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Enzymology of RNA Processing

Enzymology of RNA Processing
RNA 加工的酶学
批准号:
8600688
负责人:
CAROL A FIERKE
金额:
$30.02万
依托单位国家:
美国
项目类别:
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-01-01 至 2015-12-31

项目摘要

项目成果

CAROL A FIERKE的其他基金

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中文摘要
翻译
描述(由申请人提供):核糖核酸酶P(RNase P)催化前体tRNA(pre-tRNA)的5'端成熟,形成tRNA,这是蛋白质合成的重要组分。RNase P存在于生命的所有领域,但这种不可或缺的酶的组成从细菌中的RNA-蛋白质异二聚体到人类线粒体RNase P(mtRNase P)中的三种蛋白质的复合物。这些酶提供了一个理想的系统,用于定义区分基于RNA和蛋白质的催化的催化特征。此外,不同的亚基组合物突出了细菌RNase P作为新型抗生素靶标的潜力。在线粒体中,(mt)tRNA和mtRNase P亚基的突变与许多疾病有关,包括神经变性、X连锁智力低下、心肌梗死、冠状动脉疾病以及临床上表现为MELAS(线粒体肌病、脑病、乳酸性酸中毒和中风样症状)、进行性眼外肌麻痹和/或糖尿病的线粒体功能障碍。对mtRNase P的体内和体外功能的分析将提供对线粒体tRNA加工途径及其在线粒体生物发生和功能障碍中的作用的深入了解。因此,RNase P结构和功能的研究有可能对各种健康问题产生广泛的影响,从改善抗菌治疗到表征与多种线粒体疾病发病机制相关的生物学途径。 这项建议包括两个主要目标。首先,我们建议发展生物物理方法,包括单分子荧光光谱和核磁共振光谱(与Al-Hashimi教授和Walter教授合作)研究大RNA分子的两个标志性特征,如RNase P RNA亚基:在扩散、内球和外球接触之间交换的动态RNA-金属相互作用;和构象可塑性是RNA功能的核心,包括底物识别和催化。在将这些方法应用于细菌RNase P时,我们的目标是:(1)探索RNase P在整个催化循环中发生的结构和动力学变化;(2)描绘RNase P中拟议的金属离子结合位点内的结构和相互作用。特别是,我们探索MRPP 3的功能,使用诱变,金属取代和动力学分析,以阐明一个新的家庭成员预测具有金属依赖性核酸酶活性的机制特征。最后,我们将研究前tRNA识别的决定因素和人类线粒体tRNA突变的病理生理机制中mtRNase P加工缺陷的作用。这些研究将大大提高我们对这两类不同的RNase P酶及其同系物的结构和功能的理解,开发用于研究类似酶的方法,并提供对生物催化性质的基本见解。
英文摘要
DESCRIPTION (provided by applicant): Ribonuclease P (RNase P) catalyzes 5' end maturation of precursor tRNA (pre-tRNA) to form tRNA, an essential component of protein synthesis. RNase P is found in all domains of life, but the composition of this indispensable enzyme varies from a RNA-protein heterodimer in bacteria to a complex of three proteins in human mitochondrial RNase P (mtRNase P). These enzymes provide an ideal system for defining catalytic features that distinguish RNA- and protein-based catalysis. Furthermore, the distinct subunit compositions highlight the potential of bacterial RNase P as a novel antibiotic target. In mitochondria, mutations in (mt)tRNA and mtRNase P subunits have been linked to a number of diseases, including neurodegeneration, X-linked mental retardation, myocardial infarction, coronary artery disease as well as mitochondria dysfunction which manifests clinically as MELAS (mitochondrial myopathy, encephalopathy, lactic acidosis and stroke-like symptoms), progressive external opthalmoplegia and/or diabetes. Analysis of the in vivo and in vitro function of mtRNase P will provide insight into mitochondrial tRNA processing pathways and their role in mitochondria biogenesis and dysfunction. Thus, investigation of RNase P structure and function has the potential for wide-ranging impact on a variety of health issues, from improving antibacterial therapeutics to characterization of the biological pathways linked to the pathogenesis of multiple mitochondrial diseases. This proposal consists of two primary objectives. First, we propose to develop biophysical methods, including single molecule fluorescence spectroscopy and NMR spectroscopy (in collaboration with Professors Al-Hashimi and Walter) to investigate two hallmark features of large RNA molecules, such as the RNase P RNA subunit: dynamic RNA-metal interactions that exchange between diffusive, inner-sphere, and outer- sphere contacts; and conformational plasticity that is central to RNA function, including substrate recognition and catalysis. In applying these methods to bacterial RNase P we aim to: (1) explore the changes in structure and dynamics that occur in RNase P throughout the catalytic cycle; and (2) delineate the structure and interactions within proposed metal ion binding sites in RNase P. Second, we will identify the strategies employed by the newly discovered protein-based mtRNase P to achieve catalysis and substrate recognition. In particular, we explore the function of MRPP3 using mutagenesis, metal substitution and kinetic analysis to elucidate mechanistic features of this member of a novel family predicted to have metal-dependent nuclease activity. Finally, we will examine determinants of pre-tRNA recognition and the role of defects in mtRNase P processing in the pathophysiological mechanisms of human mitochondrial tRNA mutations. These studies will significantly enhance our understanding of the structure and function of these two distinct classes of RNase P enzymes and their homologues, develop methods useful for studying similar enzymes, and provide fundamental insights into the nature of biological catalysis.
期刊论文(21)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1093/nar/gku850
发表时间: 2014-11-10
期刊: Nucleic acids research
影响因子: 14.9
作者: [Liu X, Chen Y, Fierke CA]
通讯作者: Fierke CA
The evolution of RNase P.
RNase P 的进化。
DOI: 10.1261/rna.050732.115
发表时间: 2015
期刊: RNA (New York, N.Y.)
影响因子: --
作者: [Engelke,DavidR, Fierke,CarolA]
通讯作者: Fierke,CarolA
Dissecting allosteric effects of activator-coactivator complexes using a covalent small molecule ligand.
使用共价小分子配体剖析激活剂-共激活剂复合物的变构效应。
DOI: 10.1073/pnas.1406033111
发表时间: 2014
期刊: Proceedings of the National Academy of Sciences of the United States of America
影响因子: 11.1
作者: [Wang,Ningkun, Lodge,JeanM, Fierke,CarolA, Mapp,AnnaK]
通讯作者: Mapp,AnnaK
DOI: 10.3390/biom6020027
发表时间: 2016-05-13
期刊: Biomolecules
影响因子: 5.5
作者: [Klemm BP, Wu N, Chen Y, Liu X, Kaitany KJ, Howard MJ, Fierke CA]
通讯作者: Fierke CA
共 11 条
    Disruption of transition metal homeostasis by Cd: Implications for aging
    Disruption of transition metal homeostasis by Cd: Implications for aging
    ENZYMOLOGY OF RNA PROCESSING ENZYMES
    ENZYMOLOGY OF RNA PROCESSING ENZYMES
    • 批准号:
      6044649
    • 项目类别:
    • 资助金额:
      $5.78万
    • 财政年份:
      1997
    • 负责人:
      CAROL A FIERKE
    • 依托单位:
    海外基金