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中文摘要
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描述(申请人提供):正常蛋白质的错误折叠已经成为哺乳动物疾病以及低等真核生物中某些表型的表观遗传传递的重要机制。这些现象中涉及的蛋白质,统称为淀粉样变性,有一个关键的共同特征:自我复制异常折叠的能力。在体内,构象自我复制是一个多步骤的过程,由三个高度调控的步骤组成:转换、维持和繁殖。虽然这一过程的某些方面可以在体外用简化的系统建模,但要充分理解自繁殖构象的生理后果需要理解体内的这一途径,在体内,基本的细胞过程可以与蛋白质动力学相交并调节蛋白质动力学。一种特别耐人寻味但在很大程度上尚未被描述的相互作用是淀粉样蛋白形成蛋白和细胞细胞骨架之间的关系,通过越来越多的一系列研究,这两者在许多系统中反复联系在一起。这里提出的工作的总体目标是了解这两个系统之间的功能相互作用。为此,我的工作将集中在低等真核生物中的Pron繁殖,这为研究蛋白质在体内自我繁殖的调节提供了一个实验上容易处理的模型。酿酒酵母的Sup35蛋白是一种正常功能受Pron循环可逆调节的蛋白质,将用于研究肌动蛋白动力学如何影响错误折叠的蛋白质自我复制。与许多哺乳动物淀粉样蛋白被证明促进肌动蛋白捆绑的情况一样,以前对Sup35蛋白的研究已经发现与肌动蛋白细胞骨架相关的蛋白存在多种相互作用。通过生化、细胞生物学和遗传学方法的结合,我将剖析肌动蛋白细胞骨架在Sup35蛋白([PS/“*])表型的多步骤、自繁殖周期中的作用。由于酵母蛋白蛋白模型已被证明直接适用于高等真核生物中的疾病,包括一系列人类疾病,这里获得的见解将在分子水平上提供肌动蛋白在哺乳动物蛋白质折叠障碍持续存在中所起作用的机制线索。
英文摘要
DESCRIPTION (provided by applicant): The misfolding of normal proteins has emerged as an important mechanism in both mammalian disease as well as the epigenetic transmission of some phenotypes in lower eukaryotes. The proteins implicated in these phenomena, collectively known as amyloidoses, share a key common trait: the capacity to self-replicate the aberrant fold. Conformational self-replication is a multistep process in vivo, consisting of three highly regulated steps: conversion, maintenance and propagation. While some aspects of this process can be modeled in a simplified system in vitro, a full understanding of the physiological consequences of self-propagating conformations requires an understanding of this pathway in vivo, where basic cellular processes can intersect with and regulate protein dynamics. One particularly intriguing but largely uncharacterized interaction is the relationship between amyloid-forming proteins and the cellular cytoskeleton, which are repeatedly linked together in many systems by a growing series of studies. The overall goal of the work proposed here is to understand the functional interplay between these two systems. Toward this end, my work will focus on prion propagation in lower eukaryotes, which provides an experimentally tractable model for studying the regulation of protein self-propagation in vivo. The Sup35 protein of S. cerevisiae, a protein whose normal function is reversibly modulated by a prion cycle, will be used to examine how actin dynamics influence misfolded protein self-replication. As is the case for a number of mammalian amyloidogenic proteins that have been shown to promote actin bundling, previous studies on the Sup35 prion have identified multiple interactions with proteins associated with the actin cytoskeleton. Through a combination of biochemical, cell biological, and genetic approaches, I will dissect the role of the actin cytoskeleton in the multistep, self-propagation cycle of the Sup35 prion ([PS/"*]) phenotype. As the yeast prion model has been shown to be directly applicable to disorders in higher eukaryotes including a range of human diseases, the insights gained here will provide mechanistic clues into the role of actin in the perpetuation of mammalian protein folding disorders on a molecular level.
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Role of the Actin Cytoskeleton in Yeast Prion Propagation
  • 批准号:
    7544348
  • 项目类别:
  • 资助金额:
    $4.96万
  • 财政年份:
    2008
  • 负责人:
    Aaron Derdowski
  • 依托单位: