Expandable hESC-derived cardiovascular progenitor cells generate functional cardiac lineage cells for microtissue construction

IF 7.1 2区 医学 Q1 CELL & TISSUE ENGINEERING Stem Cell Research & Therapy Pub Date : 2024-09-12 DOI:10.1186/s13287-024-03919-6
Siamak Rezaeiani, Malihe Rezaee, Mojtaba Shafaghi, Mohammad Karami, Roghayeh Hamidi, Hamid Khodayari, Sadaf Vahdat, Sara Pahlavan, Hossein Baharvand
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Abstract

Cardiovascular progenitor cells (CPCs) derived from human embryonic stem cells (hESCs) are considered valuable cell sources for investigating cardiovascular physiology in vitro. Meeting the diverse needs of this application requires the large-scale production of CPCs in an in vitro environment. This study aimed to use an effective culture system utilizing signaling factors for the large-scale expansion of hESC-derived CPCs with the potential to differentiate into functional cardiac lineage cells. Initially, CPCs were generated from hESCs using a 4-day differentiation protocol with a combination of four small molecules (CHIR99021, IWP2, SB-431542, and purmorphamine). These CPCs were then expanded and maintained in a medium containing three factors (bFGF, CHIR, and A83-01), resulting in a > 6,000-fold increase after 8 passages. These CPCs were successfully cryopreserved for an extended period in late passages. The expanded CPCs maintained their gene and protein expression signatures as well as their differentiation capacity through eight passages. Additionally, these CPCs could differentiate into four types of cardiac lineage cells: cardiomyocytes, endothelial cells, smooth muscle cells, and fibroblasts, demonstrating appropriate functionality. Furthermore, the coculture of these CPC-derived cardiovascular lineage cells in rat tail collagen resulted in cardiac microtissue formation, highlighting the potential of this 3D platform for studying cardiovascular physiology in vitro. In conclusion, expandable hESC-derived CPCs demonstrated the ability to self-renewal and differentiation into functional cardiovascular lineage cells consistently across passages, which may apply as potential cell sources for in vitro cardiovascular studies.
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可扩增的 hESC 衍生心血管祖细胞可生成用于微组织构建的功能性心系细胞
从人类胚胎干细胞(hESCs)中提取的心血管祖细胞(CPCs)被认为是研究体外心血管生理学的宝贵细胞来源。要满足这一应用的不同需求,需要在体外环境中大规模生产 CPCs。本研究旨在使用一种有效的培养系统,利用信号因子大规模扩增 hESC 衍生的 CPCs,使其具有分化为功能性心系细胞的潜力。首先,使用四种小分子(CHIR99021、IWP2、SB-431542 和嘌呤吗啡)的组合,通过为期 4 天的分化方案从 hESC 生成 CPCs。然后,这些 CPCs 在含有三种因子(bFGF、CHIR 和 A83-01)的培养基中扩增和维持,8 次传代后增长了 6,000 倍以上。这些 CPCs 在传代后期成功地进行了长期冷冻保存。扩增后的 CPC 经过 8 次传代后仍能保持其基因和蛋白质表达特征及其分化能力。此外,这些 CPCs 还能分化成四种类型的心脏系细胞:心肌细胞、内皮细胞、平滑肌细胞和成纤维细胞,显示出适当的功能性。此外,这些 CPC 衍生的心血管系细胞在大鼠尾部胶原蛋白中的共培养可形成心脏微组织,这凸显了该三维平台在体外研究心血管生理学方面的潜力。总之,可扩增的 hESC 衍生 CPC 表现出了自我更新和分化为功能性心血管系细胞的跨传代一致性能力,可作为体外心血管研究的潜在细胞来源。
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来源期刊
Stem Cell Research & Therapy
Stem Cell Research & Therapy CELL BIOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
13.20
自引率
8.00%
发文量
525
审稿时长
1 months
期刊介绍: Stem Cell Research & Therapy serves as a leading platform for translational research in stem cell therapies. This international, peer-reviewed journal publishes high-quality open-access research articles, with a focus on basic, translational, and clinical research in stem cell therapeutics and regenerative therapies. Coverage includes animal models and clinical trials. Additionally, the journal offers reviews, viewpoints, commentaries, and reports.
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