A novel regulator of p53 function
A novel regulator of p53 function
批准号:
6647144
负责人:
VIMLA BAND
金额:
$27.06万
依托单位国家:
美国
项目类别:
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-08-15 至 2007-07-31
关键词:
Bax gene /protein DNA damage acetylation acyltransferase apoptosis binding proteins cell cycle proteins cell line gel filtration chromatography gel mobility shift assay gene deletion mutation gene expression genetic promoter element genetic transcription immunoprecipitation molecular site northern blottings oncoprotein p21 p53 gene /protein point mutation polymerase chain reaction protein protein interaction protein structure function site directed mutagenesis transfection western blottings
中文摘要
描述(由申请人提供):P53肿瘤抑制基因产物是细胞周期停滞和细胞凋亡的关键介质,以应对遗传毒性应激。这些反应对于防止具有不稳定基因组的易转化细胞的出现至关重要。P53作为DNA损伤检查点的生物学作用直接归因于它作为序列特异性转录激活因子的生化功能。事实上,几乎所有与癌症相关的p53突变都会取消这一功能。P53的反式激活功能需要辅助蛋白复合体,即共激活因子,如p300/CBP家族。我们已经确定HADA复合体是酵母ADA复合体的同系物,是一种新的P53共激活因子。我们假设,含组蛋白乙酰转移酶(HAT)的HADA复合体本身或与p300/CBP一起,通过乙酰化P53和染色质相关的组蛋白来调节P53介导的DNA损伤反应的程度或性质。为了解决这些假说,我们将首先描述研究细胞中人ADA复合体的组成,确定ADA3是否是像我们初步结果所表明的那样,将ADA复合体招募到P53中,并使用突变定位ADA3和P53结构域,从而调节它们之间的相互作用。我们将使用过表达和显性-负性方法来研究ADA复合体是否作为P53的辅助激活因子,并确定辅助激活功能是否与P53靶基因启动子上的组蛋白乙酰化和/或P53乙酰化有关。最后,我们将量化p53介导的细胞周期停滞和对DNA损伤的凋亡反应,以评估ADA复合体和p300/CBP在调控p53介导的DNA损伤反应中的作用,使用过度表达和显性-阴性策略。这些研究的成功结果将确定一种调控P53介导的DNA损伤反应的新机制,并为未来人类癌症诊断试剂和合理治疗的发展提供潜在的靶点。
英文摘要
DESCRIPTION (provided by applicant): The p53 tumor suppressor gene product is a key mediator of cell cycle arrest and apoptosis in response to genotoxic stress. These responses are essential to prevent the emergence of transformation-prone cells with unstable genomes. The biological role of p53 as a DNA damage checkpoint is directly attributable to its biochemical function as a sequence-specific transcriptional activator. Indeed, nearly all cancer-associated p53 mutations abrogate this function. The transactivation function of p53 requires accessory protein complexes, the coactivators, such as the p300/CBP family. We have identified hADA complex, the homologue of the yeast ADA complex, as a novel coactivator of p53. We hypothesize that histone acetyl transferase (HAT)-containing hADA complex, either by itself or in concert with p300/CBP, regulates either the extent or the nature of p53-mediated DNA damage response by acetylating p53 and chromatin-associated histones in p53 target promoters.To address these hypotheses, we will first characterize the components of human ADA complex in cells under study, determine if ADA3 is the component that recruits ADA complex to p53, as our preliminary results suggest, and use mutagenesis to map the ADA3 and p53 domains, that mediate their interaction. We will use overexpression and dominant-negative approaches to investigate if ADA complex functions as a coactivator for p53, and determine if coactivator function relates to histone acetylation on p53 target gene promoters and/or p53 acetylation. Finally, we will quantify p53-mediated cell cycle arrest and apoptotic responses to DNA damage to assess the role of ADA complex versus p300/CBP in regulating p53-mediated DNA damage response, using overexpression as well as dominant-negative strategies. A successful outcome of the proposed studies should identify a novel mechanism for regulating p53-mediated DNA damage response, and provide potential targets for future development of diagnostic agents and rational therapeutics for human cancer.
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