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Predicting effects of structural stress in a genome-reduced model bacterial metabolism

机译:结构应激在基因组减少模型细菌新陈代谢的预测效应

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Mycoplasma pneumoniae is a human pathogen recently proposed as a genome-reduced model for bacterial systems biology. Here, we study the response of its metabolic network to different forms of structural stress, including removal of individual and pairs of reactions and knockout of genes and clusters of co-expressed genes. Our results reveal a network architecture as robust as that of other model bacteria regarding multiple failures, although less robust against individual reaction inactivation. Interestingly, metabolite motifs associated to reactions can predict the propagation of inactivation cascades and damage amplification effects arising in double knockouts. We also detect a significant correlation between gene essentiality and damages produced by single gene knockouts, and find that genes controlling high-damage reactions tend to be expressed independently of each other, a functional switch mechanism that, simultaneously, acts as a genetic firewall to protect metabolism. Prediction of failure propagation is crucial for metabolic engineering or disease treatment.. ? 2012 Macmillan Publishers Limited. All rights reserved
机译:近期支原体是一种人病原体,最近提出作为细菌系统生物学的基因组减少模型。在这里,我们研究其代谢网络的响应到不同形式的结构应力,包括去除个体和对基因的反应和敲除的共表达基因的簇。我们的结果揭示了一种作为多种故障的其他模型细菌的网络架构,尽管对单个反应灭活不那么稳健。有趣的是,与反应相关的代谢物基序可以预测双敲除出现的灭活级联和损伤扩增效应的繁殖。我们还检测单一基因敲除产生的基因物质和损伤之间的显着相关性,并发现控制高损伤反应的基因往往彼此独立地表达,同时充当遗传防火墙的功能开关机构代谢。预测失败繁殖对于代谢工程或疾病治疗至关重要..? 2012 Macmillan Publishers Limited。版权所有

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