Functional and inhibitory studies of human lipoxygenase
Functional and inhibitory studies of human lipoxygenase
批准号:
7919704
负责人:
Theodore R Holman
金额:
$1.51万
依托单位国家:
美国
项目类别:
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-05-01 至 2011-11-30
关键词:
Active SitesAffectAllosteric SiteArachidonate 15-LipoxygenaseArachidonic AcidsBindingBiochemicalBiochemistryBiologicalBiological AssayBlood PlateletsBoxingCalorimetryCatalysisCatalytic DomainCellsCellular biologyComplexComputer SimulationCrystallographyDockingEnzymesFamilyFatty AcidsGoalsHeart DiseasesHumanIsoenzymesKineticsKnowledgeLearningLinoleic AcidsLipid BilayersLipidsLiposomesLipoxygenaseLipoxygenase 1Lipoxygenase 2Lipoxygenase InhibitorsMalignant NeoplasmsMalignant neoplasm of prostateMethodsModelingMolecularOryctolagus cuniculusPhospholipidsPropertyProteolysisRecruitment ActivityRegulationResearchResolutionReticulocytesRoleScreening procedureSolutionsSoybeansSpectrum AnalysisSpin LabelsStrokeStructural ModelsStructureSubstrate SpecificityTherapeuticVesiclehigh throughput screeninghuman diseaseimprovedinhibitor/antagonistneuron lossprogramsprotein expressionresearch studyresponsetherapeutic targettoolvirtual
中文摘要
描述(由申请人提供):本研究计划的总体目标是确定脂氧合酶识别底物和抑制剂的分子机制,并将这些知识应用于了解脂氧合酶在细胞生物学和人类疾病中的作用。人脂氧合酶(hLO)同工酶是关键的治疗靶点,因为它们涉及许多人类疾病,然而,关于它们的生物化学和它们在细胞生物学中的作用的基本问题仍然存在。我们建议使用多方面的方法,包括动力学、光谱学、量热法、晶体学、计算机建模、抑制剂筛选和全细胞抑制剂测定,来研究大豆15-LO-1和三种hLO,血小板12- hLO、网织红细胞15-hLO-1和表皮15-hLO-2的生化和生物学特性。第一个目的是确定LO结合底物的方式以及抑制剂和脂质体如何影响底物特异性。脂氧合酶与多种底物反应,包括花生四烯酸和亚油酸,产生具有广泛功能的产物,但催化位点差异结合这些底物并将其转化为产物的方式仍不清楚。在这个目标中,我们提出的实验将定义如何结合的基板,什么条件下改变其基板的特异性和LO如何获得其基板从脂质双层。第二个目的是确定LO的溶液结构以及抑制剂和脂质体如何影响变化。我们目前对LO结构的理解主要限于一些静态晶体结构,这些结构没有说明底物如何进入并停靠在催化位点,或者LO如何从脂质双层招募底物。在这个目标中,我们将利用各种结构的方法,如蛋白水解,H/D交换,EPR自旋标记,和晶体学,探测LO的结构。具体而言,我们将研究是否hLO的结构相匹配的结晶大豆和兔LO,底物或抑制剂结合后发生什么结构变化,以及如何LO-底物-脂质复合物相互作用,以实现催化。第三个目标是利用我们发现的抑制剂来优化我们的虚拟筛选,完善人类LO活性位点模型,定义底物特异性效应,并探测LO在人类疾病中的细胞作用。我们建议利用我们以前发现的有效的和选择性的抑制剂,从我们的高通量筛选,完善我们的人体结构模型,并提高我们的虚拟对接。将进行广泛的动力学研究,以评估这些化合物的抑制机制,无论是变构或竞争性或还原性。这个家族的特异性抑制剂将构成一个工具箱,这将使我们能够通过变构结合来探测LO的特异性活性的调节,以及LO在前列腺癌和神经元细胞死亡(即中风)中的作用。
脂氧合酶(Lipoxygenase,LO)是一种重要的酶,与癌症、中风、心脏病等多种人类疾病密切相关。本申请的目的是发现和表征LO的抑制剂,希望更多地了解其生化和细胞机制,并开发可能的治疗方法。
英文摘要
DESCRIPTION (provided by applicant): The overarching goal of this research program is to determine the molecular mechanism of both substrate and inhibitor recognition by lipoxygenase and apply this knowledge to understanding the role of lipoxygenase in cellular biology and human disease. Human lipoxygenase (hLO) isozymes are critical therapeutic targets because they are involved in numerous human diseases and yet, fundamental questions remain regarding their biochemistry and their role in cellular biology. We propose to investigate both the biochemical and biological properties of soybean 15-LO-1 and three hLOs, platelet 12- hLO, reticulocyte 15-hLO-1 and epidermal 15-hLO-2, using a multi-faceted approach, including kinetics, spectroscopy, calorimetry, crystallography, computer modeling, inhibitor screening and whole cell inhibitor assays. The first aim is to determine the manner in which LO binds substrate and how inhibitors and liposomes affect the substrate specificity. Lipoxygenases react with a variety of substrates, including arachidonic acid and linoleic acid, producing products with a wide range of functions but the manner in which the catalytic site differentially binds these substrates and converts them to products remains unclear. In this aim, we propose experiments which will define how the substrate is bound, what conditions change its substrate specificity and how LO obtains its substrate from the lipid bilayer. The second aim is to determine the solution structures of LO and how inhibitors and liposomes affect change. Our current structural understanding of LO is largely limited to a few static crystal structures that say nothing of how the substrate enters and docks to the catalytic site, or how LO recruits substrate from the lipid bilayer. In this aim, we shall utilize a variety of structural methods, such as proteolysis, H/D exchange, EPR spin labeling, and crystallography, to probe the structure of LO. Specifically, we will investigate whether the structures of the hLOs match that of the crystallized soybean and rabbit LOs, what structural changes occur upon substrate or inhibitor binding and how the LO-substrate-lipid complex interacts to achieve catalysis. The third aim is to utilize our discovered inhibitors to optimize our virtual screen, perfect human LO active site models, define the substrate specificity effect, and probe the cellular role of LO in human disease. We propose to utilize our previously discovered potent and selective inhibitors from our high throughput screen, to perfect our human structural model and improve our virtual docking. Extensive kinetic studies will be performed to assess the inhibitory mechanism of these compounds, be it allosteric or competitive or reductive. This family of specific inhibitors will then constitute a tool box which will allow us to probe the regulation of LO's specific activity via allosteric binding, and the role of LO in both prostate cancer and neuronal cell death (i.e. stroke).
Lipoxygenase (LO) is a critical enzyme involved in numerous human diseases, such as cancer, stroke and heart disease. The goal of this application is to discover and characterize inhibitors to LO with the hope of learning more about its biochemical and cellular mechanism and developing possible therapeutics.
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会议论文
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THERMO ELECTRON LTQ-FT MASS SPECTROMETER
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依托单位:
FUNCTIONAL STUDIES OF HUMAN AND SOYBEAN LIPOXYGENASE
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依托单位:
海外基金