Understanding the reactivity of the most complex multicopper oxidase ceruloplasmin: insight into the reaction intermediates, mechanism and the roles of the additional type 1 copper sites
Understanding the reactivity of the most complex multicopper oxidase ceruloplasmin: insight into the reaction intermediates, mechanism and the roles of the additional type 1 copper sites
批准号:
9764381
负责人:
Shiliang Tian
金额:
$5.8万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-21 至 2020-07-31
关键词:
Aceruloplasminemia AerobicBindingBiological ProcessBiotechnologyCatalysisCeruloplasminCollaborationsComplexCopperCrystallizationDioxygenDiseaseElectron TransportElectronsEnzymesFamilyFreezingGlycoproteinsHomeostasisHumanInvestigationIonsIronKineticsLaccaseMediatingMetalsMethodsMolecularMutagenesisMutationNatureOxidasesOxidesPathogenesisPathway interactionsPeroxidesPolyaminesPropertyReactionReportingRhusRoleSerumSiteSpectrum AnalysisStructureStructure-Activity RelationshipSystemTimeWaterabsorptionbasedisulfide bondelectronic structuregeometric structureinsightinterestmutantneurotoxicityoxidationpolyphenolprofessorprotein complextyrosine radical
中文摘要
项目总结
英文摘要
Project Summary
Multicopper oxidases (MCOs) are a large and diverse family of enzymes which couple the one-electron
oxidation of various substrates with the four-electron reduction of dioxygen to water. They are important in
biological processes and are increasingly evaluated for a variety of biotechnological applications due to their
broad substrate range. Human serum ceruloplasmin (Cp) is the most complicated MCO with one trinuclear
copper (TNC) center and three type 1 copper (T1Cu) sites. One of the main reasons for the interest in Cp is
the mutational disease aceruloplasminemia, which reveals a role for Cp as an essential ferroxidase critical for
iron homeostasis. A fundamental understanding of the catalytic cycle of the MCOs has been developed based
on the study of Rhus vernicifera laccase (RvL). However, the mechanism of Cp catalysis is still unclear.
Preliminary studies reveal that an intermediate of Cp catalysis is different from that of RvL, and the functions of
the two additional T1Cu sites of Cp are not well defined. Hence, this proposal focuses on these two important
issues regarding the Cp mechanism: 1) The nature of the unique intermediates involved in Cp catalysis; 2) The
roles of the two additional T1Cu sites. All the intermediates or mutants involved will be analyzed by a wide
range of spectroscopic methods correlated with DFT calculations to define the corresponding electronic and
geometric structures of the intermediates and elucidate reaction coordinates. The correlation of Cp
intermediates to the well-defined intermediates present in other MCOs will be determined. These mechanistic
studies of the Cp will advance the fundamental understanding of the structure-activity relationship of human Cp
and provide valuable insight into the pathogenesis of metal-mediated diseases and mechanisms for metal
neurotoxicity.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1021/acscentsci.0c00953
发表时间:
2020-10-28
期刊:
ACS central science
影响因子:
18.2
作者:
[Tian S, Jones SM, Solomon EI]
通讯作者:
Solomon EI
Chloride Control of the Mechanism of Human Serum Ceruloplasmin (Cp) Catalysis.
人血清铜蓝蛋白 (Cp) 催化机制的氯化物控制。
DOI:
10.1021/jacs.9b03661
发表时间:
2019
期刊:
Journal of the American Chemical Society
影响因子:
15
作者:
[Tian,Shiliang, Jones,StephenM, Jose,Anex, Solomon,EdwardI]
通讯作者:
Solomon,EdwardI
海外基金