs)因其再生和免疫调节特性而具有巨大的治疗潜力。然而,要利用这一潜力,优化其体外培养条件至关重要。使用载有细胞的水凝胶的三维(3D)培养方法旨在在体外模拟生理微环境,从而保留MSCs的生物学功能。纤维素水凝胶因其生物相容性、可持续性以及在化学、形态和机械性能方面的可调节性而特别有前景。本研究调查了(1)用于封装脂肪来源的间充质干细胞(adMSCs)的阴离子纤维素纳米纤维(-CNF)衍生水凝胶的两种物理交联方案,以及(2)生理培养条件对这些adMSCs的体外增殖、分化和细胞外囊泡(EV)产生的影响。结果表明,旨在补充adMSC培养基中水性-CNF的自组装和凝胶化的额外钙介导交联,对水凝胶球的机械性能和封装细胞的生长均产生不利影响。然而,在动态和缺氧条件下培养显著改善了封装的adMSCs的增殖和分化。此外,还证明了CNF水凝胶球中的adMSCs在生物反应器系统中具有产生具有强大免疫抑制能力的可扩展EV的潜力。这些发现强调了生理培养条件的重要性以及纤维素材料对于增强MSCs治疗潜力的适用性。总体而言,本研究为优化MSCs在包括组织工程、药物测试和基于EV的疗法等各种应用中的体外培养提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b283/11504186/1704994e1a1e/bioengineering-11-01050-g001.jpg

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