Evaluation of the roles of intrinsic and extrinsic factors in occlusion of the spinal neurocoel during rapid brain enlargement in the chick embryo.

M E Desmond, G C Schoenwolf
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Abstract

The spinal neurocoel normally occludes during the second day of chick embryogenesis as the lateral walls of the spinal cord become apposed closely in the midline. Concomitantly, the brain initiates its rapid and substantial enlargement. Occlusion, although short-lived, might play a major role in brain enlargement. As a result of occlusion, the brain ventricles are sealed off from the external milieu prior to closure of the posterior neuropore, establishing a closed fluid-filled system. The present study focuses on the mechanisms of occlusion of the spinal neurocoel. We tested two postulated intrinsic factors (microtubule-mediated neuroepithelial cell elongation and microfilament-mediated apical neuroepithelial cell constriction) and five extrinsic factors (three mediad pushing forces generated by the somites, perineural extracellular matrix and expanding surface ectoderm; and two stretching forces generated either vertically by pulling of the elongated notochord or longitudinally by elongation of the embryo) in maintaining occlusion. Our results suggest that occlusion is maintained by other, untested intrinsic factors and/or by forces generated within a perineural collar, composed of cellular and extracellular materials, intimately associated with the basal aspects of the spinal cord. Cytoskeletal-mediated changes in cell shapes, pushing forces and vertical and longitudinal tensions are not involved. Further studies are needed to examine the intrinsic properties of the neuroepithelium and the factors initiating occlusion and reopening.

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鸡胚脑快速增大过程中脊神经中心闭塞的内因和外因作用的评价。
正常情况下,在小鸡胚胎发生的第二天,脊髓的侧壁在中线处紧密地相对,脊髓神经腔闭合。与此同时,大脑开始迅速而实质性地扩大。闭塞虽然是短暂的,但可能在脑增大中起主要作用。由于闭塞,脑室在关闭后神经孔之前与外部环境隔绝,建立一个封闭的充满液体的系统。本研究的重点是脊髓神经中心闭塞的机制。我们测试了两个假定的内在因素(微管介导的神经上皮细胞伸长和微丝介导的顶端神经上皮细胞收缩)和五个外在因素(体体、神经周围细胞外基质和扩张的表面外胚层产生的三种介质推力;以及两种拉伸力(由拉长的脊索在垂直方向上的拉伸或由胚胎在纵向上的拉伸)来维持咬合。我们的研究结果表明,闭塞是由其他未经测试的内在因素和/或由神经周围环内产生的力维持的,由细胞和细胞外物质组成,与脊髓的基础方面密切相关。细胞骨架介导的细胞形状、推力和垂直和纵向张力的变化不涉及。需要进一步的研究来检查神经上皮的内在特性和引发闭塞和重开的因素。
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