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Smurf Ubiquitin Ligases in Xenopus Development

Smurf Ubiquitin Ligases in Xenopus Development
爪蟾发育中的 Smurf 泛素连接
批准号:
6781813
负责人:
GERALD H THOMSEN
金额:
$33.86万
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-08-03 至 2006-07-31

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中文摘要
翻译
tgfβ超家族调节细胞生长和分化。在爪蟾发育过程中,Nodal、Vg1和激活素相关信号诱导内胚层和中胚层形成,BMP信号对这些组织形成模式并调节外胚层细胞的命运。tgf β /激活素和BMP通路分别通过smad2和3或Smads1、5和8转导信号。关于tgf - β信号的下调知之甚少。我们已经发现了两种E3泛素连接酶Smurf1和Smurf2,它们分别抑制BMP和tgf β /激活途径(Zhu et al., 1999, Kavsak et al., 2000)。蓝精灵的目标smad和受体泛素化和蛋白酶体降解。虽然Smurf1激活胚胎细胞命运,但Smurf2在胚胎中的作用尚不清楚。我们假设蓝精灵通过区域特异性拮抗tgf - β信号成分调节胚胎发生中的组织诱导和模式形成。我们将研究Smurf1和Smurf2在胚胎发生过程中的作用,并研究Smurf调控发育所需的生化机制。对Smurf功能的深入了解将提供有关tgf - β信号和早期发育的重要信息,并将解决由tgf - β信号或泛素连接酶功能调节缺陷导致的出生缺陷、组织变性和癌症等病理问题。目的1。蓝精灵在爪蟾胚胎发育中起作用吗?我们将建立Smurf蛋白在胚胎发生过程中的空间分布,并确定干扰Smurf蛋白水平或活性对发育的影响。目标2。蓝精灵和tgf - β信号是如何相互调节的?为了了解蓝精灵在胚胎中调节的信号通路,我们将使用生物学(表型)和生化(相互作用,泛素化)分析来测试蓝精灵对BMP和激活素信号通路成分的影响。我们将确定蓝精灵在发育过程中是否受到tgf β或其他感应信号的调节。目标3。新的蓝精灵相互作用蛋白的鉴定和功能。为了全面了解Smurf底物并找到潜在的Smurf调节因子,我们将筛选和表征Smurf相互作用蛋白。我们已经分离出89个Smurf1相互作用的克隆,包括Smad1,一个已知的Smurf1靶点。
英文摘要
The TGFbeta superfamily regulates cell growth and differentiation. During Xenopus development, Nodal, Vg1 and activin-related signals induce endoderm and mesoderm, and BMP signals pattern these tissues and regulate ectodermal cell fate. The TGFbeta/activin and BMP pathways respectively transduce signals via Smads 2 and 3, or Smads1, 5 and 8. Little is known about TGFbeta signal downregulation. We have discovered two E3 ubiquitin ligases, Smurf1 and Smurf2, that inhibit BMP and TGFbeta/activin pathways, respectively (Zhu et al., 1999, Kavsak et al., 2000). Smurfs target Smads and receptors for ubiquitination and proteasomal degradation. While Smurf1 dorsalizes embryonic cell fates, the action of Smurf2 in embryos is unknown. We hypothesize that the Smurfs regulate tissue induction and pattern formation in embryogenesis by region-specific antagonism of TGFbeta signaling components. We will examine the role of Smurf1 and Smurf2 during embryogenesis and investigate the biochemical mechanisms necessary for Smurf regulation of development. Insight into Smurf functions will yield vital information about TGFbeta signaling and early development and will address pathologies such as birth defects, tissue degeneration and cancer, that result from defective regulation of TGFbeta signals or ubiquitin ligase functioning. Aim 1. Do the Smurfs function in Xenopus embryonic development? We will establish the spatial distribution of Smurf proteins during embryogenesis, and determine the developmental effects of perturbing Smurf protein levels or activity. Aim 2. How do Smurfs and TGFbeta signals regulate each other? To understand which signaling pathways Smurfs regulate in embryos, we will test the effects of Smurfs on components of BMP and activin signaling pathways, using biological (phenotype) and biochemical (interaction, ubiquitination) assays. We will determine whether Smurfs are regulated by TGFbeta, or other inductive signals, during development. Aim 3. Identification and function of new Smurf interacting proteins. To obtain a comprehensive view of Smurf substrates and to find potential Smurf regulators, we will screen for and characterize Smurf-interacting proteins. We have already isolated 89 Smurf1-interacting clones, including Smad1, a known Smurf1 target.
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