Adult neural stem cells and repair of the adult central nervous system.

Eyleen Lay Keow Goh, Dengke Ma, Guo-Li Ming, Hongjun Song
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引用次数: 64

Abstract

Neural stem cells are present not only in the developing nervous systems, but also in the adult central nervous system of mammals, including humans. The mature central nervous system has been traditionally regarded as an unfavorable environment for the regeneration of damaged axons of mature neurons and the generation of new neurons. In the adult central nervous system, however, newly generated neurons from adult neural stem cells in specific regions exhibit a striking ability to migrate, send out long axonal and dendritic projections, integrate into pre-existing neuronal circuits, and contribute to normal brain functions. Adult stem cells with potential neural capacity recently have been isolated from various neural and nonneural sources. Rapid advances in the stem cell biology have raised exciting possibilities of replacing damaged or lost neurons by activation of endogenous neural stem cells and/or transplantation of in vitro-expanded stem cells and/or their neuronal progeny. Before the full potential of adult stem cells can be realized for regenerative medicine, we need to identify the sources of stem cells, to understand mechanisms regulating their proliferation, fate specification, and, most importantly in the case of neuronal lineages, to characterize their functional properties. Equally important, we need to understand the neural development processes in the normal and diseased adult central nervous system environment, which is quite different from the embryonic central nervous system, where neural development has been traditionally investigated. Here we will review some recent progress of adult neural stem cell research that is applicable to developmental neurobiology and also has potential implications in clinical neuroscience.

成体神经干细胞与成体中枢神经系统的修复。
神经干细胞不仅存在于发育中的神经系统中,也存在于包括人类在内的哺乳动物的成年中枢神经系统中。成熟的中枢神经系统一直被认为是成熟神经元受损轴突再生和新神经元生成的不利环境。然而,在成人中枢神经系统中,特定区域的成体神经干细胞新生成的神经元表现出惊人的迁移能力,发出长轴突和树突投影,整合到已有的神经元回路中,并有助于正常的大脑功能。近年来,从各种神经和非神经来源中分离出具有潜在神经功能的成体干细胞。干细胞生物学的快速发展为通过激活内源性神经干细胞和/或移植体外扩增的干细胞和/或其神经元后代来替代受损或丢失的神经元提供了令人兴奋的可能性。在将成体干细胞的全部潜力用于再生医学之前,我们需要确定干细胞的来源,了解调节其增殖的机制,命运规范,最重要的是,在神经谱系的情况下,表征其功能特性。同样重要的是,我们需要了解正常和患病成人中枢神经系统环境中的神经发育过程,这与传统上研究神经发育的胚胎中枢神经系统有很大不同。本文将回顾近年来成体神经干细胞在发育神经生物学和临床神经科学方面的研究进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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