Small Angle X-ray Scattering Instrument
Small Angle X-ray Scattering Instrument
批准号:
8051921
负责人:
Samuel E Butcher
金额:
$30.71万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-27 至 2012-09-26
关键词:
AreaBindingBinding ProteinsBiologicalBlood PlateletsCell physiologyCholecalciferolComplexDataEmerging TechnologiesEnzymesFibronectinsFundingGenomeGuanosine Triphosphate PhosphohydrolasesHIV-1HealthHistonesHumanIndividualIonsIronLigand BindingLinkMaintenanceMediatingMethodsMolecularMolecular ChaperonesMolecular ConformationMovementPathway interactionsPilumProteinsRNARNA FoldingRNA, Messenger, SplicingResearch Project GrantsResolutionRoentgen RaysRoleShapesSiteSolutionsStructureSulfurTertiary Protein StructureUnited States National Institutes of HealthVitamin D3 ReceptorX-Ray Crystallographyanalogbasefatty acid biosynthesisfrontiergenetic regulatory proteinimprovedinsightinstrumentmacromoleculemolecular shapenovelpathogenic bacteriareceptorsweet taste perception
中文摘要
描述(申请人提供):申请的仪器为小角X射线散射(SAXS)仪器。SAXS仪器将用于研究生物大分子及其络合物在溶液中的结构。SAXS提供有关溶液中大分子形状、折叠、展开、聚集、扩展构象、柔性连接结构域、构象变化和组装状态的低(10-20)分辨率信息。SAXS数据可以为生物分子功能提供新的见解,否则无法通过其他方法获得这些功能。例如,在许多情况下,单个蛋白质结构域是已知的,但整个蛋白质的整体组装状态以及它如何对其他分子做出反应是未知的,但可以通过SAXS准确地推断出来。SAXS的优点是它是一种基于溶液的方法,因此分子不受晶格的限制,也没有像核磁共振那样的大小限制。此外,SAXS需要的材料比核磁共振或X射线结晶学少得多。该仪器将通过提供分子形状、结构域取向和溶液中对分子功能重要的构象变化的信息,影响NIH资助的17个研究项目。NIH资助的项目在以下方面与人类健康有直接关系:甜味受体的配体结合;前信使RNA剪接;ATP的结合以诱导病原菌菌毛中的亚单位移动;脂肪酸生物合成;蛋白质介导的铁-硫簇组装;维生素D受体在医学上相关的维生素D3类似物存在下的相互作用;心脏病毒Leader蛋白和RAN GTP酶的相互作用;HIV-1移码位点RNA结构;理解RNA折叠途径作为细胞离子和渗透分子的功能;单链结合蛋白(SSB)在基因组维持中的作用;伴侣Hsp70;组蛋白修饰酶与其调节蛋白的相互作用,以及与纤维连接蛋白和血小板功能有关的基质蛋白。此外,SAXS数据可以直接用于核磁共振结构确定,以提高核磁共振结构的质量(核磁共振-SAXS),这是一项新兴技术,扩展了核磁共振的前沿,以确定更大和更准确的结构。)
公共卫生相关性:所请求的仪器将服务于NIH资助的17个项目,这些项目在以下领域与人类健康有直接关系:与甜味受体的配体结合;前信使RNA剪接;ATP的结合以诱导病原菌菌毛中的亚单位移动;脂肪酸生物合成;蛋白质介导的铁-硫簇组装;维生素D受体在医学上相关的维生素D3类似物存在下的相互作用;心脏病毒Leader蛋白与Ran GTP酶的相互作用;HIV-1移码位点的RNA结构;理解RNA折叠途径作为细胞离子和渗透分子的功能;单链结合(SSB)蛋白在基因组维持中的作用;伴侣Hsp70;组蛋白修饰酶与其调节蛋白的相互作用,以及与纤维连接蛋白和血小板功能有关的基质蛋白。此外,SAXS数据将直接用于核磁共振结构确定,以扩展核磁共振的边界,以确定更大和更准确的生物重要大分子的结构。
英文摘要
DESCRIPTION (provided by applicant): The instrument requested is a small angle X-ray scattering (SAXS) instrument. The SAXS instrument will be used for investigating the structures of biological macromolecules and their complexes in solution. SAXS provides low (10-20 ¿) resolution information about macromolecular shape, folding, unfolding, aggregation, extended conformations, flexibly linked domains, conformational changes, and assembly state in solution. SAXS data can provide novel insights into biomolecular function that would otherwise not be attainable by other means. For example, there are many cases where individual protein domain structures are known, but the overall assembled state of the entire protein, and how it responds to other molecules, is not known but can be accurately deduced by SAXS. The advantages of SAXS are that it is a solution-based method, so the molecules are not constrained by a crystalline lattice, and there is no size limitation as is the case with NMR. Additionally, SAXS requires much less material than either NMR or X-ray crystallography. The instrument will impact 17 NIH-funded research projects by providing information about molecular shape, domain orientations and conformational changes in solution that are important for molecular function. The NIH funded projects served by the instrument have direct relationship to human health in the areas of: ligand binding to the sweet taste receptor; pre- messenger RNA splicing; binding of ATP to induce subunit movement in the pili of pathogenic bacteria; fatty acid biosynthesis; protein mediated iron-sulfur cluster assembly; interaction of the vitamin D receptor in the presence of medically relevant vitamin D3 analogs; interaction of the cardioviral Leader protein and the RAN GTPase; the HIV-1 frameshift site RNA structure; understanding RNA folding pathways as a function of cellular ions and osmolytes; role of single stranded binding (SSB) protein in genome maintenance; the chaperone Hsp70; the interaction of histone modifying enzymes with their regulatory proteins, and matrix proteins involved in fibronectin and platelet function. Additionally, SAXS data can be used directly in NMR structure determination to improve the quality of NMR structures (NMR-SAXS), which is an emergent technology that extends the frontiers of NMR for determining larger and more accurate structures. )
PUBLIC HEALTH RELEVANCE: The requested instrument will serve 17 NIH funded projects that have direct relationship to human health in the areas of: ligand binding to the sweet taste receptor; pre-messenger RNA splicing; binding of ATP to induce subunit movement in the pili of pathogenic bacteria; fatty acid biosynthesis; protein mediated iron-sulfur cluster assembly; interaction of the vitamin D receptor in the presence of medically relevant vitamin D3 analogs; interaction of the cardioviral Leader protein and the RAN GTPase; the HIV-1 frameshift site RNA structure; understanding RNA folding pathways as a function of cellular ions and osmolytes; role of single stranded binding (SSB) protein in genome maintenance; the chaperone Hsp70; the interaction of histone modifying enzymes with their regulatory proteins, and matrix proteins involved in fibronectin and platelet function. Additionally, SAXS data will be used directly in NMR structure determination in order to extend the frontiers of NMR for determining larger and more accurate structures of biologically important macromolecules.
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HIV FRAMESHIFT SITE RNA LIGAND INTERACTIONS
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