首页> 外文期刊>Free Radical Biology and Medicine: The Official Journal of the Oxygen Society >Quantitative proteomics reveals mitochondrial respiratory chain as a dominant target for carbon ion radiation: Delayed reactive oxygen species generation caused DNA damage
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Quantitative proteomics reveals mitochondrial respiratory chain as a dominant target for carbon ion radiation: Delayed reactive oxygen species generation caused DNA damage

机译:定量蛋白质组学显示线粒体呼吸链作为碳离子辐射的主要目标:延迟的活性氧物种产生导致DNA损伤

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摘要

Heavy ion radiotherapy has shown great promise for cancer therapy. Understanding the cellular response mechanism to heavy ion radiation is required to explore measures of overcoming devastating side effects. Here, we performed a quantitative proteomic analysis to investigate the mechanism of carbon ion irradiation on human AHH-1 lymphoblastoid cells. We identified 4602 proteins and quantified 4569 proteins showing high coverage in the mitochondria. Data are available via ProteomeXchange with identifier PXD008351. After stringent filtering, 290 proteins were found to be significantly up-regulated and 16 proteins were down-regulated. Functional analysis revealed that these up-regulated proteins were enriched in the process of DNA damage repair, mitochondrial ribosome, and particularly mitochondrial respiratory chain, accounting for approximately 50% of the accumulated proteins. Bioinformatics and functional analysis demonstrated that these up-regulated mitochondrial respiratory chain proteins enhanced ATP production and simultaneously reactive oxygen species release. More importantly, increased reactive oxygen species led to secondary organelle injury and lagged DNA double-strand breaks. Consistently, the expression of antioxidant enzymes was up-regulated for free radical scavenging. The mechanism of lagged secondary injury originated from disturbances in the mitochondrial respiratory chain. Our results provided a novel target for cell self-repair against heavy ion radiation-induced cellular damage.
机译:重离子放射疗法对癌症治疗表现出了很大的承诺。理解细胞响应机制对重离子辐射需要探索克服毁灭性副作用的措施。这里,我们进行了定量蛋白质组学分析,以研究人AHH-1淋巴细胞细胞的碳离子辐射机制。我们确定了4602个蛋白质和量化的4569蛋白,显示在线粒体中的高覆盖率。数据可通过Proteomexchange提供标识符PXD008351。经过严格过滤后,发现290个蛋白质明显上调,下调16个蛋白质。功能分析显示,这些上调蛋白质在DNA损伤修复,线粒体核糖体和特别是线粒体呼吸链的过程中富集,占累积蛋白的约50%。生物信息学和功能分析表明,这些上调线粒体呼吸链蛋白增强了ATP生产和同时反应性氧物种释放。更重要的是,增加的反应性氧物种导致次级细胞内损伤和滞后的DNA双链断裂。始终如一地,抗氧化酶的表达被上调用于自由基清除。滞后二次损伤的机制源于线粒体呼吸链中的干扰。我们的结果为细胞自修复的新靶点提供了针对重离子辐射诱导的细胞损伤的细胞自我修复。

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  • 作者单位

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Beijing Inst Radiat Med Dept Radiat Toxicol &

    Oncol Beijing Key Lab Radiobiol Beijing 100850;

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Chinese Acad Sci Inst Modern Phys Dept Heavy Ion Radiat Med Lanzhou 730000 Gansu Peoples R;

    Gen Hosp Lanzhou Key Lab Plateau Environm Damage Control Lanzhou 730050 Gansu Peoples R China;

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Beijing Inst Radiat Med Dept Radiat Toxicol &

    Oncol Beijing Key Lab Radiobiol Beijing 100850;

    Beijing Inst Radiat Med Dept Radiat Toxicol &

    Oncol Beijing Key Lab Radiobiol Beijing 100850;

    Chinese Acad Sci Inst Modern Phys Dept Heavy Ion Radiat Med Lanzhou 730000 Gansu Peoples R;

    Beijing Inst Radiat Med Beijing Proteome Res Ctr Natl Ctr Prot Sci Beijing State Key Lab Prote;

    Beijing Inst Radiat Med Dept Radiat Toxicol &

    Oncol Beijing Key Lab Radiobiol Beijing 100850;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

    Quantitative proteomics; Mitochondria; Heavy ion radiation; iTRAQ; Oxidative stress;

    机译:定量蛋白质组学;线粒体;重离子辐射;ITRAQ;氧化应激;

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