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Involvement of Proteins in Splicing Group I and Group II Introns

Involvement of Proteins in Splicing Group I and Group II Introns
蛋白质参与 I 组和 II 组内含子剪接
批准号:
7304595
负责人:
ALAN M. LAMBOWITZ
金额:
$51.48万
依托单位国家:
美国
项目类别:
财政年份:
1986
资助国家:
美国
项目状态:
已结题
起止时间:
1986-09-01 至 2011-05-31

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中文摘要
翻译
描述(由申请人提供):拟议的研究是对蛋白质参与剪接I和II内含子的持续研究。这些内含子使用RNA催化剪接机制,但需要蛋白质帮助将内含子RNA折叠成具有催化活性的结构。在此之前,我们发现粗神经孢子虫线粒体剪接I组内室所需的关键蛋白是线粒体(mt)酪氨酸- trna合成酶(TyrRS; CYT-18蛋白)。当前资助期的结构研究表明,I组内含子结合到tRNATyr的另一侧的TyrRS的核苷酸结合褶上,并使用由三个独立插入形成的新的rna结合表面,以及相对于非剪接的细菌TyrRS的其他结构适应。此外,这些结构适应似乎是真菌家族的mt TyrRSs的独特特征,包括重要的人类和植物病原体。在接下来的研究中,我们将继续研究CYT-18的作用机制,它如何进化到在RNA剪接中起作用,以及剪接活性真菌mt TyrRSs是否可能成为抗真菌药物的靶点。对于II族内含子,我们开发了一种基于可移动乳酸乳球菌LI的实验系统。LtrB内含子,编码逆转录酶(RT), RT在内含子迁移和作为内含子特异性剪接因子(“成熟酶”)中起作用。在目前的资助期内,我们描述了蛋白质和内含子RNA的相互作用区域,并结合结构模型,提出了关于RT/成熟酶如何稳定活性RNA结构并进化到剪接功能的特定假设。在拟议的研究中,我们将使用生化、遗传和结构方法来测试这些假设,并获得第一个全面的图像,了解II组在RNA剪接中的功能。除了稳定活性RNA结构的蛋白质外,我们发现mt组I和II内含子的有效剪接需要DEAD-box蛋白,并获得证据表明它们作为RNA伴侣破坏RNA折叠中稳定,非活性结构的“动力学陷阱”。这些蛋白,即N. crassa中的CYT-19和Mss116p酿酒酵母中的CYT-19,也在其他RNA加工反应和mt翻译中起作用。我们的研究结果表明,CYT-19和Mss116p可能是一类DExH/D-box蛋白的创始成员,这些蛋白在结构多样的RNA和RNA/蛋白复合物上广泛地作为RNA伴侣,它们提出了DExH/D-box蛋白存在类似于一般RNA伴侣的可能性,并在所有生物的RNA代谢中发挥重要作用。在我们提出的研究中,我们将验证这些假设,并使用易溶I组和II组内含子剪接实验进一步研究和定义作为一般RNA伴侣的DExH/D-box蛋白的结构和功能特征。最后,我们将继续进行酵母遗传筛选,以鉴定新的I和II组内含子剪接因子,特别是II组内含子a的剪接因子!通过将这些剪接因子与DEAD-box RNA伴侣结合,我们希望重建这些重要的模型II组内含子的完整剪接装置。本研究旨在提供有关蛋白质如何介导RNA折叠和RNA催化反应,内含子的进化和剪接机制,以及氨基酰基trna合成酶,逆转录酶和DExH/D-box蛋白的功能和进化的新信息,这些都与人类疾病有关。
英文摘要
DESCRIPTION (provided by applicant): The proposed research is a continued study of the involvement of proteins in splicing group I and II introns. These introns use RNA-catalyzed splicing mechanisms, but require proteins to help fold the intron RNA into the catalyti- cally active structure. Previously, we found that a key protein required for splicing group I introris in Neurospora crassa mitochondria is the mitochondrial (mt) tyrosyl-tRNA synthetase (TyrRS; CYT-18 protein). Structural studies during the current grant period showed that group I introns bind to the TyrRS's nucleotide-binding fold on the side opposite that which binds tRNATyr and use a new RNA-binding surface formed by three separate insertions and other structural adaptations relative to non-splicing bacterial TyrRSs. Moreover, these structural adaptations appear uniquely characteristic of the mt TyrRSs of a family of fungi that includes important human and plant pathogens. In the proposed research, we would continue to study the mechanism of action of CYT-18, how it evolved to function in RNA splicing, and whether splicing-active fungal mt TyrRSs might be a target for antifungal drugs. For group II introns, we developed an experimental system based on the mobile Lactococcus lactis LI.LtrB intron, which en- codes a reverse transcriptase (RT) that functions both in intron mobility and as an intron-specific splicing factor ("maturase"). During the current grant period, we delineated interacting regions of the protein and intron RNA, which in conjunction with structural models, suggest specific hypotheses about how RT/maturases stabilize the active RNA structure and evolved to function in splicing. In the proposed research, we would use biochemical, genetic, and structural approaches to test these hypotheses and obtain the first comprehensive picture of how a group II in- tron RT functions in RNA splicing. In addition to proteins that stabilize the active RNA structure, we found that the efficient splicing of mt group I and II introns requires DEAD-box proteins and obtained evidence that they function as RNA chaperones to disrupt stable, inactive structures that are "kinetic traps" in RNA folding. These proteins, CYT-19 in N. crassa and Mss116p Saccharomyces cerevisiae, also function in other RNA processing reactions and in mt translation. Our findings suggest that CYT-19 and Mss116p may be the founding members of a class of DExH/D- box proteins that act broadly as RNA chaperones on structurally diverse RNAs and RNA/protein complexes, and they raise the possibility that DExH/D-box proteins that function similarly as general RNA chaperones exist and play an important role in RNA metabolism in all organisms. In the proposed research, we would test these hypotheses and use the facile group I and group II intron splicing assays to further study and define the structural and functional characteristics of DExH/D-box proteins that act as general RNA chaperones. Finally, we will continue a yeast genetic screen to identify novel group I and II intron splicing factors, particularly those for the group II introns a!5v and bll By combining these splicing factors with DEAD-box RNA chaperones, we hope to reconstitute the complete splicing apparatus for these important model group II introns. This research is intended to provide novel information about how proteins mediate RNA folding and RNA-catalyzed reactions, the evolution of introns and splicing mechanisms, and the function and evolution of aminoacyl-tRNA synthetases, reverse transcriptases, and DExH/D-box proteins, all relevant to human diseases.
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Group II Intron and Related Reverse Transcriptases
  • 批准号:
    10401772
  • 项目类别:
  • 资助金额:
    $86.83万
  • 财政年份:
    2020
  • 负责人:
    ALAN M. LAMBOWITZ
  • 依托单位:
Group II Intron and Related Reverse Transcriptases
  • 批准号:
    10605233
  • 项目类别:
  • 资助金额:
    $86.83万
  • 财政年份:
    2020
  • 负责人:
    ALAN M. LAMBOWITZ
  • 依托单位:
Group II Intron and Related Reverse Transcriptases
  • 批准号:
    10133092
  • 项目类别:
  • 资助金额:
    $86.83万
  • 财政年份:
    2020
  • 负责人:
    ALAN M. LAMBOWITZ
  • 依托单位:
Involvement of Proteins in Splicing Group I and Group II Introns
  • 批准号:
    7887830
  • 项目类别:
  • 资助金额:
    $9.44万
  • 财政年份:
    2009
  • 负责人:
    ALAN M. LAMBOWITZ
  • 依托单位:
海外基金