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ROCK-nmMyoII, Notch and gene-dosage link epithelial morphogenesis with cell fate in the pancreatic endocrine-progenitor niche.ROCK-nmMyoII、Notch 和基因剂量在胰腺内分泌前体细胞龛中连接上皮形态发生与细胞命运。
Development. 2018 Sep 21;145(18):dev162115. doi: 10.1242/dev.162115.
2
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本文引用的文献

1
Afadin and RhoA control pancreatic endocrine mass via lumen morphogenesis.Afadin和RhoA通过管腔形态发生控制胰腺内分泌团块。
Genes Dev. 2017 Dec 1;31(23-24):2376-2390. doi: 10.1101/gad.307637.117. Epub 2018 Jan 12.
2
EGFR signalling controls cellular fate and pancreatic organogenesis by regulating apicobasal polarity.EGFR 信号通过调节顶底极性控制细胞命运和胰腺发生。
Nat Cell Biol. 2017 Nov;19(11):1313-1325. doi: 10.1038/ncb3628. Epub 2017 Oct 23.
3
Precommitment low-level Neurog3 expression defines a long-lived mitotic endocrine-biased progenitor pool that drives production of endocrine-committed cells.预先承诺的低水平Neurog3表达定义了一个长寿的有丝分裂内分泌偏向祖细胞池,该祖细胞池驱动内分泌定向细胞的产生。
Genes Dev. 2016 Aug 15;30(16):1852-65. doi: 10.1101/gad.284729.116. Epub 2016 Sep 1.
4
Pdx1 regulates pancreas tubulogenesis and E-cadherin expression.胰腺十二指肠同源盒基因1调控胰腺小管形成和E-钙黏蛋白表达。
Development. 2016 Jan 1;143(1):101-12. doi: 10.1242/dev.126755. Epub 2015 Dec 10.
5
Feedback control of growth, differentiation, and morphogenesis of pancreatic endocrine progenitors in an epithelial plexus niche.上皮丛状微环境中胰腺内分泌祖细胞生长、分化和形态发生的反馈控制。
Genes Dev. 2015 Oct 15;29(20):2203-16. doi: 10.1101/gad.267914.115.
6
TEAD and YAP regulate the enhancer network of human embryonic pancreatic progenitors.TEAD和YAP调控人类胚胎胰腺祖细胞的增强子网络。
Nat Cell Biol. 2015 May;17(5):615-626. doi: 10.1038/ncb3160. Epub 2015 Apr 27.
7
Hnf1b controls pancreas morphogenesis and the generation of Ngn3+ endocrine progenitors.肝细胞核因子1β(Hnf1b)控制胰腺形态发生以及神经生成蛋白3(Ngn3)阳性内分泌祖细胞的产生。
Development. 2015 Mar 1;142(5):871-82. doi: 10.1242/dev.110759.
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Neural crest specification by inhibition of the ROCK/Myosin II pathway.通过抑制ROCK/肌球蛋白II途径实现神经嵴特化。
Stem Cells. 2015 Mar;33(3):674-85. doi: 10.1002/stem.1877.
9
Pancreas development ex vivo: culturing embryonic pancreas explants on permeable culture inserts, with fibronectin-coated glass microwells, or embedded in three-dimensional Matrigel™.胰腺体外发育:将胚胎胰腺外植体培养在可渗透培养插入物上、涂有纤连蛋白的玻璃微孔中,或包埋于三维基质胶中。
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Apical constriction: themes and variations on a cellular mechanism driving morphogenesis.顶端缢缩:一个细胞机制在形态发生中的主题和变奏。
Development. 2014 May;141(10):1987-98. doi: 10.1242/dev.102228.

ROCK-nmMyoII、Notch 和基因剂量在胰腺内分泌前体细胞龛中连接上皮形态发生与细胞命运。

ROCK-nmMyoII, Notch and gene-dosage link epithelial morphogenesis with cell fate in the pancreatic endocrine-progenitor niche.

机构信息

Vanderbilt University Program in Developmental Biology, Department of Cell and Developmental Biology, Vanderbilt Center for Stem Cell Biology, Vanderbilt University, Nashville, TN 37232, USA.

Vanderbilt University Program in Developmental Biology, Department of Cell and Developmental Biology, Vanderbilt Center for Stem Cell Biology, Vanderbilt University, Nashville, TN 37232, USA

出版信息

Development. 2018 Sep 21;145(18):dev162115. doi: 10.1242/dev.162115.

DOI:10.1242/dev.162115
PMID:30126902
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6176929/
Abstract

During mouse pancreas organogenesis, endocrine cells are born from progenitors residing in an epithelial plexus niche. After a period in a lineage-primed state, progenitors become endocrine committed via upregulation of We find that the to transition is associated with distinct stages of an epithelial egression process: narrowing the apical surface of the cell, basalward cell movement and eventual cell-rear detachment from the apical lumen surface to allow clustering as nascent islets under the basement membrane. Apical narrowing, basalward movement and transcriptional upregulation still occur without Neurog3 protein, suggesting that morphogenetic cues deployed within the plexus initiate endocrine commitment upstream or independently of Neurog3. Neurog3 is required for cell-rear detachment and complete endocrine-cell birth. The ROCK-nmMyoII pathway coordinates epithelial-cell morphogenesis and the progression through -expressing states. NmMyoII is necessary for apical narrowing, basalward cell displacement and upregulation, but all three are limited by ROCK activity. We propose that ROCK-nmMyoII activity, gene-dose and Notch signaling integrate endocrine fate allocation with epithelial plexus growth and morphogenesis, representing a feedback control circuit that coordinates morphogenesis with lineage diversification in the endocrine-birth niche.

摘要

在小鼠胰腺器官发生过程中,内分泌细胞由位于上皮丛巢龛中的祖细胞产生。在处于谱系启动状态一段时间后,祖细胞通过上调特定基因而成为内分泌细胞。我们发现,从向 到 的转变与上皮细胞外突过程的不同阶段相关:细胞的顶端表面变窄,细胞向基底移动,最终细胞尾部与顶端腔表面分离,允许新生胰岛在基底膜下聚集。即使没有 Neurog3 蛋白,顶端变窄、基底移动和转录上调仍会发生,这表明丛巢内部署的形态发生线索在上游或独立于 Neurog3 启动内分泌细胞的分化。Neurog3 对于细胞尾部的分离和完整的内分泌细胞的产生是必需的。ROCK-nmMyoII 通路协调上皮细胞形态发生和通过表达状态的进展。NmMyoII 对于顶端变窄、基底细胞位移和 表达上调是必需的,但这三者都受到 ROCK 活性的限制。我们提出,ROCK-nmMyoII 活性、基因剂量和 Notch 信号整合了内分泌命运分配与上皮丛巢的生长和形态发生,代表了一个反馈控制回路,该回路协调了内分泌发生龛中的形态发生与谱系多样化。