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Rheological characterization of dynamic remodeling of the pericellular region by human mesenchymal stem cell-secreted enzymes in well-defined synthetic hydrogel scaffolds

机译:人间充质干细胞分泌酶在明确定义的合成水凝胶支架中对细胞周围区域动态重塑的流变学表征

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摘要

Human mesenchymal stem cells (hMSCs) dynamically remodel their microenvironment during basic processes, such as migration and differentiation. Migration requires extracellular matrix invasion, necessitating dynamic cell-material interactions. Understanding these interactions is critical to advancing materials designs that harness and manipulate these processes for applications including wound healing and tissue regeneration. In this work, we encapsulate hMSCs in a cell-degradable poly(ethylene glycol)-peptide hydrogel to determine how cell-secreted enzymes, specifically matrix metalloproteinases (MMPs) and tissue inhibitors of metalloproteinases (TIMPs), create unique pericellular microenvironments. Using multiple particle tracking microrheology (MPT), we characterize spatio-temporal rheological properties in the pericellular region during cell-mediated remodeling. In MPT, the thermal motion of probes embedded in the network is measured. A newly designed sample chamber that limits probe drift during degradation and minimizes high value antibody volumes required for cell treatments enables MPT characterization. Previous MPT measurements around hMSCs show that directly around the cell the scaffold remains intact with the cross-link density decreasing as distance from the cell increases. This degradation profile suggests t hat hMSCs are simultaneously secreting TIMPs, which are inactivating MMPs through MMP–TIMP complexes. By neutralizing TIMPs using antibodies, we characterize the changes in matrix degradation. TIMP inhibited hMSCs create a reaction-diffusion type degradation profile where MMPs are actively degrading the matrix immediately after secretion. In this profile, the cross-link density increases with increasing distance from the c ell. This change in material properties also increases the speed of migration. This simple treatment could increase delivery of hMSCs to injuries to aid wound healing and tissue regeneration.
机译:人间充质干细胞(hMSCs)在诸如迁移和分化等基本过程中动态地重塑其微环境。迁移需要细胞外基质的入侵,因此需要动态的细胞-材料相互作用。了解这些相互作用对推进材料设计至关重要,这些材料设计可利用和操纵这些过程以用于包括伤口愈合和组织再生在内的各种应用。在这项工作中,我们将hMSCs封装在可细胞降解的聚(乙二醇)肽水凝胶中,以确定细胞分泌的酶,特别是基质金属蛋白酶(MMP)和金属蛋白酶的组织抑制剂(TIMP),如何创建独特的细胞微环境。使用多个粒子跟踪微流变学(MPT),我们表征了细胞介导的重塑过程中细胞周围区域的时空流变特性。在MPT中,测量嵌入在网络中的探头的热运动。新设计的样品室可限制降解过程中探针的漂移并使细胞处理所需的高价值抗体量最小化,从而实现了MPT表征。先前在hMSC周围进行的MPT测量表明,支架直接在细胞周围保持完整,交联密度随与细胞距离的增加而降低。这种降解情况表明,hMSC同时分泌TIMP,通过MMP-TIMP复合物使MMP失活。通过使用抗体中和TIMP,我们表征了基质降解的变化。 TIMP抑制的hMSC建立了反应扩散型降解曲线,其中MMP在分泌后立即主动降解基质。在这种情况下,交联密度随着与细胞距离的增加而增加。材料特性的这种变化也提高了迁移速度。这种简单的治疗方法可以增加hMSC向损伤处的输送,以帮助伤口愈合和组织再生。

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