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Dissection of the mechanisms of action of evolutionarily conserved apoptotic pathway components

Dissection of the mechanisms of action of evolutionarily conserved apoptotic pathway components
解析进化上保守的凋亡途径成分的作用机制
批准号:
nhmrc : 284513
负责人:
A/Pr Christine Hawkins
金额:
$16.9万
依托单位:
依托单位国家:
澳大利亚
项目类别:
NHMRC Project Grants
财政年份:
2004
资助国家:
澳大利亚
项目状态:
已结题
起止时间:
2004-01-01 至 2006-12-31

项目摘要

项目成果

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中文摘要
翻译
动物通过一种被称为细胞凋亡的高度受控的过程来清除不需要的细胞。细胞凋亡缺陷可能导致癌症或自身免疫性疾病。相反,中风和阿尔茨海默氏症等疾病与细胞过度死亡有关。为了开发在细胞无法发生时促进细胞凋亡的药物,或防止不适当的细胞死亡,有必要阐明控制细胞凋亡的分子机制。哺乳动物细胞死亡机制中第一个被识别的成分是Bcl2;这是一种与癌症发生有关的蛋白质。尽管此后进行了大量研究,但目前尚不清楚Bcl-2和相关蛋白的功能。该项目利用先前在模式遗传有机体(蛔虫)中进行的遗传和生化研究来解决这一重要问题。动物细胞死亡途径组分可以被引入酵母中,从而激活引入的途径导致酵母死亡,其抑制促进酵母存活。我们已经使用这种方法在酵母中重建了蠕虫细胞死亡途径和一个主要的哺乳动物细胞凋亡途径。携带这些重组途径的酵母菌株将被用来测试候选哺乳动物蛋白和它们可能的蛔虫蛋白的功能等价性。该系统还将被用来识别和表征调控哺乳动物和蠕虫细胞死亡的新蛋白质。了解关键分子调节细胞凋亡的方式将有助于开发针对许多疾病的诊断和治疗试剂,在这些疾病中,细胞死亡调节受到干扰。该项目利用细胞凋亡的进化保守性来描述重要的哺乳动物细胞凋亡调节因子的作用机制,并寻找新的哺乳动物细胞凋亡途径成分。以这种方式鉴定的蛋白质很可能是重要的凋亡调节因子,因为我们的方法确保了它们的功能在进化上是保守的。
英文摘要
Animals eliminate unwanted cells through a highly controlled process termed apoptosis. Defects in apoptosis can contribute to cancer or autoimmune disease. Conversely, diseases such as stroke and Alzheimer's disease have been linked to excessive cell death. To develop drugs that promote apoptosis when it fails to occur, or prevent inappropriate cell death, it is necessary to elucidate the molecular mechanisms controlling apoptosis. The first recognised component of the mammalian cell death machinery was Bcl-2; a protein associated with development of cancer. Despite much research since then, the way in which Bcl-2 and related proteins function is still unknown. This project capitalises on previous genetic and biochemical studies in a model genetic organism (the roundworm) to address this important issue. Animal cell death pathway components can be introduced into yeast such that activation of the introduced pathways leads to yeast death and its inhibition promotes yeast survival. We have used this approach to reconstitute the worm cell death pathway and a major mammalian apoptosis pathway in yeast. Yeast strains bearing these reconstituted pathways will be used to test functional equivalence of candidate mammalian proteins and their putative roundworm counterparts. The system will also be exploited to identify and characterise novel proteins that regulate cell death in mammals and worms. Understanding the way in which key molecules regulate apoptosis will assist in the development of diagnostic and therapeutic reagents for many diseases in which cell death regulation is perturbed. This project capitalises on the evolutionary conservation of apoptosis to characterise the mechanisms of action of important mammalian apoptotic regulators and to seek novel mammalian apoptotic pathway components. Proteins identified in this way are likely to be important apoptotic regulators, as our approach ensures that their functions are evolutionarily conserved.
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