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1
Neural crest invasion is a spatially-ordered progression into the head with higher cell proliferation at the migratory front as revealed by the photoactivatable protein, KikGR.神经嵴侵袭是一种向头部的空间有序进展,如可光激活蛋白KikGR所显示的,在迁移前沿细胞增殖更高。
Dev Biol. 2008 Apr 15;316(2):275-87. doi: 10.1016/j.ydbio.2008.01.029. Epub 2008 Feb 7.
2
Vascular endothelial growth factor (VEGF) regulates cranial neural crest migration in vivo.血管内皮生长因子 (VEGF) 调节体内颅神经嵴细胞的迁移。
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3
Roles of erbB4, rhombomere-specific, and rhombomere-independent cues in maintaining neural crest-free zones in the embryonic head.erbB4、菱脑节特异性和非菱脑节依赖性线索在维持胚胎头部无神经嵴区域中的作用。
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Analysis of neural crest migration and differentiation by cross-species transplantation.通过跨物种移植分析神经嵴的迁移和分化
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Cues from neuroepithelium and surface ectoderm maintain neural crest-free regions within cranial mesenchyme of the developing chick.来自神经上皮和表面外胚层的信号维持了发育中鸡胚颅间充质内无神经嵴的区域。
Development. 2002 Mar;129(5):1095-105. doi: 10.1242/dev.129.5.1095.
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In ovo time-lapse analysis of chick hindbrain neural crest cell migration shows cell interactions during migration to the branchial arches.对鸡胚后脑神经嵴细胞迁移进行的卵内延时分析显示,在向鳃弓迁移的过程中细胞存在相互作用。
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Neuropilin-1 interacts with the second branchial arch microenvironment to mediate chick neural crest cell dynamics.神经纤毛蛋白 1 与第二鳃弓微环境相互作用,调节鸡神经嵴细胞的动力学。
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Transcriptome profiling reveals expression signatures of cranial neural crest cells arising from different axial levels.转录组分析揭示了源自不同轴位水平的颅神经嵴细胞的表达特征。
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Dynamic fibronectin assembly and remodeling by leader neural crest cells prevents jamming in collective cell migration.领导性神经嵴细胞通过动态纤维连接蛋白组装和重塑防止细胞集体迁移中的堵塞。
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In vivo time-lapse imaging reveals extensive neural crest and endothelial cell interactions during neural crest migration and formation of the dorsal root and sympathetic ganglia.体内延时成像显示,在神经嵴迁移以及背根和交感神经节形成过程中,神经嵴与内皮细胞之间存在广泛的相互作用。
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Applications of phototransformable fluorescent proteins for tracking the dynamics of cellular components.光可转换荧光蛋白在追踪细胞组分动态变化中的应用。
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Neural crest migration: trailblazing ahead.神经嵴迁移:开拓前行。
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10
Colonizing while migrating: how do individual enteric neural crest cells behave?迁移中殖民:单个肠神经嵴细胞的行为如何?
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本文引用的文献

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Construction of a Heated Incubation Chamber around a Microscope Stage for Time-Lapse Imaging.围绕显微镜载物台构建用于延时成像的加热培养箱。
CSH Protoc. 2007 Jul 1;2007:pdb.prot4792. doi: 10.1101/pdb.prot4792.
2
Two distinct modes of guidance signalling during collective migration of border cells.边界细胞集体迁移过程中两种不同的导向信号模式。
Nature. 2007 Jul 19;448(7151):362-5. doi: 10.1038/nature05965.
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The chemokine SDF1a coordinates tissue migration through the spatially restricted activation of Cxcr7 and Cxcr4b.趋化因子SDF1a通过对Cxcr7和Cxcr4b的空间限制性激活来协调组织迁移。
Curr Biol. 2007 Jun 19;17(12):1026-31. doi: 10.1016/j.cub.2007.05.020.
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Cellular and molecular mechanisms of border cell migration analyzed using time-lapse live-cell imaging.使用延时活细胞成像分析边缘细胞迁移的细胞和分子机制。
Dev Cell. 2007 Jun;12(6):997-1005. doi: 10.1016/j.devcel.2007.03.021.
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An in vivo comparison of photoactivatable fluorescent proteins in an avian embryo model.鸟类胚胎模型中光激活荧光蛋白的体内比较
Dev Dyn. 2007 Jun;236(6):1583-94. doi: 10.1002/dvdy.21174.
6
Model systems for the study of heart development and disease. Cardiac neural crest and conotruncal malformations.心脏发育与疾病研究的模型系统。心脏神经嵴与圆锥动脉干畸形。
Semin Cell Dev Biol. 2007 Feb;18(1):101-10. doi: 10.1016/j.semcdb.2006.12.004. Epub 2006 Dec 19.
7
Migratory patterns and developmental potential of trunk neural crest cells in the axolotl embryo.美西螈胚胎中躯干神经嵴细胞的迁移模式与发育潜能
Dev Dyn. 2007 Feb;236(2):389-403. doi: 10.1002/dvdy.21039.
8
Cell proliferation drives neural crest cell invasion of the intestine.细胞增殖驱动神经嵴细胞向肠道侵袭。
Dev Biol. 2007 Feb 15;302(2):553-68. doi: 10.1016/j.ydbio.2006.10.017. Epub 2006 Oct 19.
9
Neural crest and the development of the enteric nervous system.神经嵴与肠神经系统的发育
Adv Exp Med Biol. 2006;589:181-96. doi: 10.1007/978-0-387-46954-6_11.
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The contribution of the neural crest to the vertebrate body.神经嵴对脊椎动物身体的贡献。
Adv Exp Med Biol. 2006;589:96-119. doi: 10.1007/978-0-387-46954-6_6.

