Regulation of Heat Shock Factor 1 in Animal Models
Regulation of Heat Shock Factor 1 in Animal Models
批准号:
7223412
负责人:
NAHID F MIVECHI
金额:
$27.46万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1996
资助国家:
美国
项目状态:
已结题
起止时间:
1996-07-01 至 2009-04-30
关键词:
AdultAdverse effectsAlanineAnimal ModelApoptosisApoptoticApplications GrantsBindingBinding ProteinsBiochemicalCaspaseCaspase InhibitorCell DeathCell NucleusCell physiologyCellsComplementary DNAComplexConditionCultured CellsDNA FragmentationDefectDevelopmentDisruptionEmbryoEndopeptidasesExhibitsExonsFamilyFamily memberGene ExpressionGenesGoalsGrowthGrowth and Development functionHeartHeat shock proteinsHeat-Shock ResponseHumanKidneyKineticsKnock-in MouseKnockout MiceLacZ GenesMaintenanceMalignant neoplasm of ovaryMeasuresMitochondriaModelingModificationMolecular ChaperonesMusMutant Strains MiceNumbersPathway interactionsPeptide HydrolasesPhosphorylationPhosphorylation SitePhysiologicalPlayProtein BindingProteinsRegulationReporterReporter GenesResearch PersonnelResistanceRoleScreening procedureSerineSignal PathwaySignal TransductionStressSystemTP53 geneTestingTestisTetracyclineTetracyclinesTimeTissuesTransgenesTransgenic MiceVariantVertebratesWhole OrganismYeastsapoptosis inducing factorbiological adaptation to stresscarcinogenesiscaspase-9cell growthcell typechemotherapeutic agentcytochrome cgenetic regulatory proteinheat shock transcription factorheat-shock factor 1in vivomouse modelmutantmutant mouse modeloutcome forecastpreventprogramsprotein degradationprotein expressionrecombinaseresponsetumoryeast two hybrid system
中文摘要
描述(由申请人提供):应激反应是一种进化保守的细胞反应机制,其特征在于热休克蛋白(Hsps)的合成和积累增强。 热休克蛋白与控制细胞生长和发育的信号通路的关键成分有关。 Hsps的水平是关键的,因为Hsps表达水平的变化导致异常生长、发育缺陷和细胞死亡。 热休克蛋白编码基因的表达受一个热休克转录因子家族的调控。 hsf 1是应激反应家族的主要成员,在其激活和失活的循环过程中,经历了复杂的修饰,如磷酸化和与许多调节蛋白的结合。 进化保守的丝氨酸残基S303和S307的磷酸化以及与Hsf结合蛋白1(Hsbp 1)的结合抑制Hsf 1活性。 在脊椎动物中具有进化保守的Hsf 1的意义已经通过破坏小鼠中的Hsf 1基因进行了测试。 对突变小鼠的研究表明,hsf 1在维持细胞基本功能和作为抗凋亡蛋白方面起着关键作用。 在本授权申请中,为了继续我们的努力,以了解磷酸化对Hsf 1活性和功能的作用,并确定Hsbp 1(其是Hsf 1相互作用蛋白)在调节Hsf 1活性中的作用,我们已经产生了突变小鼠模型,其中丝氨酸残基S303/S307已经被丙氨酸残基取代(S303 A/S307 A),我们已经破坏了小鼠hsbp 1基因。 除了我们已经产生的hsf 1缺陷小鼠外,这些小鼠模型将用于了解如何操纵Hsf 1水平和活性控制细胞生长或应激反应。 我们提出以下具体目标:为了确定参与Hsf 1调节的信号网络和磷酸化对Hsf 1活性的影响,II.研究Hsbp 1在体内调控Hsf 1转录活性中的作用。探讨热休克因子1(Hsf 1)在应激反应和细胞凋亡中的生理作用。
英文摘要
DESCRIPTION (provided by applicant): The stress response is an evolutionary conserved cellular response mechanism characterized by the enhanced synthesis and accumulation of heat shock proteins (Hsps). Hsps associate with key components of the signaling pathways that control cell growth and development. The level of Hsps is critical since variations in the level of Hsps' expression result in aberrant growth, developmental defects and cell death. The stress-inducible expression of Hsps' encoding genes is regulated by a family of heat shock transcription factors (Hsfs). Hsf1 is the major stress-responsive family member and during its cycle of activation and inactivation undergoes complex modifications such as phosphorylation and association with number of regulatory proteins. Phosphorylation of evolutionary conserved serine residues S303 and S307 and association with Hsf binding protein 1 (Hsbp1), repress Hsf1 activity. The significance of having an evolutionary conserved Hsf1 in vertebrates has been tested through the disruption of the hsf1 gene in the mouse. Studies of the mutant mouse reveal that hsf1 plays a critical role in maintenance of essential cellular functions and as an anti-apoptotic protein. In this grant application, to continue our efforts to understand the role of phosphorylation on Hsf1 activity and function, and to determine the roles of Hsbp1, which is an Hsf1 interacting protein, in regulating Hsf1 activity, we have generated a mutant mouse model where the serine residues S303/S307 have been replaced by alanine residues (S303A/S307A), and we have disrupted the hsbp1 gene in mice. These mouse models, in addition to hsf1-deficient mice we already have generated, will be used to understand how manipulation of Hsf1 levels and activity controls cellular growth or stress response. We propose the following specific aims: I. To identify the signaling networks involved in Hsf1 regulation and the consequence of phosphorylation on Hsf1 activity, II. To determine the function of Hsbp1 in controlling Hsf1 transcriptional activity in vivo, and III. To characterize the physiological role of Hsf1 in regulation of the stress response and apoptosis.
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海外基金