Moldaschl Julia, Chariyev-Prinz Farhad, Toegel Stefan, Keck Maike, Hiden Ursula, Egger Dominik, Kasper Cornelia
Institute of Cell and Tissue Culture Technologies, BOKU University, Vienna, Austria.
Karl Chiari Lab for Orthopaedic Biology, Department of Orthopedics and Trauma Surgery, Medical University of Vienna, Vienna, Austria.
Front Bioeng Biotechnol. 2024 Jul 31;12:1444363. doi: 10.3389/fbioe.2024.1444363. eCollection 2024.
Due to their unique properties, human mesenchymal stem/stromal cells (MSCs) possess tremendous potential in regenerative medicine, particularly in cell-based therapies where the multipotency and immunomodulatory characteristics of MSCs can be leveraged to address a variety of disease states. Although MSC-based cell therapeutics have emerged as one of the most promising medical treatments, the clinical translation is hampered by the variability of MSC-based cellular products caused by tissue source-specific differences and the lack of physiological cell culture approaches that closely mimic the human cellular microenvironment. In this study, a model for trilineage differentiation of primary adipose-, bone marrow-, and umbilical cord-derived MSCs into adipocytes, chondrocytes and osteoblasts was established and characterized. Differentiation was performed in spheroid culture, using hypoxic conditions and serum-free and antibiotics-free medium. This platform was characterized for spheroid diameter and trilineage differentiation capacity reflecting functionality of differentiated cells, as indicated by lineage-specific extracellular matrix (ECM) accumulation and expression of distinct secreted markers. The presented model shows spheroid growth during the course of differentiation and successfully supports trilineage differentiation for MSCs from almost all tissue sources except for osteogenesis of umbilical cord-derived MSCs. These findings indicate that this platform provides a suitable and favorable environment for trilineage differentiation of MSCs from various tissue sources. Therefore, it poses a promising model to generate highly relevant biological data urgently required for clinical translation and therefore might be used in the future to generate microtissues, building blocks for tissue engineering or as disease models.
由于其独特的特性,人间充质干/基质细胞(MSCs)在再生医学中具有巨大潜力,特别是在基于细胞的治疗中,MSCs的多能性和免疫调节特性可用于解决多种疾病状态。尽管基于MSCs的细胞疗法已成为最有前景的医学治疗方法之一,但临床转化受到基于MSCs的细胞产品变异性的阻碍,这种变异性是由组织来源特异性差异以及缺乏紧密模拟人类细胞微环境的生理性细胞培养方法导致的。在本研究中,建立并表征了一种将原代脂肪、骨髓和脐带来源的MSCs向脂肪细胞、软骨细胞和成骨细胞进行三系分化的模型。分化在球体培养中进行,使用低氧条件以及无血清和无抗生素的培养基。该平台通过球体直径和反映分化细胞功能的三系分化能力进行表征,如特定谱系细胞外基质(ECM)积累和不同分泌标志物的表达所示。所呈现的模型显示了分化过程中球体的生长,并成功支持了几乎所有组织来源的MSCs的三系分化,但脐带来源的MSCs的成骨分化除外。这些发现表明,该平台为来自各种组织来源的MSCs的三系分化提供了一个合适且有利的环境。因此,它构成了一个有前景的模型,可用于生成临床转化迫切需要的高度相关的生物学数据,因此未来可能用于生成微组织、组织工程的构建模块或作为疾病模型。