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中文摘要
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描述(由申请人提供):NO的过量产生与引起神经退行性疾病、心血管氧化损伤和癌症有关。该建议的目的是测试一个假设,即NO修饰蛋白质中的铁硫簇代表NO细胞毒性的急性细胞氧化损伤。与血红素中的可逆NO结合不同,NO破坏铁硫簇形成稳定的蛋白质结合的二亚硝酰铁复合物(DNIC)。由于铁硫蛋白参与多种生物过程,主要是能量转换、DNA修复、氨基酸代谢、血红素和生物素生物合成以及铁稳态,NO对铁硫簇的修饰可能导致多种细胞功能的失效,并最终导致人类疾病如癌症的发展。该提案的总体目标是研究1)NO对铁硫簇生物修饰的氧化还原反应,以及2)NO修饰的铁硫簇修复的细胞机制。目的一是利用放射性标记的铁硫簇,定量分析铁硫簇释放的铁和硫化物以及NO与蛋白质结合的DNIC的形成。目的二是测定铁硫簇合物和小分子硫醇与NO在E.大肠杆菌和培养的人成纤维细胞,并确定在大肠杆菌中特异性的NO修饰的铁硫蛋白。大肠杆菌细胞的蛋白质组学方法。目的3是研究L-半胱氨酸介导的蛋白质结合的DNIC的分解的氧化还原反应,基于初步的研究表明,L-半胱氨酸可以分解蛋白质结合的DNIC,并促进新的铁-硫簇在蛋白质中的重新组装。目的4探讨L-半胱氨酸在修复E.大肠杆菌细胞,其中细胞内L-半胱氨酸含量将被调节。这项研究如果成功,将为开发预防或减轻NO细胞毒性引起的细胞氧化损伤的治疗方法提供基础知识。
英文摘要
DESCRIPTION (provided by applicant): Excessive production of NO has been implicated in causing neurodegenerative diseases, cardiovascular oxidative injuries and cancers. This proposal is aimed to test a hypothesis that modification of iron-sulfur clusters in proteins by NO represents an acute cellular oxidative damage of NO cytotoxicity. Unlike the reversible NO binding in heme, NO disrupts iron-sulfur clusters forming the stable protein-bound dinitrosyl iron complex (DNIC). As iron-sulfur proteins are involved in diverse biological processes, primarily in energy conversion, DNA repair, amino acid metabolism, heme and biotin biosynthesis and iron homeostasis, modification of iron-sulfur clusters by NO could lead to failure of multiple cellular functions and eventually contribute to development of human diseases such as cancer. The overall goals of the proposal are to investigate 1) the redox reaction underlying the biological modification of iron-sulfur clusters by NO, and 2) the cellular mechanism by which the NO-modified iron-sulfur clusters are repaired. Aim 1 is to quantitatively analyze the iron and sulfide released from iron-sulfur clusters and formation of the protein-bound DNIC by NO using the radioactive labeled iron-sulfur clusters. Aim 2 is to determine the relative reactivity of iron sulfur clusters and small molecular thiols with NO in both E. coli and cultured human fibroblast cells and to identify specific NO-modified iron-sulfur proteins in E. coli cells using the proteomic approaches. Aim 3 is to nvestigate the redox reactions of the L-cysteine-mediated decomposition of the protein-bound DNIC, based on preliminary studies showing that L-cysteine can decompose the protein-bound DNIC and facilitate reassembly of new iron-sulfur clusters in the proteins. Aim 4 is to explore the physiological role of L-cysteine in repairing the protein-bound DNIC in the E. coli cells in which the intracellular L-cysteine content will be modulated. The proposed research, if successful, will provide fundamental knowledge for developing therapeutic approaches to prevent or alleviate cellular oxidative damages inflicted by NO cytotoxicity.
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Nitric Oxide Cytotoxicity and Iron-Sulfur Proteins
Nitric Oxide Cytotoxicity and Iron-Sulfur Proteins
Nitric Oxide Cytotoxicity and Iron-Sulfur Proteins
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