神经嵴侵袭是一种向头部的空间有序进展,如可光激活蛋白KikGR所显示的,在迁移前沿细胞增殖更高。

Neural crest invasion is a spatially-ordered progression into the head with higher cell proliferation at the migratory front as revealed by the photoactivatable protein, KikGR.

作者信息

Kulesa Paul M, Teddy Jessica M, Stark Danny A, Smith Sarah E, McLennan Rebecca

机构信息

Stowers Institute for Medical Research, 1000 E. 50th St., Kansas City, MO 64110, USA.

出版信息

Dev Biol. 2008 Apr 15;316(2):275-87. doi: 10.1016/j.ydbio.2008.01.029. Epub 2008 Feb 7.

DOI:10.1016/j.ydbio.2008.01.029
PMID:18328476
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3501347/
Abstract

Neural crest cell (NCC) invasion is a complex sculpting of individual cells into organized migratory streams that lead to organ development along the vertebrate axis. Key to our understanding of how molecular mechanisms modulate the NCC migratory pattern is information about cell behaviors, yet it has been challenging to selectively mark and analyze migratory NCCs in a living embryo. Here, we apply an innovative in vivo strategy to investigate chick NCC behaviors within the rhombomere 4 (r4) migratory stream by combining photoactivation of KikGR and confocal time-lapse analysis of H2B-mRFP1 transfected NCCs. We find that the spatial order of r4 NCC emergence translates into a distal-to-proximal invasion of the 2nd branchial arch. Lead and trailing NCCs display similar average cell speeds and directionalities. Surprisingly, we find that lead NCCs proliferate along the migratory route and grow to outnumber trailing NCCs by nearly 3 to 1. A simple, cell-based computational model reproduces the r4 NCC migratory pattern and predicts the invasion order can be disrupted by slower, less directional lead cells or by environmental noise. Our results suggest a model in which NCC behaviors maintain a spatially-ordered invasion of the branchial arches with differences in cell proliferation between the migratory front and trailing NCCs.

摘要

神经嵴细胞(NCC)的侵袭是一个复杂的过程,即单个细胞形成有组织的迁移流,从而沿着脊椎动物轴引导器官发育。了解分子机制如何调节NCC迁移模式的关键在于细胞行为的信息,但在活胚胎中选择性标记和分析迁移的NCC一直具有挑战性。在这里,我们应用一种创新的体内策略,通过结合KikGR的光激活和对转染了H2B-mRFP1的NCC进行共聚焦延时分析,来研究菱脑节4(r4)迁移流中的鸡NCC行为。我们发现,r4 NCC出现的空间顺序转化为第二鳃弓从远端到近端的侵袭。领先和落后的NCC显示出相似的平均细胞速度和方向性。令人惊讶的是,我们发现领先的NCC在迁移路线上增殖,数量增长到几乎是落后NCC的3倍。一个简单的基于细胞的计算模型再现了r4 NCC的迁移模式,并预测侵袭顺序可能会被速度较慢、方向性较差的领先细胞或环境噪声打乱。我们的结果提出了一个模型,即NCC行为维持鳃弓的空间有序侵袭,迁移前端和落后NCC之间存在细胞增殖差异。