OXYGEN RADICAL TOXICITY AND PROTEIN DEGRADATION
OXYGEN RADICAL TOXICITY AND PROTEIN DEGRADATION
批准号:
7910936
负责人:
Kelvin J. A. Davies
金额:
$29.46万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-04 至 2011-08-31
关键词:
26S proteasomeAcuteAntibodiesApoptosisBiochemicalCalpainCatalytic DomainCell LineCell NucleusCellsCellular StressChronicComparative StudyCompetenceComplexCytoplasmDevelopmentDrug Metabolic DetoxicationEnvironmentExposure toGenetic TranscriptionGrantHealthHeat-Shock Proteins 70Heat-Shock Proteins 90Hydrogen PeroxideHydrolaseHydroxyl RadicalHyperoxiaHypochloriteHypochlorous AcidImpairmentInclusion BodiesKnock-outLifeLysosomesMetabolismModelingModificationNecrosisNitrogenNuclearOxidantsOxidation-ReductionOxidative StressOxygenPeroxonitritePhosphorylationPoly(ADP-ribose) PolymerasesPrecipitationPredispositionProcessProteinsProteolysisPublic HealthQuinonesReactive Oxygen SpeciesRegulationResearch PersonnelResistanceRoleSmall Interfering RNAStressSystemTechniquesTestingTetanus Helper PeptideToxic Environmental SubstancesToxic effectToxinTransgenic OrganismsTranslationsWorkacute stressbiological adaptation to stresscrosslinkimprovedinhibitor/antagonistmulticatalytic endopeptidase complexmutantoverexpressionprogramsprotein degradationresponse
中文摘要
描述(由申请人提供):许多环境毒素是氧化剂。作为氧化修饰的主要目标的蛋白质失去功能/活性,并且必须被蛋白水解降解,否则它们将聚集并形成交联的细胞包涵体。在此资助的前几个周期中,我们已经展示了蛋白酶体在氧化蛋白解毒中的重要作用。目前研究发现,蛋白酶体在轻度、急性胁迫下处于动态调控、交换调节子和催化亚基的状态。了解蛋白酶体解毒的动态和诱导机制是我们的当务之急。我们广泛的,长期的目标是确定氧化蛋白质进行选择性蛋白酶体蛋白水解的机制,这种解毒系统对健康的贡献,以及慢性或反复应激下蛋白酶体的损伤。我们的具体目的是验证以下假设:1)在急性氧化应激过程中,20 S蛋白酶体被11 S(PA 28)或PA 200调节因子激活,或被PARP或HSP 90激活,而26 S蛋白酶体则被HSP 70促进分解和重组; 2)蛋白酶体、免疫蛋白酶体和蛋白酶体调节剂的表达由急性氧化应激瞬时诱导,允许氧化蛋白质的更有效降解;和3)虽然急性(轻度)氧化应激短暂地改善蛋白酶体系统保护免受氧化修饰蛋白质的能力,但慢性或重复应激实际上损害这种适应并增加对环境毒素的长期易感性。过氧化氢将是研究的主要氧化剂。有限的比较研究将进行过氧亚硝酸盐,次氯酸/次氯酸盐,羟基自由基,氧化还原循环醌,和高氧培养环境。蛋白酶体调节剂和亚基交换的重要性将与敲除突变体,siRNA(或反义),抗体沉淀和生化技术的组合进行测试。将使用转录和翻译抑制剂测试直接激活与增加的亚基/调节子表达。还将测试通过磷酸化或谷胱甘肽化的直接调节。组成性过表达细胞和tet关闭条件转基因细胞,蛋白酶体亚基和调节剂,将被用来模拟应激适应机制,并测试我们的结论。我们的研究将有助于公众健康,通过提高对毒性机制的理解,特别是急性暴露与慢性或反复侮辱。
英文摘要
DESCRIPTION (provided by applicant): Many environmental toxins are oxidants. Proteins, which are major targets of oxidative modification, loose function/activity and must be proteolyticaly degraded or they will aggregate, and form cross-linked cellular inclusion bodies. In previous cycles of this grant, we have shown a major role for the proteasome in detoxifying oxidized proteins. Now we find proteasome is under dynamic control, exchanging regulators, and catalytic subunits in mild, acute stress. Understanding dynamic and inducible mechanisms of detoxification by proteasome is our immediate priority. Our broad, long-term objective is to define the mechanism(s) by which oxidized proteins undergo selective proteasomal proteolysis, the contributions of this detoxification system to health, and the impairment of proteasome under chronic or repeated stress. Our specific aims are to test the following hypotheses: 1) During acute oxidative stress, 20S proteasome undergoes activation by 11 S(PA28) or PA200 regulators, or by PARP or HSP90; whereas 26S proteasome undergoes disassembly and reassembly facilitated by HSP70; 2) Expression of proteasome, immunoproteasome, and proteasome regulators, is transiently induced by acute oxidative stress, allowing more efficient degradation of oxidized proteins; and 3) While acute (mild) oxidative stress transiently improves the ability of the proteasomal system to protect against oxidatively modified proteins, chronic or repeated stress actually impairs such adaptation and increases long-term susceptibility to environmental toxins. Hydrogen peroxide will be the major oxidant studied. Limited comparative studies will be conducted with peroxynitrite, hypochlorous acid/hypochlorite, hydroxyl radical, redox cycling quinones, and a hyperoxic cultivation environment. The importance of proteasome regulators and subunit exchanges will be tested with a combination of knockout mutants, siRNA (or antisense), antibody precipitation, and biochemical techniques. Direct activation versus increased subunit/regulator expression will be tested with transcriptional and translational inhibitors. Direct regulation by phosphorylation or glutathionylation will also be tested. Constitutively overexpressing cells and tet-off conditional transgenic cells, for proteasome subunits and regulators, will be used to model mechanisms of stress-adaptation, and to test our conclusions. Our studies will contribute to public health through improved understanding of mechanisms of toxicity, especially acute exposure versus chronic or repeated insults.
