Functional Dynamics During Induced-fit Enzyme Turnover
Functional Dynamics During Induced-fit Enzyme Turnover
批准号:
8849921
负责人:
MICHAEL S. CHAPMAN
金额:
$38.97万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-02-01 至 2017-05-31
关键词:
AccountingAddressAdoptionAlgorithmsAmino AcidsArginine KinaseBerylliumBindingBiochemistryBiological ModelsChemicalsCommunitiesComplexComputational algorithmComputer AnalysisCouplingCrystallographyDataData SetDependenceDevelopmentDiseaseDissociationElementsEmerging TechnologiesEnzyme KineticsEnzymesEquilibriumExhibitsExperimental ModelsFoundationsGoalsImageJointsLinkMapsMeasurementMeasuresMetabolicMethodologyMethodsModelingMolecularMotionNMR SpectroscopyNuclear Magnetic ResonancePreparationProtein DynamicsProteinsReactionRelaxationResearchResidual stateResolutionRoleRotationSolutionsStructureSystemTechniquesTechnologyTimeTransferaseVariantVertebral columnWorkanalogbasebiophysical propertiesconditioningenzyme modelexperimental analysisimprovedinsightmillisecondmolecular dynamicsmolecular pathologyprotein structureresearch studyrestrainttheoriestool
中文摘要
越来越明显的是,动态运动可以和结构一样重要
英文摘要
It is increasingly apparent that dynamic motions can be equally important as structure in
biomolecular mechanisms of action. Structures of 70,000 proteins have been determined
experimentally, but the dynamics of only a handful have been mapped comprehensively.
Emerging developments in NMR spectroscopy are making it possible, in favorable cases, to
characterize dynamics over a broad range of functionally-relevant time regimes. Arginine kinase
has been developed as a model system, amenable to the several techniques necessary, to
characterize the conformational dynamics of a representative metabolic enzyme. It will be used to
elucidate the interplay of intrinsic and substrate-induced motions at critical points in the catalytic
cycle and to understand how protein dynamics can limit enzymatic turnover rate.
Arginine kinase (AK) is an attractive model enzyme because it catalyzes a phosphoryl transfer
reaction with a millisecond turnover rate that is limited by conformational dynamics. At 42 kDa, it
is larger than previously characterized systems and exhibits a rich repertoire of domain rotations
and loop motions. Crystal structures at atomic resolution will be combined with dynamics from
several types of NMR to build a structure-dynamic model spanning the pico-second through
millisecond regimes. AK presents an excellent opportunity to investigate near-native protein
dynamics of the transition state (TS), because its TS analog, unlike the bisubstrate complexes
used for most bimolecular enzymes, is free from artificial covalent constraints.
Aim 1 will extend our dynamics characterization from substrate-free enzyme to a transition state
analog complexes, using NMR relaxation dispersion, residual dipolar coupling and spin-spin
relaxation. This will reveal changes in backbone motions as the enzyme progresses through the
catalytic cycle, and the interplay of fast and slow dynamics. Aim 2 will develop computer
algorithms for optimization of structure-dynamics models. Methods will support holistic integration
of complementary data from diverse crystallographic and NMR experiments. Aim 3 will determine
the functional role of each motion. Variation in the NMR relaxation exchange of reacting enzyme
with substrate concentration will distinguish motions required for binding or dissociation from
those important in chemical steps.
Our experimental analysis will inform current theoretical debate about the roles of induced-fit,
conformational selection and transition state stabilization in protein motions. It will determine the
extent of links between fast and slow dynamics, elucidate the coordination of different motions in
a large protein, and reveal how enzymes achieve precise substrate alignment while undergoing
large conformational changes. The project will have broad impact in basic biochemistry and build
the foundations for understanding the molecular basis of disease.
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DOI:
10.1021/ja073652x
发表时间:
2008
期刊:
Journal of the American Chemical Society
影响因子:
15
作者:
[Ruben,ElizaA, Plumley,JoshuaA, Chapman,MichaelS, Evanseck,JeffreyD]
通讯作者:
Evanseck,JeffreyD
DOI:
10.1007/s12104-013-9512-4
发表时间:
2014-10
期刊:
Biomolecular NMR assignments
影响因子:
0.9
作者:
[Davulcu O, Niu X, Brüschweiler-Li L, Brüschweiler R, Skalicky JJ, Chapman MS]
通讯作者:
Chapman MS
DOI:
10.1021/jacs.7b00236
发表时间:
2017-04-05
期刊:
Journal of the American Chemical Society
影响因子:
15
作者:
[Peng Y, Hansen AL, Bruschweiler-Li L, Davulcu O, Skalicky JJ, Chapman MS, Brüschweiler R]
通讯作者:
Brüschweiler R
Contributions to catalysis and potential interactions of the three catalytic domains in a contiguous trimeric creatine kinase.
对连续三聚肌酸激酶中三个催化结构域的催化作用和潜在相互作用的贡献。
DOI:
10.1111/j.1742-4658.2007.06226.x
发表时间:
2008
期刊:
The FEBS journal
影响因子:
--
作者:
[Hoffman,GreggG, Davulcu,Omar, Sona,Sona, Ellington,WRoss]
通讯作者:
Ellington,WRoss
Hyperconjugation-mediated solvent effects in phosphoanhydride bonds.
磷酸酐键中超共轭介导的溶剂效应。
DOI:
10.1021/jp306607k
发表时间:
2012
期刊:
The journal of physical chemistry. A
影响因子:
--
作者:
[Summerton,JeanC, Evanseck,JeffreyD, Chapman,MichaelS]
通讯作者:
Chapman,MichaelS
共 7 条
Adeno-Associated Virus Gene Therapy Vectors: Molecular Interactions on Cell Entry
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Refinement of Macromolecular Assembly Structure using Electron Microscopy
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Refinement of Macromolecular Assembly Structure using Electron Microscopy
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批准号:7626031
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资助金额:$26.75万
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依托单位:
Functional Dynamics during Induced-fit Enzyme Turnover
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批准号:7581018
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项目类别:
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资助金额:$28.57万
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批准号:7851423
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资助金额:$26.48万
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依托单位:
Functional Dynamics During Induced-fit Enzyme Turnover
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批准号:8370216
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资助金额:$41.68万
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依托单位:
Functional Dynamics during Induced-fit Enzyme Turnover
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批准号:7214321
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资助金额:$30.49万
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依托单位:
Functional Dynamics During Induced-fit Enzyme Turnover
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资助金额:$37.6万
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Functional Dynamics during Induced-fit Enzyme Turnover
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批准号:7348374
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资助金额:$28.54万
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Functional Dynamics during Induced-fit Enzyme Turnover
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依托单位:
MACCHESS PROGRAM FOR LARGE UNIT CELLS
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财政年份:2005
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Structure-Function of AAV - a Viral Gene Therapy Vector.
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依托单位:
海外基金