发育中的大鼠颈脊髓腹侧连接:一个高度控制的轴突神经胶质系统。

Sile Lane, Kieran McDermott, Peter Dockery, John Fraher
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引用次数: 5

摘要

神经管底板在决定轴突的行为中起着重要的作用,这样,经过交叉的轴突就不会再交叉了。在神经管闭合后不久,脊髓的腹侧连合(VC)立即在底板的腹侧形成。这是讨论轴突越过中线的主要位置。它可能在神经管发育中也很重要,但相对较少受到关注。本研究分析了大鼠VC的生长发育及其轴突与神经胶质之间的关系,这段时间是跨中轴突广泛生长的关键产前时期,这两个组织之间发生了关键的生化相互作用。形态计量学、体视学和免疫组织化学方法表明,轴突和神经胶质种群在两种元素生长近一倍的时期内保持着一种微妙的平衡。在所有阶段,轴突都被神经胶质过程高度分离成大小恒定的小束,并与之紧密相连。因此,神经胶质-轴突的接触是非常早熟的,独特的亲密,并持续整个VC发育。这表明两个组织之间的关系是通过它们之间的相互作用高度控制的。VC很可能是第二组神经胶质-轴突相互作用的物理基础,即那些众所周知的影响轴突交叉行为的相互作用。在介导这些过程中,广泛的轴突-胶质接触是它们之间分子转移的理想安排,并且可能是改变轴突反应性和确保可靠的跨中讨论的基础。因此,VC是一种分离基质,在时间和空间上专门用于一系列关键的发育轴突-胶质相互作用。
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The developing cervical spinal ventral commissure of the rat: a highly controlled axon-glial system.

The floor plate of the neural tube is of major importance in determining axonal behaviour, such that, having crossed, decussating axons do not cross back again. The ventral commissure (VC) of the spinal cord forms immediately ventral to the floor plate shortly after neural tube closure. It is the principal location in which decussating axons cross the midline. It is probably also of major importance in neural tube development, but has received relatively little attention. This study analyses the growth and development of the rat VC and also axon-glial relationships within it throughout the crucial prenatal period of extensive transmedian axon growth, when key biochemical interactions between the two tissues are taking place. The morphometric, stereological and immunohistochemical methods used show that the axonal and glial populations remain in a finely balanced equilibrium throughout a period of almost a hundred-fold growth of both elements. At all stages axons are highly segregated into small bundles of constant size by glial processes, to which they are closely apposed. Thus, glial-axon contact is remarkably precocious, uniquely intimate and persists throughout VC development. This suggests that the relationship between the two tissues is highly controlled through interactions between them. The VC is likely to be the physical basis of a second set of glial-axonal interactions, namely, those which are well known to influence axon crossing behaviour. In mediating these, the extensive axon-glial contact is an ideal arrangement for molecular transfer between them, and is probably the substrate for altering axon responsiveness and ensuring reliable transmedian decussation. The VC is therefore a segregating matrix temporally and spatially specialised for a range of key developmental axon-glial interactions.

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