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Bioengineering approaches to guide stem cell-based organogenesis

机译:指导干细胞器官发生的生物工程方法

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During organogenesis, various molecular and physical signals are orchestrated in space and time to sculpt multiple cell types into functional tissues and organs. The complex and dynamic nature of the process has hindered studies aimed at delineating morphogenetic mechanisms in vivo, particularly in mammals. Recent demonstrations of stem cell-driven tissue assembly in culture offer a powerful new tool for modeling and dissecting organogenesis. However, despite the highly organotypic nature of stem cell-derived tissues, substantial differences set them apart from their in vivo counterparts, probably owing to the altered microenvironment in which they reside and the lack of mesenchymal influences. Advances in the biomaterials and microtechnology fields have, for example, afforded a high degree of spatiotemporal control over the cellular microenvironment, making it possible to interrogate the effects of individual microenvironmental components in a modular fashion and rapidly identify organ-specific synthetic culture models. Hence, bioengineering approaches promise to bridge the gap between stem cell-driven tissue formation in culture and morphogenesis in vivo, offering mechanistic insight into organogenesis and unveiling powerful new models for drug discovery, as well as strategies for tissue regeneration in the clinic. We draw on several examples of stem cell-derived organoids to illustrate how bioengineering can contribute to tissue formation ex vivo. We also discuss the challenges that lie ahead and potential ways to overcome them.
机译:在器官发生过程中,各种分子和物理信号在空间和时间上被编排,以将多种细胞类型雕刻为功能性组织和器官。该过程的复杂和动态性质阻碍了旨在描述体内形态发生机理的研究,特别是在哺乳动物中。干细胞驱动的组织装配在文化中的最新演示为建模和解剖器官发生提供了强大的新工具。然而,尽管干细胞来源的组织具有高度的器官型性质,但它们之间的实质性差异使它们与体内的组织区别开来,这可能是由于它们所处的微环境改变了,并且缺乏间充质的影响。生物材料和微技术领域的进步,例如,提供了对细胞微环境的高度时空控制,从而有可能以模块化的方式询问单个微环境成分的影响,并迅速鉴定器官特异性合成培养模型。因此,生物工程方法有望弥合培养中干细胞驱动的组织形成与体内形态发生之间的鸿沟,提供对器官发生的机械观察,并揭示强大的药物发现新模型以及临床中的组织再生策略。我们利用干细胞衍生的类器官的几个例子来说明生物工程如何能够促进离体组织的形成。我们还将讨论面临的挑战以及克服这些挑战的潜在方法。

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