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Tunable Hybrid Matrices Drive Epithelial Morphogenesis and YAP Translocation

机译:可调谐混合矩阵驱动上皮形态发生和YAP易位

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摘要

Morphogenesis is a tightly‐regulated developmental process by which tissues acquire the morphology that is critical to their function. For example, epithelial cells exhibit different 2D and 3D morphologies, induced by distinct biochemical and biophysical cues from their environment. In this work, novel hybrid matrices composed of a Matrigel and synthetic oligo(ethylene glycol)‐grafted polyisocyanides (PICs) hydrogels are used to form a highly tailorable environment. Through precise control of the stiffness and cell‐matrix interactions, while keeping other properties constant, a broad range of morphologies induced in Madin‐Darby Canine Kidney (MDCK) cells is observed. At relatively low matrix stiffness, a large morphological shift from round hollow cysts to 2D monolayers is observed, without concomitant translocation of the mechanotransduction protein Yes‐associated protein (YAP). At higher stiffness levels and enhanced cell‐matrix interactions, tuned by controlling the adhesive peptide density on PIC, the hybrid hydrogels induce a flattened cell morphology with simultaneous YAP translocation, suggesting activation. In 3D cultures, the latter matrices lead to the formation of tubular structures. Thus, mixed synthetic and natural gels, such as the hybrids presented here, are ideal platforms to dissect how external physical factors can be used to regulate morphogenesis in MDCK model system, and in the future, in more complex environments.
机译:形态发生是一个紧密调节的发育过程,组织获得对其功能至关重要的形态。例如,上皮细胞表现出不同的2D和3D形态,由其环境中的不同生物化学和生物物理提示诱导。在这项工作中,由Matrigel和合成寡核苷酸(乙二醇) - 移植的多异氰化物(PICS)水凝胶组成的新型杂化基质用于形成高度可批量的环境。通过精确控制刚度和细胞基质相互作用,同时保持其他性质常数,观察到在Madin-Darby犬肾(MDCK)细胞中诱导的广泛形态。在相对较低的基质刚度下,观察到从圆形中空囊肿到2D单层的大形态转变,而不伴随机电植物蛋白是相关蛋白(YAP)的易位。在较高的刚度水平和增强的细胞 - 基质相互作用中,通过控制PIC上的粘合肽密度调节,杂交水凝胶诱导扁平细胞形态与同时yap易位,提示激活。在3D培养物中,后一种矩阵导致形成管状结构。因此,混合的合成和天然凝胶,例如这里呈现的混合动力是解剖外部物理因素如何用于调节MDCK模型系统中的形态发生,以及将来更复杂的环境中的理想平台。

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