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An integrated systems approach for understanding cellular responses to gamma radiation

机译:用于了解细胞对伽马辐射的反应的集成系统方法

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摘要

Cellular response to stress entails complex mRNA and protein abundance changes, which translate into physiological adjustments to maintain homeostasis as well as to repair and minimize damage to cellular components. We have characterized the response of the halophilic archaeon Halobacterium salinarum NRC-1 to 60Co ionizing gamma radiation in an effort to understand the correlation between genetic information processing and physiological change. The physiological response model we have constructed is based on integrated analysis of temporal changes in global mRNA and protein abundance along with protein–DNA interactions and evolutionarily conserved functional associations. This systems view reveals cooperation among several cellular processes including DNA repair, increased protein turnover, apparent shifts in metabolism to favor nucleotide biosynthesis and an overall effort to repair oxidative damage. Further, we demonstrate the importance of time dimension while correlating mRNA and protein levels and suggest that steady-state comparisons may be misleading while assessing dynamics of genetic information processing across transcription and translation.
机译:细胞对应激的反应需要复杂的mRNA和蛋白质丰度变化,这会转变为生理调节,以维持体内稳态以及修复和最大程度降低对细胞成分的损害。我们研究了嗜盐古细菌盐沼盐沼NRC-1对 60 Co电离γ辐射的响应,旨在了解遗传信息处理与生理变化之间的关系。我们构建的生理反应模型基于对全局mRNA和蛋白质丰度的时间变化以及蛋白质-DNA相互作用和进化上保守的功能结合的综合分析。该系统视图揭示了几种细胞过程之间的合作,包括DNA修复,增加的蛋白质更新,新陈代谢的明显转变(有利于核苷酸生物合成)和修复氧化损伤的整体努力。此外,我们证明了在关联mRNA和蛋白质水平时时间维度的重要性,并建议在评估跨转录和翻译的遗传信息处理动态时,稳态比较可能会产生误导。

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