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在三维细胞外基质中重建神经干细胞龛的血管微环境。

Reconstituting vascular microenvironment of neural stem cell niche in three-dimensional extracellular matrix.

机构信息

Department of Mechanical Engineering, Korea University, #512B, Innovation Hall, Anam, Seongbuk, Seoul, 136-713, South Korea.

出版信息

Adv Healthc Mater. 2014 Sep;3(9):1457-64. doi: 10.1002/adhm.201300569. Epub 2014 Feb 12.

Abstract

Neural stem cells (NSCs) reside in a vascular microenvironment termed the "NSC niche." Blood vessels in the NSC niche play an important role in maintaining an appropriate balance between NSC self-renewal and differentiation that serves to maintain homeostasis. Understanding the role of brain vessels in the NSC niche will facilitate basic research in neurogenesis and vasculogenesis as well as aid the development of potential therapies for degenerative disorders. Here, an in vitro-reconstituted NSC-vascular niche consisting of a 3D brain vasculature and extracellular matrix (ECM) microenvironment that allows NSCs to adopt physiologically relevant phenotypes through the combined effects of ECM components, chemical gradients, and signaling effectors from the brain vasculature is described. The reconstituted niche can provide precise spatiotemporal control of the NSC niche, regulating self-renewal, proliferation and colony formation of NSCs, and suppressing neuronal generation but promoting NSC differentiation into astrocytes and oligodendrocytes. It is proved that Notch effectors regulate both the astrocyte differentiation and NSC self-renewal, but the astrocyte differentiation is more active in NSCs in close proximity to brain vasculature. A potential role of the other vascular microenvironmental factor of pigment epithelium-derived factor from brain vasculature in the regulation of NSC self-renewal is also proved.

摘要

神经干细胞(NSCs)存在于一个被称为“NSC 生态位”的血管微环境中。NSC 生态位中的血管在维持 NSC 自我更新和分化之间的适当平衡方面发挥着重要作用,有助于维持体内平衡。了解脑血管在 NSC 生态位中的作用将促进神经发生和血管生成的基础研究,并有助于开发退行性疾病的潜在治疗方法。在这里,描述了一种由 3D 脑血管和细胞外基质(ECM)微环境组成的体外重建 NSC-血管生态位,该生态位允许 NSCs 通过 ECM 成分、化学梯度和脑血管的信号效应器的联合作用,采用与生理相关的表型。重建的生态位可以提供 NSC 生态位的精确时空控制,调节 NSCs 的自我更新、增殖和集落形成,并抑制神经元生成,但促进 NSCs 分化为星形胶质细胞和少突胶质细胞。研究证明,Notch 效应物调节星形胶质细胞分化和 NSCs 的自我更新,但在靠近脑血管的 NSCs 中,星形胶质细胞分化更为活跃。还证明了脑血管中色素上皮衍生因子等其他血管微环境因素在调节 NSCs 自我更新中的潜在作用。

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