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Research Development Core
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批准号:10424590
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财政年份:2020
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USC-Buck Geroscience Training Program in the Biology of Aging
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资助金额:$31.3万
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财政年份:2016
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ADAPT 78 IN OXIDANT STRESS, AGING AND NEURODEGENERATION
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批准号:6703655
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资助金额:$34.04万
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财政年份:2000
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ADAPT 78 IN OXIDANT STRESS, AGING AND NEURODEGENERATION
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批准号:6349732
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ADAPT 78 IN OXIDANT STRESS, AGING AND NEURODEGENERATION
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项目类别:
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资助金额:$31.26万
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依托单位:
ADAPT 78 IN OXIDANT STRESS, AGING AND NEURODEGENERATION
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批准号:6497189
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项目类别:
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资助金额:$32.51万
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财政年份:2000
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负责人:Kelvin J. A. Davies
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依托单位:
ADAPT 78 IN OXIDANT STRESS, AGING AND NEURODEGENERATION
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批准号:6627931
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项目类别:
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资助金额:$33.26万
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财政年份:2000
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负责人:Kelvin J. A. Davies
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依托单位:
OXYGEN RADICALS IN BIOLOGY GORDON CONFERENCE
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批准号:2157446
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项目类别:
-
资助金额:$1.8万
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财政年份:1996
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负责人:Kelvin J. A. Davies
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依托单位:
OXIDATIVE DAMAGE AND REPAIR
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批准号:3434148
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项目类别:
-
资助金额:$0.4万
-
财政年份:1990
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负责人:Kelvin J. A. Davies
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依托单位:
OXIDATIVE DAMAGE AND REPAIR
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批准号:3434147
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项目类别:
-
资助金额:$1.0万
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财政年份:1990
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负责人:Kelvin J. A. Davies
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依托单位:
OXYGEN RADICAL TOXICITY AND RED CELL PROTEIN DEGRADATION
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批准号:2153354
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项目类别:
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资助金额:$18.42万
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财政年份:1985
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负责人:Kelvin J. A. Davies
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依托单位:
Oxygen Radical Toxicity and Protein Degradation
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批准号:8691810
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项目类别:
-
资助金额:$36.61万
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财政年份:1985
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负责人:Kelvin J. A. Davies
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依托单位:
Oxygen Radical Toxicity and Protein Degradation
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批准号:8811949
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项目类别:
-
资助金额:$37.09万
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财政年份:1985
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负责人:Kelvin J. A. Davies
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依托单位:
OXYGEN RADICAL TOXICITY AND PROTEIN DEGRADATION
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批准号:6635434
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项目类别:
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资助金额:$36.56万
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财政年份:1985
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负责人:Kelvin J. A. Davies
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依托单位:
OXYGEN RADICAL TOXICITY AND RED CELL PROTEIN DEGRADATION
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批准号:3251034
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项目类别:
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资助金额:$12.98万
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财政年份:1985
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依托单位:
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批准号:2331509
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资助金额:$19.61万
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财政年份:1985
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-
依托单位:
OXYGEN RADICAL TOXICITY AND RED CELL PROTEIN DEGRADATION
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批准号:3447668
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项目类别:
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资助金额:$5.8万
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财政年份:1985
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负责人:Kelvin J. A. Davies
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依托单位:
OXYGEN RADICAL TOXICITY AND PROTEIN DEGRADATION
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批准号:6875736
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项目类别:
-
资助金额:$36.56万
-
财政年份:1985
-
负责人:Kelvin J. A. Davies
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依托单位:
海外基金