Experimental Strategies for Light-Induced Elimination of Protein Function in vivo
Experimental Strategies for Light-Induced Elimination of Protein Function in vivo
批准号:
8623032
负责人:
DAVID S. STEIN
金额:
$23.18万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-05-15 至 2016-02-29
关键词:
AddressAnimal ModelAvena sativaBiologicalBiologyBrainCaenorhabditis elegansCell Culture TechniquesCell CycleCell SurvivalCellsCessation of lifeChimeric ProteinsDevelopmentDiseaseDorsalDorsal-Ventral Pattern FormationDouble-Stranded RNADrosophila genusDrosophila melanogasterEmbryoExposure toFamilyFutureGene ExpressionGene MutationGene ProteinsGenerationsGenesGeneticGenetic ModelsGoalsIndividualInvestigationKineticsLaboratory OrganismLifeLightMammalsMediatingMethodsModificationMusMutationNeuronsOatsOrganismPatternPeptidesPhenotypePhysiologyPilot ProjectsPlayProcessProteinsRNA InterferenceReagentRoleSaccharomyces cerevisiaeSignal TransductionStagingSystemTechniquesTechnologyTemperatureTestingThale Cress ProteinsTimeTissuesTransgenic OrganismsUbiquitinUbiquitinationWorkYeastsZebrafishabsorptionbasecryptochrome 2designflygene functiongenetic analysisin vivointerestloss of functionloss of function mutationmulticatalytic endopeptidase complexmutantoptogeneticsphototropinprotein degradationprotein functionpublic health relevancerapid techniquerecogninsresearch studytemperature sensitive mutanttoolubiquitin ligaseyeast geneticsyeast protein
中文摘要
描述(由申请人提供):对于编码生物体或细胞活力所需蛋白质的基因,无法产生和检查功能丧失突变表型可能是阐明蛋白质功能的障碍。纯合突变个体可能在发育的早期阶段死亡,这使得很难确定相关蛋白在发育后期发挥的不同作用。组织特异性世代
英文摘要
DESCRIPTION (provided by applicant): For genes encoding proteins that are required for organismal or cell viability, an inability to generate and examine loss-of-function mutant phenotypes can be an impediment to elucidating protein function. Homozygous mutant individuals may die at an early stage in development, making it difficult to establish the differen roles that the relevant proteins play at later stages of development. Tissue-specific generation of
homozygous mutant clones, or expression of dsRNA, can in some cases overcome this limitation. However, these strategies are subject to the problem of protein perdurance beyond the time at which gene expression ceases, which can complicate analyses in which rapid elimination of gene function is required. Temperature-sensitive (ts) mutations provide an alternative means of conditionally eliminating gene product function. However, ts mutants are laborious to isolate and cannot be applied to the study of protein function in homeothermic organisms such as mammals. The objective of the investigations described in this proposal is the development of a general method for rapid, spatially- and temporally-controlled light-induced elimination of proteins of interest for phenotypic analysis. Two specific aims will be pursued to develop and test two distinct experimental methods to achieve protein elimination. Specific Aim 1 will utilize a small protein tag that we refer to as the photodegron, which can be expressed as a genetic fusion to other proteins. The photodegron undergoes a light-dependent conformational change that exposes a degradation signal recognized by a ubiquitous class of ubiquitin ligases, the N-recognins. In preliminary studies carried out in yeast, the photodegron mediated light-dependent elimination of function of the heterologous proteins to which it was attached. Continuing work will examine the kinetics of photodegron-induced degradation in yeast and test the ability of the photodegron to direct protein degradation in Drosophila embryos. Additional studies will increase the versatility of the photodegron method by incorporating a signal that targets it for degradation via the Nedd4 family of ubiquitin ligases. The investigations in Specifi Aim 2 will pursue a second strategy to achieve light- induced protein degradation in vivo by making use of the light-dependent interaction between the Arabidopsis thaliana proteins Cryptochrome 2 (CRY2) and CIB1. Planned experiments will test the ability of CRY2-ubiquitin ligase fusion proteins to mediate the degradation of proteins fused to CIB1 in Drosophila embryos. Based on recent advances in the understanding of light-responsive proteins and of ubiquitin/proteasome-mediated protein degradation, we hypothesize that it will be possible to use the sophisticated genetics of yeast and Drosophila to develop facile experimental strategies for rapid, temporally- and spatially-controlled protein elimination. These methods will overcome several limitations associated with currently available strategies for generating protein loss-of-function phenotypes and will provide a powerful tool for the study of medically important proteins involved in a wide variety of biological questions and experimental organisms.
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批准号:8849518
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