Structural Biology of Purine and Pyrimidine Biosynthesis and Metabolism
Structural Biology of Purine and Pyrimidine Biosynthesis and Metabolism
批准号:
7903405
负责人:
STEVEN E EALICK
金额:
$33.04万
依托单位:
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:
2005-02-01 至 2013-05-31
关键词:
AnabolismBacteriaBacterial InfectionsBacterial ToxinsBioinformaticsBurkholderiaCatabolismCellsCerealsCollaborationsComplexCyclizationDNADeaminaseDegradation PathwayDrug DesignEnzymatic BiochemistryEnzymesEscherichia coliFlavinsFlavoproteinsFolateGTP Cyclohydrolase IIGenesGenomeGoalsGuanosine TriphosphateHypoxanthinesIndividualIronKlebsiella pneumonia bacteriumLifeMalariaMalignant NeoplasmsMammalsMetabolismMixed Function OxygenasesMolecular ModelsOperonOrganismOxidoreductaseParasitesParasitic infectionPathway interactionsPneumoniaProcessProteinsPurinesPyrimidinePyrimidine NucleotidesPyrimidinesRNAReactionResearchRiboflavinRiceRoentgen RaysRutaSeedsSite-Directed MutagenesisStructureSystemUrate OxidaseUric AcidVariantWorkX-Ray CrystallographyXanthine OxidaseYeastsanalogantimicrobialbasechemotherapyenzyme activityenzyme structurefavinflyfungushuman diseasemolecular modelingnoveloverexpressionoxidationprotein complexprotein structurepublic health relevancepurinestructural biology
中文摘要
描述(由申请人提供):本申请的总体目标是研究参与嘌呤和嘧啶生物合成、嘌呤和嘧啶催化剂以及细胞代谢物生物合成中嘌呤利用的酶的结构和功能。参与嘌呤和嘧啶生物合成和代谢的酶在包括癌症、细菌感染和寄生虫感染在内的广泛人类疾病中充当药物设计的靶标。虽然大多数嘌呤和嘧啶生物合成酶的结构已经被确定,但只有少数结构是已知的多功能酶,发生在高等生物体。多功能酶可能反过来有助于理解嘌呤体,一个大的多蛋白质生物合成复合物,可能是不适合晶体学分析。拟议的研究包括脊椎动物三功能酶PurD-PurM-PurN,它催化嘌呤生物合成的第2、3和5步,以及PurD-PurM和PurD-PurM-PurM 4-PurN,它们是在其他高等生物中发现的变体。我们还建议研究疟原虫的OMPDC-OPRT,它催化嘧啶生物合成的第6步和第5步。嘌呤和嘧啶降解的分解代谢途径以前已经描述过,并且关键酶的结构是可用的;然而,最近在肺炎克雷伯菌中发现了嘧啶生物合成的新途径,并且在大肠杆菌中发现了嘧啶降解的新途径。这些新途径的发现是令人惊讶的,大多数基因产物在生物化学和结构上都是未知的。生物信息学表明黄素酶催化嘧啶分解代谢途径中的开环-黄素酶学中的新催化基序。嘌呤分解代谢操纵子编码两种新的酶活性-一种推定的黄素依赖性尿酸酶和一种铁依赖性黄嘌呤氧化酶。最后,可用的基因组分析表明,许多操纵子与未表征的环水解酶催化的开环反应。这些反应通常与嘌呤衍生的代谢物如叶酸、核黄素和多菌蝶呤有关,表明嘌呤在其他代谢物的生物合成中的广泛利用。我们将开始研究嘌呤的利用,通过检测毒黄素的生物合成,一个很好的系统,了解N-N键形成的酶学机制。这项研究所需的大多数酶已经被克隆和过表达。我们将使用X射线晶体学确定这些酶的结构,并与Tadhg Begley教授合作研究酶学机理。公共卫生相关性:嘌呤和嘧啶核苷酸是DNA和RNA的基石。所有形式的生命都依赖于这些分子,它们在细胞中的水平受到生物合成、输入、降解和代谢的调节。了解这些过程为抗癌和抗菌化疗提供了可能的靶点。
英文摘要
DESCRIPTION (provided by applicant): The overall objective of this application is to study the structures and functions of enzymes involved in purine and pyrimidine biosynthesis, purine and pyrimidine catabolism, and purine utilization in the biosynthesis of cellular metabolites. Enzymes involved in purine and pyrimidine biosynthesis and metabolism serve as targets for drug design in wide arrange of human diseases including cancer, bacterial infections and parasitic infections. While most of the structures for individual purine and pyrimidine biosynthetic enzymes have been worked out, only a few structures are known for multifunctional enzymes that occur in higher organisms. The multifunctional enzymes may in turn aid in understanding the purinosome, a large multiprotein biosynthetic complex that probably is not amenable to crystallographic analysis. Proposed studies include the vertebrate trifunctional enzyme PurD-PurM-PurN, which catalyzes steps 2, 3 and 5 of purine biosynthesis, and PurD-PurM and PurD-PurM-PurM4-PurN, which are variants found in other higher organisms. We also propose to study OMPDC-OPRT from malaria parasite, which catalyzes steps 6 and 5 of pyrimidine biosynthesis. Catabolic pathways for the degradation of purines and pyrimidines have been previously described and structures are available for the key enzymes; however, recently a new pathway for pyrimidine biosynthesis was discovered in Klebisella pneumoniae and a new pathway was discovered for pyrimidine degradation in Escherichia coli. The discovery of these new pathways was surprising and most of the gene products are both biochemically and structurally uncharacterized. Bioinformatics suggest that a flavoenzyme catalyzes the ring opening in the pyrimidine catabolic pathway - a new catalytic motif in flavoenzymology. The purine catabolic operon encodes two novel enzymatic activities - a putative flavin- dependent uricase and an iron-dependent xanthine oxidase. Finally, analysis of the available genomes indicates many operons associated with uncharacterized cyclohydrolase-catalyzed ring-opening reactions. These reactions are usually associated with purine-derived metabolites such as folate, riboflavin and molypdopterin, suggesting a widespread utilization of purines in the biosynthesis of additional metabolites. We will begin to study purine utilization by examining the biosynthesis of toxoflavin, a good system for understanding the mechanistic enzymology of N-N bond formation. Most of the enzymes required for this research have been cloned and overexpressed. We will determine the structures of these enzymes using X-ray crystallography and in collaboration with Prof. Tadhg Begley study the mechanistic enzymology. PUBLIC HEALTH RELEVANCE: Purine and pyrimidine nucleotides are the building blocks for DNA and RNA. All forms of life depend on these molecules and their levels in the cell are regulated by biosynthesis, import, degradation and metabolism. Understanding these processes offers possible targets for both anticancer and antimicrobial chemotherapies.
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会议论文
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