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皮质轴突生长、导向和分支的信号机制。

Signaling mechanisms in cortical axon growth, guidance, and branching.

机构信息

Neuroscience Training Program, University of Wisconsin-Madison Madison, WI, USA.

出版信息

Front Neuroanat. 2011 Sep 28;5:62. doi: 10.3389/fnana.2011.00062. eCollection 2011.

Abstract

Precise wiring of cortical circuits during development depends upon axon extension, guidance, and branching to appropriate targets. Motile growth cones at axon tips navigate through the nervous system by responding to molecular cues, which modulate signaling pathways within axonal growth cones. Intracellular calcium signaling has emerged as a major transducer of guidance cues but exactly how calcium signaling pathways modify the actin and microtubule cytoskeleton to evoke growth cone behaviors and axon branching is still mysterious. Axons must often pause their extension in tracts while their branches extend into targets. Some evidence suggests a competition between growth of axons and branches but the mechanisms are poorly understood. Since it is difficult to study growing axons deep within the mammalian brain, much of what we know about signaling pathways and cytoskeletal dynamics of growth cones comes from tissue culture studies, in many cases, of non-mammalian species. Consequently it is not well understood how guidance cues relevant to mammalian neural development in vivo signal to the growth cone cytoskeleton during axon outgrowth and guidance. In this review we describe our recent work in dissociated cultures of developing rodent sensorimotor cortex in the context of the current literature on molecular guidance cues, calcium signaling pathways, and cytoskeletal dynamics that regulate growth cone behaviors. A major challenge is to relate findings in tissue culture to mechanisms of cortical development in vivo. Toward this goal, we describe our recent work in cortical slices, which preserve the complex cellular and molecular environment of the mammalian brain but allow direct visualization of growth cone behaviors and calcium signaling. Findings from this work suggest that mechanisms regulating axon growth and guidance in dissociated culture neurons also underlie development of cortical connectivity in vivo.

摘要

在发育过程中,皮质回路的精确布线取决于轴突的延伸、导向和分支到适当的靶标。轴突尖端的运动生长锥通过响应分子线索在神经系统中导航,这些线索调节轴突生长锥内的信号通路。细胞内钙信号已成为指导线索的主要传感器,但钙信号通路如何修饰肌动蛋白和微管细胞骨架以引发生长锥行为和轴突分支仍然是个谜。轴突在其分支延伸到靶标时,必须经常在轨迹中暂停延伸。一些证据表明轴突和分支的生长之间存在竞争,但机制尚不清楚。由于很难研究哺乳动物大脑深处的生长轴突,我们对生长锥信号通路和细胞骨架动力学的了解大多来自组织培养研究,在许多情况下,是来自非哺乳动物物种。因此,我们不太了解与体内哺乳动物神经发育相关的导向线索如何在轴突生长和导向期间向生长锥细胞骨架发出信号。在这篇综述中,我们描述了我们在发育中的啮齿动物感觉运动皮层的分离培养中的最新工作,同时还介绍了关于分子导向线索、钙信号通路和调节生长锥行为的细胞骨架动力学的当前文献。一个主要的挑战是将组织培养中的发现与体内皮质发育的机制联系起来。为此,我们描述了我们在皮质切片中的最新工作,这些切片保留了哺乳动物大脑的复杂细胞和分子环境,但允许直接观察生长锥行为和钙信号。这项工作的结果表明,调节分离培养神经元中轴突生长和导向的机制也为体内皮质连接的发育提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6591/3202218/74f347fcf672/fnana-05-00062-g001.jpg

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