A conserved module required for mitochondrial function and viability under stress
A conserved module required for mitochondrial function and viability under stress
批准号:
7781405
负责人:
Jared P Rutter
金额:
$31.96万
依托单位:
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:
2009-03-09 至 2013-01-31
关键词:
ATP phosphohydrolaseBiochemicalCaenorhabditis elegansCaenorhabditis elegans ProteinsCardiacCardiac MyocytesCell DeathCellsCollaborationsComplexCultured CellsCytosolDefectDeteriorationEndoplasmic ReticulumEndoplasmic Reticulum Degradation PathwayEukaryotaExcisionFunctional disorderGenesGoalsHumanHydrogen PeroxideHypersensitivityImpairmentLocationLongevityMaintenanceMammalsMetabolismMitochondriaMitochondrial ProteinsMusNatureNematodaNomenclatureOxidative StressPathogenesisPathway interactionsPeroxidesPhenotypePhysiologicalPhysiologyProteinsRNA InterferenceRecruitment ActivityRegulationRespiratory physiologyRoleSignal TransductionSpecificityStressSystemTimeYeast Model SystemYeastshuman diseasein vivomitochondrial dysfunctionmutantnoveloxidative damagepreventprotein degradationpublic health relevancereceptorresponse
中文摘要
描述(由申请人提供):进行性线粒体氧化损伤和功能障碍是许多人类疾病发病的基础。利用酵母模型系统,我们已经证明了在线粒体应激条件下,新的蛋白质寿命相关的线粒体应激反应1(LMS1)被招募到线粒体。当LMS1耗尽时,氧化应激会导致呼吸功能丧失,并随着时间的推移显著加速生存能力的丧失。在体内,LMS1与CDC48联系在一起,CDC48是内质网蛋白质逆转录易位和降解(ERAD途径)所必需的ATPase。这些观察结果已经扩展到线虫,其中LMS1基因敲除会导致过氧化氢敏感性和寿命缩短,氧化应激诱导胞浆线粒体易位。我们认为,LMS1是一个重要的泛真核系统的组成部分,用于保护免受氧化应激和线粒体功能障碍的致命影响。我们假设它感觉到线粒体的压力,并通过CDC48的募集,使错误折叠或受损的线粒体蛋白降解。我们在此建议确定:i)调控Lms1线粒体易位的机制。我们将确定:1)线粒体功能障碍信号的位置和特异性;2)该信号是如何传递到LMS1的;以及3)LMS1线粒体受体的特性。Ii)LMS1在维持线粒体活性和存活率方面的功能。我们将:1)全面鉴定LMS1-CDC48复合体的组成;2)确定LMS1-CDC48相互作用的性质和调节;3)了解在LMS1突变体中观察到的线粒体缺陷。3)哺乳动物中LMS1的调节和功能。我们将:1)使用培养细胞检测哺乳动物LMS1的调节和功能;2)使用LMS1-/-小鼠,确定该蛋白在维持线粒体功能方面的生理作用,特别是在心肌细胞中。
与公共卫生相关:许多人类疾病是由线粒体功能的逐渐恶化引起的。我们已经发现了一种广泛的细胞系统,它可以防止这种类型的恶化,并表明它可以保护酵母和线虫免受某些类型的损害。我们认为,它对人类也同样重要,并建议进一步了解它的生化和生理作用。
英文摘要
DESCRIPTION (provided by applicant): Progressive mitochondrial oxidative damage and dysfunction is fundamental to the pathogenesis of many human diseases. Using a yeast model system, we have shown that the novel protein Lifespan-associated Mitochondrial Stress-responsive 1 (Lms1) is recruited to mitochondria under conditions of mitochondrial stress. When Lms1 is depleted, oxidative stress induces loss of respiratory function and markedly accelerated loss of viability over time. Lms1 associates in vivo with Cdc48, an ATPase integral to the retrotranslocation and degradation of proteins from the endoplasmic reticulum (ERAD pathway). These observations have been extended to C. elegans, wherein knockdown of Lms1 leads to peroxide sensitivity and decreased lifespan and oxidative stress induces cytosol to mitochondria translocation. We propose that Lms1 is a component of an important pan-eukaryotic system for protection from the lethal effects of oxidative stress and mitochondrial dysfunction. We hypothesize that it senses mitochondrial stress and, through Cdc48 recruitment, enacts the degradation of misfolded or damaged mitochondrial protein. We hereby propose to determine: I) The mechanisms regulating Lms1 mitochondrial translocation. We will determine: 1) the location and specificity of the mitochondrial dysfunction signal; 2) how this signal is relayed to Lms1; and 3) the identity of the Lms1 mitochondrial receptor. II) The function of Lms1 in preserving mitochondrial activity and viability. We will: 1) comprehensively identify the components of the Lms1- Cdc48 complex; 2) determine the nature and regulation of the Lms1-Cdc48 interaction; and 3) understand the mitochondrial defect observed in the lms1 mutant. III) Lms1 regulation and function in mammals. We will: 1) examine mammalian Lms1 regulation and function using cultured cells; and 2) using an Lms1-/- mouse, determine the physiological role of this protein in maintaining mitochondrial function, particularly in cardiomyocytes.
PUBLIC HEALTH RELEVANCE: Many human diseases are caused by a progressive deterioration of the function of mitochondria. We have discovered a widespread cellular system that acts to prevent this type of deterioration and have shown that it protects both yeast and nematodes from certain types of damage. We suggest that it will be equally important in humans and propose to further understand its biochemical and physiological role.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Mitochondrial Biochemistry: From Mechanisms to Disease
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批准号:9893007
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财政年份:2019
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批准号:10592253
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财政年份:2019
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Mitochondrial Biochemistry: From Mechanisms to Disease
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批准号:10372005
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Discovering novel metabolic targets to mitigate cyanide toxicity
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Metabolic regulation of intestinal stem cell homeostasis
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Metabolic regulation of intestinal stem cell homeostasis
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Msp1/ATAD1: mitochondrial and peroxisomal protein sorting
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财政年份:2015
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Msp1/ATAD1: mitochondrial and peroxisomal protein sorting
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Succinate Dehydrogenase: Biogenesis and Role in Disease
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财政年份:2014
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Succinate Dehydrogenase: Biogenesis and Role in Disease
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Functions of the Mitochondrial Proteome: An Integrated Multi-Species Approach
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财政年份:2012
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Functions of the Mitochondrial Proteome: An Integrated Multi-Species Approach
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批准号:8238935
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项目类别:
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资助金额:$29.9万
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财政年份:2012
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依托单位:
Functions of the Mitochondrial Proteome: An Integrated Multi-Species Approach
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资助金额:$28.8万
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依托单位:
A conserved module required for mitochondrial function and viability under stress
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项目类别:
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资助金额:$30.21万
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财政年份:2009
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负责人:Jared P Rutter
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依托单位:
海外基金