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1
Multistep signaling requirements for pituitary organogenesis in vivo.体内垂体器官发生的多步骤信号转导需求。
Genes Dev. 1998 Jun 1;12(11):1691-704. doi: 10.1101/gad.12.11.1691.
2
Multistep signaling and transcriptional requirements for pituitary organogenesis in vivo.体内垂体器官发生的多步骤信号传导和转录要求。
Recent Prog Horm Res. 2000;55:1-13; discussion 13-4.
3
Hedgehog signaling is required for pituitary gland development.刺猬信号通路对垂体发育是必需的。
Development. 2001 Feb;128(3):377-86. doi: 10.1242/dev.128.3.377.
4
Signaling mechanisms in pituitary morphogenesis and cell fate determination.垂体形态发生和细胞命运决定中的信号传导机制。
Curr Opin Cell Biol. 1999 Dec;11(6):669-77. doi: 10.1016/s0955-0674(99)00034-4.
5
Noggin regulates Bmp4 activity during pituitary induction.头蛋白在垂体诱导过程中调节骨形态发生蛋白4(Bmp4)的活性。
Dev Biol. 2007 May 1;305(1):145-60. doi: 10.1016/j.ydbio.2007.02.001. Epub 2007 Feb 7.
6
Temporal regulation of a paired-like homeodomain repressor/TLE corepressor complex and a related activator is required for pituitary organogenesis.垂体器官发生需要配对样同源结构域阻遏物/TLE共阻遏物复合物和相关激活剂的时间调控。
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Signaling and transcriptional mechanisms in pituitary development.垂体发育中的信号传导和转录机制。
Annu Rev Neurosci. 2001;24:327-55. doi: 10.1146/annurev.neuro.24.1.327.
8
WNT signaling affects gene expression in the ventral diencephalon and pituitary gland growth.WNT信号通路影响腹侧间脑的基因表达和垂体生长。
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Bone morphogenetic proteins.骨形态发生蛋白
Growth Factors. 2004 Dec;22(4):233-41. doi: 10.1080/08977190412331279890.
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Canonical WNT Signaling Regulates the Pituitary Organizer and Pituitary Gland Formation.经典WNT信号通路调控垂体组织者及垂体形成。
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Relationship Between Pituitary Gland and Stem Cell in the Aspect of Hormone Production and Disease Prevention: A Narrative Review.垂体与干细胞在激素产生和疾病预防方面的关系:一篇叙述性综述
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Recent Advances in the Understanding of Gonadotrope Lineage Differentiation in the Developing Pituitary.发育中垂体促性腺激素细胞谱系分化认识的最新进展
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History of the Development of Knowledge about the Neuroendocrine Control of Ovulation-Recent Knowledge on the Molecular Background.排卵的神经内分泌调控知识的发展历史——近期对分子背景的认识。
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Pituitary stem cells: past, present and future perspectives.垂体干细胞:过去、现在和未来的展望。
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The hidden hedgehog of the pituitary: hedgehog signaling in development, adulthood and disease of the hypothalamic-pituitary axis.垂体中的隐藏刺猬:刺猬信号在下丘脑-垂体轴的发育、成年和疾病中的作用。
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Cellular interactions in the pituitary stem cell niche.垂体干细胞龛中的细胞相互作用。
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本文引用的文献

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Wnt signaling: a common theme in animal development.Wnt信号通路:动物发育中的一个共同主题。
Genes Dev. 1997 Dec 15;11(24):3286-305. doi: 10.1101/gad.11.24.3286.
2
Signalling networks regulating dental development.调控牙齿发育的信号网络。
Mech Dev. 1997 Oct;67(2):111-23. doi: 10.1016/s0925-4773(97)00115-9.
3
Multistep control of pituitary organogenesis.垂体器官发生的多步骤调控。
Science. 1997 Dec 5;278(5344):1809-12. doi: 10.1126/science.278.5344.1809.
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Wnt signalling required for expansion of neural crest and CNS progenitors.神经嵴和中枢神经系统祖细胞扩增需要Wnt信号传导。
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Opposing BMP and EGF signalling pathways converge on the TGF-beta family mediator Smad1.相互拮抗的骨形态发生蛋白(BMP)和表皮生长因子(EGF)信号通路在转化生长因子-β(TGF-β)家族介质Smad1上汇聚。
Nature. 1997 Oct 9;389(6651):618-22. doi: 10.1038/39348.
6
A role for the roof plate and its resident TGFbeta-related proteins in neuronal patterning in the dorsal spinal cord.顶板及其驻留的转化生长因子β相关蛋白在脊髓背侧神经元模式形成中的作用。
Cell. 1997 Oct 3;91(1):127-38. doi: 10.1016/s0092-8674(01)80015-5.
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Molecular models for vertebrate limb development.脊椎动物肢体发育的分子模型。
Cell. 1997 Sep 19;90(6):979-90. doi: 10.1016/s0092-8674(00)80364-5.
8
Antagonistic interactions between FGF and BMP signaling pathways: a mechanism for positioning the sites of tooth formation.成纤维细胞生长因子(FGF)与骨形态发生蛋白(BMP)信号通路之间的拮抗相互作用:一种确定牙齿形成部位的机制。
Cell. 1997 Jul 25;90(2):247-55. doi: 10.1016/s0092-8674(00)80333-5.
9
The bicoid-related homeoprotein Ptx1 defines the most anterior domain of the embryo and differentiates posterior from anterior lateral mesoderm.与双尾相关的同源异型蛋白Ptx1界定了胚胎的最前端区域,并使后侧中胚层与前侧中胚层区分开来。
Development. 1997 Jul;124(14):2807-17. doi: 10.1242/dev.124.14.2807.
10
TTF-2, a new forkhead protein, shows a temporal expression in the developing thyroid which is consistent with a role in controlling the onset of differentiation.TTF-2是一种新的叉头蛋白,在发育中的甲状腺中呈现出一种时间性表达,这与它在控制分化起始过程中所起的作用相一致。
EMBO J. 1997 Jun 2;16(11):3185-97. doi: 10.1093/emboj/16.11.3185.

