自愈水凝胶
机械敏感通道
细胞外基质
诱导多能干细胞
细胞生物学
信号
系留
机械生物学
干细胞
机械转化
化学
生物物理学
细胞力学
细胞
材料科学
纳米技术
生物
胚胎干细胞
生物化学
受体
细胞骨架
有机化学
基因
离子通道
作者
Céline Labouesse,Bao Xiu Tan,Chibeza C. Agley,Moritz Hofer,Alexander Winkel,Giuliano Giuseppe Stirparo,Hannah Stuart,Christophe M. Verstreken,Carla Mulas,William Mansfield,Paul Bertone,Kristian Franze,José C.R. Silva,Kevin J. Chalut
标识
DOI:10.1038/s41467-021-26236-5
摘要
Studies of mechanical signalling are typically performed by comparing cells cultured on soft and stiff hydrogel-based substrates. However, it is challenging to independently and robustly control both substrate stiffness and extracellular matrix tethering to substrates, making matrix tethering a potentially confounding variable in mechanical signalling investigations. Moreover, unstable matrix tethering can lead to poor cell attachment and weak engagement of cell adhesions. To address this, we developed StemBond hydrogels, a hydrogel in which matrix tethering is robust and can be varied independently of stiffness. We validate StemBond hydrogels by showing that they provide an optimal system for culturing mouse and human pluripotent stem cells. We further show how soft StemBond hydrogels modulate stem cell function, partly through stiffness-sensitive ERK signalling. Our findings underline how substrate mechanics impact mechanosensitive signalling pathways regulating self-renewal and differentiation, indicating that optimising the complete mechanical microenvironment will offer greater control over stem cell fate specification.
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