A Cross-Linked Cyclosiloxane Polymer Matrix as a Platform Enabling Long-Term Culture of Human Induced Pluripotent Stem Cells with Naïve-Like Features.

IF 8.1 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-04-28 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0197
Changjin Seo, Junhyuk Song, Yoonjung Choi, Taemook Kim, Daeyoup Lee, Sangyong Jon
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Abstract

Culture platforms for human induced pluripotent stem cells (hiPSCs) that rely on feeder cells or extracellular matrices (ECMs) face substantial limitations for practical regenerative medicine applications, including undefined components, high costs, and a tendency to maintain hiPSCs in the primed pluripotent state, which has lower differentiation potential than the naïve state. To overcome these challenges, we developed a long-term hiPSC culture platform based on a cross-linked cyclosiloxane polymer matrix that preserves pluripotency with naïve-like characteristics. Through optimization, we identified an ideal cyclosiloxane polymer matrix, designated as poly-Z, which supported the growth of hiPSCs as spheroids. Even after 60 d of continuous culture, hiPSC spheroids maintained on poly-Z retained pluripotency markers and normal karyotypes at levels comparable to those of hiPSC colonies cultured on conventional vitronectin (VN)-coated plates. Furthermore, mRNA sequencing revealed that hiPSC spheroids cultured on poly-Z not only exhibited up-regulation of typical pluripotency-related genes but also showed increased expression of genes associated with the naïve pluripotent state, in contrast to the primed state observed in hiPSCs cultured on VN-coated plates or in suspension culture. Gene ontology (GO) analysis and gene set enrichment analysis (GSEA) further suggested that the down-regulation of genes involved in cell-ECM interactions contributed to the induction of naïve-like features in poly-Z-cultured hiPSC spheroids. These findings highlight the potential of cross-linked cyclosiloxane-based polymer matrices as an innovative platform for human pluripotent stem cell research and regenerative medicine.

交联环硅氧烷聚合物基质作为长期培养具有Naïve-Like特征的人类诱导多能干细胞的平台。
依赖于培养细胞或细胞外基质(ecm)的人诱导多能干细胞(hiPSCs)的培养平台在实际的再生医学应用中面临着很大的限制,包括不确定的成分、高昂的成本,以及将hiPSCs维持在诱导多能状态的倾向,这种状态比naïve状态具有更低的分化潜力。为了克服这些挑战,我们开发了一种基于交联环硅氧烷聚合物基质的长期hiPSC培养平台,该平台保留了naïve-like特性的多能性。通过优化,我们确定了一种理想的环硅氧烷聚合物基质,命名为poly-Z,它支持hiPSCs的球形生长。即使在连续培养60天后,在poly-Z保留的多能性标记和正常核型上,hiPSC球体保持的水平与在传统玻璃体连接蛋白(VN)涂层板上培养的hiPSC菌落相当。此外,mRNA测序显示,在poly-Z上培养的hiPSC球体不仅表现出典型多能性相关基因的上调,而且与在vn包被板或悬浮培养的hiPSC中观察到的诱导状态相比,与naïve多能性状态相关的基因表达也有所增加。基因本体(GO)分析和基因集富集分析(GSEA)进一步表明,参与细胞- ecm相互作用的基因下调有助于诱导poly- z培养的hiPSC球体的naïve-like特征。这些发现突出了交联环硅氧烷基聚合物基质作为人类多能干细胞研究和再生医学的创新平台的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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