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本文引用的文献

1
The apical determinants aPKC and dPatj regulate Frizzled-dependent planar cell polarity in the Drosophila eye.顶端决定因子非典型蛋白激酶C(aPKC)和盘状蛋白(dPatj)在果蝇眼睛中调节依赖卷曲蛋白(Frizzled)的平面细胞极性。
Cell. 2005 May 20;121(4):621-631. doi: 10.1016/j.cell.2005.03.014.
2
erbb3 and erbb2 are essential for schwann cell migration and myelination in zebrafish.Erbb3和Erbb2对斑马鱼施万细胞的迁移和髓鞘形成至关重要。
Curr Biol. 2005 Mar 29;15(6):513-24. doi: 10.1016/j.cub.2005.02.030.
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Ascidian prickle regulates both mediolateral and anterior-posterior cell polarity of notochord cells.海鞘棘蛋白调节脊索细胞的内外侧和前后细胞极性。
Curr Biol. 2005 Jan 11;15(1):79-85. doi: 10.1016/j.cub.2004.12.041.
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Noncanonical Wnt signaling regulates midline convergence of organ primordia during zebrafish development.非经典Wnt信号通路在斑马鱼发育过程中调节器官原基的中线汇聚。
Genes Dev. 2005 Jan 1;19(1):164-75. doi: 10.1101/gad.1253605.
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Planar cell polarity signalling controls cell division orientation during zebrafish gastrulation.平面细胞极性信号传导在斑马鱼原肠胚形成过程中控制细胞分裂方向。
Nature. 2004 Aug 5;430(7000):689-93. doi: 10.1038/nature02796. Epub 2004 Jul 14.
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The genetic basis of mammalian neurulation.哺乳动物神经胚形成的遗传基础。
Nat Rev Genet. 2003 Oct;4(10):784-93. doi: 10.1038/nrg1181.
7
Prickle and Strabismus form a functional complex to generate a correct axis during planar cell polarity signaling.棘蛋白和斜视蛋白形成一个功能复合体,以在平面细胞极性信号传导过程中产生正确的轴。
EMBO J. 2003 Sep 1;22(17):4409-20. doi: 10.1093/emboj/cdg424.
8
Prickle 1 regulates cell movements during gastrulation and neuronal migration in zebrafish.Prickle 1在斑马鱼原肠胚形成和神经元迁移过程中调节细胞运动。
Development. 2003 Sep;130(17):4037-46. doi: 10.1242/dev.00567.
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A 90-degree rotation of the mitotic spindle changes the orientation of mitoses of zebrafish neuroepithelial cells.有丝分裂纺锤体的90度旋转会改变斑马鱼神经上皮细胞有丝分裂的方向。
Development. 2003 Aug;130(16):3767-80. doi: 10.1242/dev.00603.
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Shaping the vertebrate body plan by polarized embryonic cell movements.通过极化胚胎细胞运动塑造脊椎动物身体蓝图。
Science. 2002 Dec 6;298(5600):1950-4. doi: 10.1126/science.1079478.

平面细胞极性信号在神经胚形成过程中耦合细胞分裂和形态发生。

Planar cell polarity signalling couples cell division and morphogenesis during neurulation.

作者信息

Ciruna Brian, Jenny Andreas, Lee Diana, Mlodzik Marek, Schier Alexander F

机构信息

Developmental Genetics Program, Skirball Institute of Biomolecular Medicine and Department of Cell Biology, New York University School of Medicine, New York, New York 10016, USA.

出版信息

Nature. 2006 Jan 12;439(7073):220-4. doi: 10.1038/nature04375.

DOI:10.1038/nature04375
PMID:16407953
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1417047/
Abstract

Environmental and genetic aberrations lead to neural tube closure defects (NTDs) in 1 out of every 1,000 births. Mouse and frog models for these birth defects have indicated that Van Gogh-like 2 (Vangl2, also known as Strabismus) and other components of planar cell polarity (PCP) signalling might control neurulation by promoting the convergence of neural progenitors to the midline. Here we show a novel role for PCP signalling during neurulation in zebrafish. We demonstrate that non-canonical Wnt/PCP signalling polarizes neural progenitors along the anteroposterior axis. This polarity is transiently lost during cell division in the neural keel but is re-established as daughter cells reintegrate into the neuroepithelium. Loss of zebrafish Vangl2 (in trilobite mutants) abolishes the polarization of neural keel cells, disrupts re-intercalation of daughter cells into the neuroepithelium, and results in ectopic neural progenitor accumulations and NTDs. Remarkably, blocking cell division leads to rescue of trilobite neural tube morphogenesis despite persistent defects in convergence and extension. These results reveal a function for PCP signalling in coupling cell division and morphogenesis at neurulation and indicate a previously unrecognized mechanism that might underlie NTDs.

摘要

环境和基因异常导致每1000例出生中就有1例出现神经管闭合缺陷(NTDs)。针对这些出生缺陷的小鼠和青蛙模型表明,类梵高2(Vangl2,也称为斜视)和平面细胞极性(PCP)信号通路的其他成分可能通过促进神经祖细胞向中线汇聚来控制神经胚形成。在这里,我们展示了PCP信号通路在斑马鱼神经胚形成过程中的新作用。我们证明,非经典Wnt/PCP信号通路沿前后轴使神经祖细胞极化。这种极性在神经嵴细胞分裂期间短暂丧失,但随着子细胞重新整合到神经上皮中而重新建立。斑马鱼Vangl2缺失(在三叶虫突变体中)消除了神经嵴细胞的极化,破坏了子细胞重新插入神经上皮的过程,并导致异位神经祖细胞积累和NTDs。值得注意的是,尽管在汇聚和延伸方面存在持续缺陷,但阻断细胞分裂可挽救三叶虫神经管形态发生。这些结果揭示了PCP信号通路在神经胚形成过程中耦合细胞分裂和形态发生的功能,并表明了一种可能是NTDs基础的先前未被认识的机制。