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Role of cell-cycle in regulating neuroepithelial cell shape during bending of the chick neural plate.

作者信息

Smith J L, Schoenwolf G C

机构信息

Department of Anatomy, University of Utah, School of Medicine, Salt Lake City 84132.

出版信息

Cell Tissue Res. 1988 Jun;252(3):491-500. doi: 10.1007/BF00216636.

DOI:10.1007/BF00216636
PMID:3396052
Abstract

Neuroepithelial cells transform from spindle-shaped to wedge-shaped within the median and paired dorsolateral hinge points of the bending neural plate, but the mechanisms underlying these localized changes are unclear. This study was designed to evaluate further the hypothesis that localized "wedging" of neuroepithelial cells during bending involves basal cellular expansion resulting from alteration of the cell-cycle. Neurulating chick embryos were treated with tritiated thymidine, and transverse sections through the midbrain were examined autoradiographically. Parameters of the cell-cycle as well as nuclear position and size were assessed in the median hinge point, which contains predominantly wedge-shaped cells, and in adjacent lateral areas of the neural plate, which contain predominantly spindle-shaped cells. Both the DNA-synthetic phase and non-DNA synthetic portion of the cell-cycle were significantly longer in the median hinge point than in lateral neuroepithelial areas, some nuclei in both regions were located basally during these phases, and virtually all basal nuclei in the median hinge point were large. Additionally, the mitotic phase was significantly shorter in the median hinge point than in lateral areas. We present a model to explain how alteration of the cell-cycle in the median hinge point could generate wedging of cells in this region.

摘要

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本文引用的文献

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A series of normal stages in the development of the chick embryo.鸡胚胎发育的一系列正常阶段。
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Force-generating apoptotic cells orchestrate avian neural tube bending.产生力的凋亡细胞协调鸟类神经管弯曲。
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R Soc Open Sci. 2021 Dec 8;8(12):211024. doi: 10.1098/rsos.211024. eCollection 2021 Dec.
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Hallmarks of primary neurulation are conserved in the zebrafish forebrain.原发性神经胚形成的特征在斑马鱼前脑中得到保守。
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Sonic hedgehog signaling directs patterned cell remodeling during cranial neural tube closure. Sonic hedgehog 信号指导颅神经管闭合过程中的模式细胞重塑。
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Quantitative analyses of changes in cell shapes during bending of the avian neural plate.鸟类神经板弯曲过程中细胞形状变化的定量分析。
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Behavior of neuro-epithelial cells during closure of the neural tube.神经管闭合过程中神经上皮细胞的行为。
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The development of the spinal cord examined by autoradiography.
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