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Hh signaling in the zebrafish forebrain and pituitary

Hh signaling in the zebrafish forebrain and pituitary
斑马鱼前脑和垂体中的 Hh 信号传导
批准号:
7026830
负责人:
ROLF O KARLSTROM
金额:
$30.49万
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-07-01 至 2009-04-30

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项目成果

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中文摘要
翻译
描述(由申请人提供):脑垂体被称为主内分泌腺,控制多种激素反应,包括调节生殖、体内平衡和应激反应的激素反应。脑下垂体或腺垂体的分泌垂体的叶在发育中的胚胎的前端通过神经和表皮来源的组织之间的诱导相互作用形成。Hedgehog(Hh)信号分子有助于介导这些诱导事件,这一作用在从鱼类到哺乳动物的脊椎动物物种中一直存在。人类Hh信号的突变会导致多种影响垂体发育的综合征,包括前脑无裂畸形和Pallister-Hall综合征。事实上,人类先天性垂体缺陷是相当常见的,范围从所有内分泌功能的丧失(全垂体功能减退症)到单一激素功能的丧失。生长激素的丢失是人类最常见的单一内分泌缺陷,每4000个胚胎中就有1个。我们以前表明,这一系列的垂体缺陷也发生在斑马鱼Hh通路突变体,为垂体发育的研究提供了一个独特的资源。其中,未表征的uml突变消除了一些细胞类型(例如GH),并独特地影响垂体中的细胞命运决定。我们还发现,Gli介导的Hh信号是垂体诱导和内分泌细胞分化所必需的。在这里,我们建议继续使用斑马鱼作为模型系统来研究Hh调节脊椎动物脑垂体细胞分化的分子和细胞机制。我们将首先测试是否Hh作为垂体发育的形态或有丝分裂原,并确定哪些Gli转录因子介导垂体Hh反应。使用新开发的技术,暂时和细胞自主中断Hh信号,我们将测试的Hh信号在垂体前体细胞和内分泌细胞系的直接需求,并确定何时需要直接Hh信号这些细胞分化事件。最后,我们将确定斑马鱼umleitung(uml)突变的分子基础,作为Hh参与内分泌细胞谱系确定的遗传调查的一部分。这项工作将提供有关Hh信号在脊椎动物垂体中引导细胞特化的作用的基础知识。我们的研究计划利用斑马鱼的优势,将遗传、细胞和分子分析联合收割机结合在一起,这在其他脊椎动物中是不可能的。我们的新遗传工具将有助于研究人员在任何胚胎组织中研究Hh。一个潜在的新的Hh信号调节器(uml基因座)的特性也可能提供新的见解Hh信号调节整个发育胚胎。由于Hh信号通路在进化过程中高度保守,这项工作将直接适用于我们对高等脊椎动物Hh信号的理解,并将影响我们指导干细胞分化用于治疗目的的能力。最终,这项斑马鱼研究有望有助于我们了解人类出生缺陷影响脑垂体,并可能揭示出生后Hh信号失调引起的肿瘤发生。
英文摘要
DESCRIPTION (provided by applicant): The pituitary gland is known as the master endocrine gland and controls multiple hormonal responses including those regulating reproduction, homeostasis, and responses to stress. The hormone-secreting lobe of the pituitary gland, or adenohypophysis, forms at the anterior end of the developing embryo through inductive interactions between neurally and epidermally derived tissues. Hedgehog (Hh) signaling molecules help mediate these inductive events, a role that has been conserved across vertebrate species from fish to mammals. Human mutations in Hh signaling lead to a variety of syndromes that affect pituitary development, including Holoprosencephaly and Pallister-Hall syndrome. In fact, human congenital pituitary defects are quite common and range from the loss of all endocrine function (panhypopituitarism) to the loss of single hormone function. The loss of GH is the most common single endocrine deficiency in humans, occurring in 1 in 4000 embryos. We previously showed that this range of pituitary defects also occurs in zebrafish Hh pathway mutants, providing a unique resource for the study of pituitary development. Among these, the uncharacterized uml mutation eliminates some cell types (e.g. GH) and uniquely affects cell fate decisions in the pituitary. We also showed that Gli mediated Hh signaling is needed for pituitary induction and endocrine cell differentiation. Here we propose to continue our use of the zebrafish as a model system to investigate the molecular and cellular mechanisms of Hh regulated cell differentiation in the vertebrate pituitary gland. We will first test whether Hh acts as a morphogen or mitogen in pituitary development and determine which Gli transcription factors mediate the pituitary Hh response. Using newly developed techniques to temporally and cell-autonomously disrupt Hh signaling, we will then test the direct requirement for Hh signaling in pituitary precursor cells and endocrine cell lineages and determine when direct Hh signaling is needed for these cell differentiation events. Finally, we will determine the molecular basis of the zebrafish umleitung (uml) mutation as part of a genetic investigation of Hh involvement in endocrine cell lineage determination. This work will provide fundamental knowledge about the role of Hh signaling in guiding cell specification in the vertebrate pituitary. Our research plan takes advantage of zebrafish to combine genetic, cellular, and molecular analyses at a level not possible in other vertebrates. Our new genetic tools will be useful to researchers investigating Hh in any embryonic tissue. The characterization of a potentially novel regulator of Hh signaling (the uml locus) is also likely to provide new insights into the regulation of Hh signaling throughout the developing embryo. Because the Hh signaling pathway has been highly conserved through evolution, this work will apply directly to our understanding of Hh signaling in higher vertebrates and will impact on our ability to direct stem cell differentiation for therapeutic purposes. Ultimately, this zebrafish research promises to contribute to our understanding of human birth defects affecting the pituitary and may shed light on tumorigenesis caused by mis-regulation of Hh signaling postnatally.
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Molecular Control of Pituitary Development and Tumorigenesis
Hh signaling in the zebrafish forebrain and pituitary
Hh signaling in the zebrafish forebrain and pituitary
SIGNALING CELL SPECIFICATION FOREBRAIN
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