Structurally and mechanically tuned macroporous hydrogels for scalable mesenchymal stem cell–extracellular matrix spheroid production

自愈水凝胶 细胞外基质 间充质干细胞 球体 再生医学 机械转化 细胞生物学 组织工程 再生(生物学) 纳米技术 材料科学 三维细胞培养 旁分泌信号 干细胞 化学 生物医学工程 细胞 生物 生物化学 工程类 受体 高分子化学 体外
作者
Sheng Yin,Haipeng Wu,Yaying Huang,Chenjing Lu,Jian Cui,Ying Li,Bin Xue,Junhua Wu,Chunping Jiang,Xiaosong Gu,Wei Wang,Yi Cao
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:121 (28) 被引量:6
标识
DOI:10.1073/pnas.2404210121
摘要

Mesenchymal stem cells (MSCs) are essential in regenerative medicine. However, conventional expansion and harvesting methods often fail to maintain the essential extracellular matrix (ECM) components, which are crucial for their functionality and efficacy in therapeutic applications. Here, we introduce a bone marrow-inspired macroporous hydrogel designed for the large-scale production of MSC–ECM spheroids. Through a soft-templating approach leveraging liquid–liquid phase separation, we engineer macroporous hydrogels with customizable features, including pore size, stiffness, bioactive ligand distribution, and enzyme-responsive degradability. These tailored environments are conducive to optimal MSC proliferation and ease of harvesting. We find that soft hydrogels enhance mechanotransduction in MSCs, establishing a standard for hydrogel-based 3D cell culture. Within these hydrogels, MSCs exist as both cohesive spheroids, preserving their innate vitality, and as migrating entities that actively secrete functional ECM proteins. Additionally, we also introduce a gentle, enzymatic harvesting method that breaks down the hydrogels, allowing MSCs and secreted ECM to naturally form MSC–ECM spheroids. These spheroids display heightened stemness and differentiation capacity, mirroring the benefits of a native ECM milieu. Our research underscores the significance of sophisticated materials design in nurturing distinct MSC subpopulations, facilitating the generation of MSC–ECM spheroids with enhanced therapeutic potential.
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