Guideline for design of substrate stiffness for mesenchymal stem cell culture based on heterogeneity of YAP and RUNX2 responses.

Biophysics and Physicobiology Pub Date : 2023-04-19 eCollection Date: 2023-01-01 DOI:10.2142/biophysico.bppb-v20.0018
Hiromi Miyoshi, Masashi Yamazaki, Hiromichi Fujie, Satoru Kidoaki
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Abstract

Mesenchymal stem cells (MSCs) have the potential for self-renewal and multipotency to differentiate into various lineages. Thus, they are of great interest in regenerative medicine as a cell source for tissue engineering. Substrate stiffness is one of the most extensively studied exogenous physical factors; however, consistent results have not always been reported for controlling MSCs. Conventionally used stiff culture substrates, such as tissue-culture polystyrene and glass, enhance nuclear localization of a mechanotransducer YAP and a pre-osteogenic transcription factor RUNX2, and bias MSCs towards the osteogenic lineage, even without osteogenic-inducing soluble factors. The mechanosensitive nature and intrinsic heterogeneity present challenges for obtaining reproducible results. This review summarizes the heterogeneity in human MSC response, specifically, nuclear/cytoplasmic localization changes in the mechanotransducer yes-associated protein (YAP) and the osteogenic transcription factor RUNX2, in response to substrate stiffness. In addition, a perspective on the intracellular factors attributed to response heterogeneity is discussed. The optimal range of stiffness parameters, Young's modulus, for MSC expansion culture to suppress osteogenic differentiation bias through the suppression of YAP and RUNX2 nuclear localization, and cell cycle progression is likely to be surprisingly narrow for a cell population from an identical donor and vary among cell populations from different donors. We believe that characterization of the heterogeneity of MSCs and understanding their biological meaning is an exciting research direction to establish guidelines for the design of culture substrates for the sophisticated control of MSC properties.

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基于 YAP 和 RUNX2 反应异质性的间充质干细胞培养基质硬度设计指南。
间充质干细胞(MSCs)具有自我更新的潜力和分化成各种系的多潜能。因此,间充质干细胞作为组织工程的细胞来源,在再生医学中具有极大的意义。基底硬度是研究最广泛的外源物理因素之一;然而,在控制间充质干细胞方面并不总是有一致的结果。常规使用的坚硬培养基底(如组织培养聚苯乙烯和玻璃)会增强机械传导因子 YAP 和成骨前转录因子 RUNX2 的核定位,并使间叶干细胞偏向成骨系,即使没有成骨诱导可溶性因子也是如此。机械敏感性和内在异质性为获得可重复的结果带来了挑战。本综述总结了人类间充质干细胞反应的异质性,特别是机械传导因子 "是 "相关蛋白(YAP)和成骨转录因子RUNX2的核/胞质定位变化对基底硬度的反应。此外,还讨论了导致反应异质性的细胞内因素。间充质干细胞扩增培养通过抑制 YAP 和 RUNX2 的核定位和细胞周期进展来抑制成骨分化偏向的最佳硬度参数(杨氏模量)范围,对于来自相同供体的细胞群来说可能出奇地狭窄,而对于来自不同供体的细胞群来说则各不相同。我们认为,鉴定间充质干细胞的异质性并理解其生物学意义是一个令人兴奋的研究方向,它将为设计培养基质以精密控制间充质干细胞特性提供指导。
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