优化间充质间质细胞微环境及制造的组合细胞外基质组织芯片。

IF 6.4 1区 医学 Q1 CELL & TISSUE ENGINEERING
Ishita Jain, Alex H P Chan, Guang Yang, Hao He, Johnny Lam, Kyung Sung, Ngan F Huang
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引用次数: 0

摘要

尽管间充质基质细胞(MSC)具有治疗潜力,但人们对制造这些细胞的最佳细胞外基质(ECM)环境的了解有限。我们开发了组织芯片来研究多因素电解加工环境在可制造刚度范围和多组分电解加工成分下的影响。检测了细胞扩增电位、免疫调节和分化能力的制造质量。结果显示,900 kPa底物支持更高的增殖和成骨分化,以及抗炎IL-10表达,而150 kPa底物促进150 kPa下的成脂分化,表明最佳ECM环境可能因制造目标而异。含有纤维连接蛋白和层粘连蛋白的ECM生物化学物质进一步调节了不同刚度的MSC制造质量。蛋白质组学和转录组学分析显示,与单因子ECM相比,独特的ECM组合可诱导更高水平的血管生成和免疫调节细胞因子。这些发现表明,优化的ECM环境可以提高MSC制造质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combinatorial extracellular matrix tissue chips for optimizing mesenchymal stromal cell microenvironment and manufacturing.

Despite the therapeutic potential of mesenchymal stromal cells (MSC), there is limited understanding of optimal extracellular matrix (ECM) environments to manufacture these cells. We developed tissue chips to study the effects of multi-factorial ECM environments under manufacturable stiffness ranges and multi-component ECM compositions. Manufacturing qualities of cell expansion potential, immunomodulation, and differentiation capacity were examined. The results show stiffness effects, with 900 kPa substrates supporting higher proliferation and osteogenic differentiation, along with anti-inflammatory IL-10 expression, whereas 150 kPa substrates promoted adipogenic differentiation at 150 kPa, suggesting that optimal ECM environments may differ based on manufacturing goals. ECM biochemistries containing fibronectin and laminin further modulated MSC manufacturing qualities across various stiffnesses. Proteomic and transcriptomic analyses revealed unique ECM combinations that induced higher levels of angiogenic and immunomodulatory cytokines, compared to single factor ECMs. These findings demonstrate that optimized ECM environments enhance MSC manufacturing quality.

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来源期刊
npj Regenerative Medicine
npj Regenerative Medicine Engineering-Biomedical Engineering
CiteScore
10.00
自引率
1.40%
发文量
71
审稿时长
12 weeks
期刊介绍: Regenerative Medicine, an innovative online-only journal, aims to advance research in the field of repairing and regenerating damaged tissues and organs within the human body. As a part of the prestigious Nature Partner Journals series and in partnership with ARMI, this high-quality, open access journal serves as a platform for scientists to explore effective therapies that harness the body's natural regenerative capabilities. With a focus on understanding the fundamental mechanisms of tissue damage and regeneration, npj Regenerative Medicine actively encourages studies that bridge the gap between basic research and clinical tissue repair strategies.
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