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The prerequisites and mechanism in the binding and induced folding of pKID to KIX

The prerequisites and mechanism in the binding and induced folding of pKID to KIX
pKID与KIX结合并诱导折叠的前提和机制
批准号:
8003949
负责人:
Jamie Paule Ellis
金额:
$4.76万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-08-01 至 2013-07-31

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中文摘要
翻译
描述(由申请人提供):蛋白质中普遍存在但知之甚少的内在紊乱现象对分子生物学中的基本问题和新型小分子药物的设计具有广泛的影响。内在无序蛋白质在生理条件下固有地缺乏二级和/或三级结构;它们以高特异性和通常非凡的多功能性将折叠与其相互作用伴侣结合。在转录调控、蛋白质相互作用网络和许多疾病的核心发现了紊乱的特征。迫切需要新的方法来靶向和操纵这些蛋白质-蛋白质相互作用。详细了解这些机制,从选择或遭遇到中间体到结合形式,将导致有效设计小分子以控制这些相互作用的重大进展。此外,解决这些小的,高度特异性的蛋白质的功能的原则将进一步从头设计肽和模拟物,一个不断增长的制药目标。这项工作提出了一个结合NMR光谱,分子动力学和分子生物学,以获得独特的结构见解耦合折叠和绑定。具体地说,这项工作将利用磷酸化激酶诱导的转录激活结构域(pKID)的CREB与CBP的KIX结构域的复合物作为模型系统,以产生详细的意见遇到复杂的和中间(S)沿着诱导折叠途径。具体而言,该提议旨在(1)将二级结构的演变定义为与诱导折叠途径中的分子间相互作用不同,(2)将飞射效应与对接中的静电转向分离,以及(3)生成结合中间体的详细模型。对于目标1,该工作将利用弛豫色散NMR光谱和羰基和α碳对二级结构的灵敏度来量化中间体中的残基特定螺旋含量。对于目标2,将系统地突变不同长度的pKID构建体,并通过等温量热法测量,以分离电荷和构建体长度对结合热力学的影响。对于目标3,工作将利用NMR衍生的约束来限制结合途径中中间体的分子动力学模拟中的扭转角和相对位置。这些研究的结合将显着推进我们的基本机制和指导原则,在协会的内在无序蛋白质的理解。独特的结构见解将大大提高我们设计小分子和肽的能力,以结合和破坏蛋白质-蛋白质相互作用。) 公共卫生相关性:缺乏有序结构的蛋白质是健康生物功能和许多疾病的核心。无序的蛋白质通常仅在结合相互作用伴侣时形成有序结构,从而形成难以用传统药物设计方法靶向的独特表面。拟议的工作将大大提高我们对无序蛋白质机制的理解,以及我们有效设计新药物以靶向和破坏蛋白质-蛋白质相互作用的能力。)
英文摘要
DESCRIPTION (provided by applicant): The ubiquitous, yet poorly understood, phenomenon of intrinsic disorder in proteins has wide-ranging implications for fundamental questions in molecular biology and the design of novel small molecule pharmaceuticals. Intrinsically disordered proteins inherently lack secondary and/or tertiary structure under physiological conditions; they couple folding with binding to their interaction partners with high specificity and, often, extraordinary versatility. The signatures of disorder are found at the heart of transcriptional regulation, protein interaction networks, and a number of diseases. New methods to target and manipulate these protein-protein interactions are urgently required. Understanding the mechanisms in detail, from selection or encounter through intermediates to the bound form, will lead to significant advances in the efficient design of small molecules to control these interactions. Additionally, resolving the principles governing the function of these small, highly specific proteins will further de novo design of peptides and mimics, a growing pharmaceutical aim. This work proposes a combination of NMR spectroscopy, molecular dynamics and molecular biology to gain unique structural insights into coupled folding and binding. Specifically, this work will utilize the complex of the phosphorylated kinase inducible transactivation domain (pKID) of CREB with the KIX domain of CBP as a model system to generate detailed views of the encounter complex and intermediate(s) along an induced folding pathway. Specifically, this proposal aims to (1) define the evolution of secondary structure as distinct from intermolecular interactions in the induced folding pathway, (2) separate the effect of fly-casting from electrostatic steering in docking, and (3) generate detailed models of the binding intermediate(s). For aim 1, the work will utilize relaxation dispersion NMR spectroscopy and the sensitivity of the carbonyl and alpha carbons to secondary structure to quantify the residue specific helical content in the intermediate(s). For aim 2, pKID constructs of varied lengths will be systematically mutated and measured by isothermal calorimetry to separate the effects of charge and construct length on binding thermodynamics. For aim 3, the work will utilize NMR-derived restraints to limit the torsion angles and relative positions in molecular dynamic simulations of the intermediate(s) in the binding pathway. The combination of these studies will significantly advance our understanding of the fundamental mechanisms and guiding principles in the association of intrinsically disordered proteins. The unique structural insights will greatly increase our ability to design small molecules and peptides to bind and disrupt protein-protein interactions. ) PUBLIC HEALTH RELEVANCE: Proteins that inherently lack ordered structure are central to both healthy biological functions and a number of diseases. Disordered proteins often form ordered structure only upon binding an interaction partner forming unique surfaces difficult to target with traditional pharmaceutical design methods. The proposed work will greatly advance our understanding of the mechanisms of disordered proteins as well as our ability to effectively design new pharmaceuticals to target and disrupt protein-protein interactions. )
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The prerequisites and mechanism in the binding and induced folding of pKID to KIX
  • 批准号:
    8311686
  • 项目类别:
  • 资助金额:
    $5.39万
  • 财政年份:
    2010
  • 负责人:
    Jamie Paule Ellis
  • 依托单位:
The prerequisites and mechanism in the binding and induced folding of pKID to KIX
  • 批准号:
    8118937
  • 项目类别:
  • 资助金额:
    $5.13万
  • 财政年份:
    2010
  • 负责人:
    Jamie Paule Ellis
  • 依托单位:
海外基金