High Throughput Genetic and Drug Screens for Alph-1-Antitrypsin Deficiency
High Throughput Genetic and Drug Screens for Alph-1-Antitrypsin Deficiency
批准号:
7862206
负责人:
GARY ARTHUR SILVERMAN
金额:
$8.02万
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:
2009-07-20 至 2012-05-31
关键词:
AffectAlzheimer&aposs DiseaseAnimalsBiological AssayCaenorhabditis elegansCarcinomaCellsCharacteristicsChemoprophylaxisChildhoodChronic Obstructive Airway DiseaseCollaborationsConnective TissueDefectDegenerative DisorderDevelopmentDiagnosticDiseaseElastasesEndoplasmic ReticulumExtracellular FluidFundingFutureGene MutationGeneticGenetic ModelsGenetic ProgrammingGenetic ScreeningGoalsGrowthHepatocyteHuntington DiseaseInjuryInstitutesLeadLeukocyte ElastaseLibrariesLiverLiver FailureLiver diseasesLongevityLungLung diseasesMethodsModelingMolecularMutagenesisMutationPathogenicityPathway interactionsPatientsPharmaceutical PreparationsPhenotypePlayPoint MutationPolymersPreclinical Drug EvaluationPredispositionProcessProtease InhibitorProtein C InhibitorProteinsPublic HealthPulmonary EmphysemaQuality ControlRNA InterferenceResearch PersonnelRoleSerineSeveritiesSystemTherapeuticTissuesToxic effectUniversitiesValidationassay developmentbasecarcinogenesiscell typechemical geneticsdesigndrug discoverygain of functiongenome-widehigh throughput screeningin vivoliver transplantationloss of functionlung injurymutantpolymerizationpositional cloningpreventprogramsprotein aggregateprotein misfoldingprototypesmall moleculesmall molecule libraries
中文摘要
描述(由申请人提供):1-抗胰蛋白酶(AT)缺乏是越来越多的构象疾病的原型,其特征在于由错误折叠/聚集的蛋白质引起的组织损伤。AT缺陷的经典形式涉及增强突变蛋白ATZ的自聚合和聚集的突变。ATZ分泌不良,并在肝细胞的内质网(ER)内积聚。循环AT降低导致肺中蛋白酶抑制剂功能丧失和易患肺气肿。相反,ATZ在肝细胞ER中的积累导致毒性功能获得,如肝衰竭和癌所证明的。AT缺陷是一个有吸引力的目标,化学预防的疾病主要涉及ER易位缺陷。虽然最低限度地分泌,ATZ仍然保留其一些抗弹性蛋白酶活性。因此,增加ATZ分泌的小分子理论上可以防止肺和肝的组织损伤。此外,ATZ诱导的组织损伤的严重程度受到遗传和环境修饰剂的影响,这些修饰剂调节用于处置错误折叠蛋白质的内源性质量控制机制。增强这些降解过程的化合物可用于患者,以预防肝损伤,并结合旨在预防肺损伤的策略。这种疾病的易处理的遗传模型将大大提高我们阐明组织损伤机制和防止蛋白质错误折叠的内源性机制的能力。我们的初步研究结果表明,AT缺乏的毒性ER易位缺陷可以在C。优雅表达野生型AT的动物分泌该蛋白。相反,表达ATZ的动物产生细胞内包涵体,并显示缓慢的生长和幼虫停滞。此外,与匹兹堡大学药物发现研究所合作,我们展示了使用该模型的检测方法的开发,该模型可以很容易地适应自动化高通量筛选。该项目的目标包括在C中使用全基因组正向和反向遗传筛选的力量。elegans来鉴定调节ATZ聚集和改变受影响动物的存活的分子途径,从而为设计基于机制的治疗提供框架。梭elegans模型也将适用于药物库的高通量筛选,从而为AT缺乏的肝脏和肺部疾病的化学预防提供无偏倚的方法。具体目标是:1)提供详细的表征和验证的C。本发明的目的在于:2)阐明在体内改变ATZ的细胞命运和致病作用的潜在遗传程序,和3)鉴定防止ATZ的细胞内积累或消除其在体内的毒性作用的药物。与公共卫生的相关性:该提案的主要目标是发现AT缺乏症的新药,AT缺乏症是儿童肝病最常见的遗传原因,也是最常见的需要肝移植的遗传性肝病。
英文摘要
DESCRIPTION (provided by applicant): ?-1-antitrypsin (AT) deficiency is prototypic of an expanding number of conformational diseases characterized by tissue damage from misfolded/aggregated proteins. The classical form of AT deficiency involves a mutation that enhances self-polymerization and aggregation of the mutant protein, ATZ. ATZ is poorly secreted and accumulates within the endoplasmic reticulum (ER) of liver cells. Decreased circulating AT leads to a loss of protease inhibitor function in the lung and predisposition to emphysema. In contrast, accumulation of ATZ in the ER of liver cells leads to a toxic gain-of-function as evidenced by liver failure and carcinoma. AT deficiency is an attractive target for chemoprophylaxis as the disease predominantly involves an ER translocation defect. Although minimally secreted, ATZ still retains some of its anti-elastase activity. Thus, small molecules that increase ATZ secretion could theoretically prevent tissue damage in both lung and liver. Also, the severity of ATZ-induced tissue injury is influenced by genetic and environmental modifiers that regulate endogenous quality control mechanisms for disposal of misfolded proteins. Compounds that enhance these degradative processes, could be used in patients to prevent liver damage in combination with strategies designed to prevent lung injury. A tractable genetic model of this disease would greatly enhance our ability to elucidate the mechanism of tissue damage and the endogenous mechanisms that protect against protein misfolding. Our preliminary results show that the toxic ER translocation defect of AT deficiency can be modeled in C. elegans. Animals expressing wild-type AT secrete the protein. In contrast, animals expressing ATZ develop intracellular inclusions, and show slow growth and larval arrest. Further, in collaboration with the Drug Discovery Institute of the U of Pittsburgh, we show the development of an assay using this model that can easily be adapted to automated high throughput screening. The goals of this project include using the power of genome-wide forward and reverse genetic screens in C. elegans to identify molecular pathways that modulate ATZ aggregation and alter the survival of affected animals, therein providing a framework for designing mechanism-based therapeutics. The C. elegans model will also be adapted for high-throughput screening of drug libraries, thereby providing an unbiased method for chemoprophylaxis of liver and lung disease in AT deficiency. The specific aims are: 1) provide detailed characterization and validation of the C. elegans model of AT deficiency, 2) elucidate the underlying genetic program(s) that modify the cellular fate and pathogenic effects of ATZ in vivo, and 3) identify drugs that prevent intracellular accumulation of ATZ or eliminate its toxic effects in vivo. Relevance to public health: The major goal of this proposal is to discover new drugs for AT deficiency, the most common genetic cause of liver disease in childhood and the most frequent genetic liver disease necessitating liver transplantation.
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Intracellular Serpin Regulation of Intestinal Cell Necrosis
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