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TPR Proteins in Steroid Receptor Signaling & Physiology

TPR Proteins in Steroid Receptor Signaling & Physiology
类固醇受体信号转导中的 TPR 蛋白
批准号:
7239515
负责人:
EDWIN RAMON SANCHEZ
金额:
$24.07万
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-08-01 至 2010-06-30

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中文摘要
翻译
描述(由申请人提供):类固醇受体(SR)是一种控制组织特异性基因表达和治疗重要生理学的类固醇激活转录因子。在它们的非活性状态下,已知这些受体与分子伴侣Hsp 90形成复合物,分子伴侣Hsp 90又可以被四种三肽重复(TPR)蛋白质之一结合:FKBP 52、FKBP 51、Cyp 40和PP 5。这一事实意味着SR存在于由TPR蛋白质含量定义的不同异聚体复合物中。如果这些不同的复合物存在,它们必须具有不同的功能。然而,我们对这些微分函数几乎一无所知。我们现在有新的证据表明,TPR蛋白可以调节细胞内SR信号的不同阶段,以及对类固醇的组织特异性反应。我们的这些结论是基于我们实验室的关键观察。我们发现了糖皮质激素受体(GR)激素激活的新的第一步,涉及GR复合物内FKBP 51与FKBP 52的协调交换。这种TPR交换是告诉GR复合物募集转运蛋白动力蛋白并移动到细胞核的信号。我们还确定了FKBP 52、PP 5和FKBP 51对GR的糖结合功能具有分级效应,Cyp 40可以调节GR蛋白水平并使其成为核。最后但并非最不重要的是,我们已经产生了表现出雌性不育的FKBP 52敲除小鼠。进一步的表征揭示了不孕症是由于PR-A孕酮受体亚型在子宫中的不活动导致的,从而导致着床失败。有趣的是,子宫组织中的PR-B亚型和雌激素受体均不受FKBP 52损失的影响。因此,现在清楚的是,不同的TPR将对生理学具有受体特异性和组织特异性影响。考虑到这一点,本提案的目标是进一步确定TPR蛋白在无细胞和组织培养条件下GR和PR功能中的作用,然后使用FKBP 52和FKBP 51敲除动物测试选择生理反应的机制。更好地了解TPR蛋白对GR和PR的差异作用,现在可以为针对生育力和其他生理学的新治疗策略奠定基础。
英文摘要
DESCRIPTION (provided by applicant): Steroid receptors (SRs) are hormone-activated transcription factors controlling tissues-specific gene expression and therapeutically important physiologies. In their inactive states, these receptors are known to form complexes with the chaperone Hsp90 which in turn can be bound by one of four tetratricopeptide repeat (TPR) proteins: FKBP52, FKBP51, Cyp40 and PP5. This fact means that SRs exists in distinct heteromeric complexes defined by TPR protein content. If these distinct complexes exist, they must have distinct functions. Yet we know almost nothing of these differential functions. We now have new evidence to suggest that TPR proteins serve to regulate distinct stages of SR signaling within a cell, as well as tissue specific responses to steroids. We base these conclusions on key observations from our laboratories. We have uncovered a new first step in hormonal activation of the glucocorticoid receptor (GR) that involves a coordinated exchange of FKBP51 for FKBP52 within GR complexes. This TPR exchange is the signal that tells GR complexes to recruit the transport protein dynein and move to the nucleus. We have also determined that FKBP52, PP5 and FKBP51 have hierarchical effects on the hormone-binding function of the GR, and that Cyp40 can regulate both GR protein levels and cause it to become nuclear. Last but not least, we have generated FKBP52 knockout mice that manifest female sterility. Further characterization has revealed the infertility to result from inactivity in the uterus by the PR-A progesterone receptor isoform, leading to a failure of implantation. Interestingly, both the PR-B isoform and the estrogen receptor in uterus tissue were unaffected by loss of FKBP52. Thus, it is now clear that distinct TPRs will have both receptor- and tissue-specific impacts on physiology. With this in mind, the goals of this proposal are to further define the roles of TPR proteins in GR and PR functions under cell-free and tissue culture conditions, followed by testing of mechanisms in select physiological responses using FKBP52 and FKBP51 knockout animals. A better understanding of differential TPR protein effects on both GR and PR could now form the basis for new therapeutic strategies targeting fertility and other physiologies.
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Nuclear Receptor Chaperones in Signaling and Metabolism
TPR Proteins in Steroid Receptor Signaling & Physiology
TPR Proteins in Steroid Receptor Signaling & Physiology
TPR Proteins in Steroid Receptor Signaling & Physiology
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