体内垂体器官发生的多步骤信号转导需求。

Multistep signaling requirements for pituitary organogenesis in vivo.

作者信息

Treier M, Gleiberman A S, O'Connell S M, Szeto D P, McMahon J A, McMahon A P, Rosenfeld M G

机构信息

Howard Hughes Medical Institute, University of California, San Diego, School and Department of Medicine, La Jolla, California 92093-0648 USA.

出版信息

Genes Dev. 1998 Jun 1;12(11):1691-704. doi: 10.1101/gad.12.11.1691.

DOI:10.1101/gad.12.11.1691
PMID:9620855
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC316866/
Abstract

During development of the mammalian pituitary gland specific hormone-producing cell types, critical in maintaining homeostasis, emerge in a spatially and temporally specific fashion from an ectodermal primordium. We have investigated the molecular basis of generating diverse pituitary cell phenotypes from a common precursor, providing in vivo and in vitro evidence that their development involves three sequential phases of signaling events and the action of a gradient at an ectodermal boundary. In the first phase, the BMP4 signal from the ventral diencephalon, expressing BMP4, Wnt5a, and FGF8, represents a critical dorsal neuroepithelial signal for pituitary organ commitment in vivo. Subsequently, a BMP2 signal emanates from a ventral pituitary organizing center that forms at the boundary of a region of oral ectoderm in which Shh expression is selectively excluded. This BMP2 signal together with a dorsal FGF8 signal, appears to create opposing activity gradients that are suggested to generate overlapping patterns of specific transcription factors underlying cell lineage specification events, whereas Wnt4 is needed for the expansion of ventral pituitary cell phenotypes. In the third phase, temporally specific loss of the BMP2 signal is required to allow terminal differentiation. The consequence of these sequential organ and cellular determination events is that each of the hormone-producing pituitary cell types-gonadotropes, thyrotropes, somatotropes, lactotropes, corticotropes, and melanotropes-appear to be determined, in a ventral-to-dorsal gradient, respectively.

摘要

在哺乳动物垂体发育过程中,对维持体内平衡至关重要的特定激素产生细胞类型,以空间和时间特异性的方式从外胚层原基中出现。我们研究了从共同前体产生多种垂体细胞表型的分子基础,提供了体内和体外证据,表明它们的发育涉及信号事件的三个连续阶段以及外胚层边界处梯度的作用。在第一阶段,来自表达BMP4、Wnt5a和FGF8的腹侧间脑的BMP4信号,是体内垂体器官定向的关键背侧神经上皮信号。随后,BMP2信号从腹侧垂体组织中心发出,该中心形成于选择性排除Shh表达的口腔外胚层区域的边界。这个BMP2信号与背侧FGF8信号一起,似乎产生了相反的活性梯度,这些梯度被认为会产生细胞谱系特化事件背后特定转录因子的重叠模式,而Wnt4是腹侧垂体细胞表型扩展所必需的。在第三阶段,需要BMP2信号在时间上的特异性丧失以允许终末分化。这些连续的器官和细胞决定事件的结果是,每种产生激素的垂体细胞类型——促性腺激素细胞、促甲状腺激素细胞、生长激素细胞、催乳激素细胞、促肾上腺皮质激素细胞和促黑素细胞——似乎分别以腹侧到背侧的梯度被决定。