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首页> 外文期刊>MBio >The Metabolic Redox Regime of Pseudomonas putida Tunes Its Evolvability toward Novel Xenobiotic Substrates
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The Metabolic Redox Regime of Pseudomonas putida Tunes Its Evolvability toward Novel Xenobiotic Substrates

机译:恶臭假单胞菌的代谢氧化还原机制调整了其向新型异源生物底物的演化能力。

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Some environmental bacteria evolve with new capacities for the aerobic biodegradation of chemical pollutants by adapting preexisting redox reactions to novel compounds. The process typically starts by cooption of enzymes from an available route to act on the chemical structure of the substrate-to-be. The critical bottleneck is generally the first biochemical step, and most of the selective pressure operates on reshaping the initial reaction. The interim uncoupling of the novel substrate to preexisting Rieske nonheme iron oxygenases usually results in formation of highly mutagenic ROS. In this work, we demonstrate that the background metabolic regime of the bacterium that hosts an evolving catabolic pathway (e.g., biodegradation of the xenobiotic 2,4-DNT) determines whether the cells either adopt a genetic diversification regime or a robust ROS-tolerant status. Furthermore, our results offer new perspectives to the rational design of efficient whole-cell biocatalysts, which are pursued in contemporary metabolic engineering. ABSTRACT During evolution of biodegradation pathways for xenobiotic compounds involving Rieske nonheme iron oxygenases, the transition toward novel substrates is frequently associated with faulty reactions. Such events release reactive oxygen species (ROS), which are endowed with high mutagenic potential. In this study, we evaluated how the operation of the background metabolic network by an environmental bacterium may either foster or curtail the still-evolving pathway for 2,4-dinitrotoluene (2,4-DNT) catabolism. To this end, the genetically tractable strain Pseudomonas putida EM173 was implanted with the whole genetic complement necessary for the complete biodegradation of 2,4-DNT (recruited from the environmental isolate Burkholderia sp. R34). By using reporter technology and direct measurements of ROS formation, we observed that the engineered P.?putida strain experienced oxidative stress when catabolizing the nitroaromatic substrate. However, the formation of ROS was neither translated into significant activation of the SOS response to DNA damage nor did it result in a mutagenic regime (unlike what has been observed in Burkholderia sp. R34, the original host of the pathway). To inspect whether the tolerance of P.?putida to oxidative challenges could be traced to its characteristic reductive redox regime, we artificially altered the NAD(P)H pool by means of a water-forming, NADH-specific oxidase. Under the resulting low-NAD(P)H status, catabolism of 2,4-DNT triggered a conspicuous mutagenic and genomic diversification scenario. These results indicate that the background biochemical network of environmental bacteria ultimately determines the evolvability of metabolic pathways. Moreover, the data explain the efficacy of some bacteria (e.g., pseudomonads) to host and evolve with new catabolic routes.
机译:通过使先前存在的氧化还原反应适应新型化合物,某些环境细菌具有对化学污染物进行好氧生物降解的新能力。该过程通常是通过从可用途径中共同选择酶来作用于待加工底物的化学结构而开始的。关键瓶颈通常是生化的第一步,大多数选择压力会影响初始反应的形状。新型底物与先前存在的Rieske非血红素铁加氧酶之间的暂时解偶联通常导致形成高度诱变的ROS。在这项工作中,我们证明了宿主细菌的代谢过程(例如,异生2,4-DNT的生物降解)的背景代谢机制决定了细胞是否采用遗传多样化机制或强大的ROS耐受状态。此外,我们的结果为有效设计全细胞生物催化剂的合理设计提供了新的视角,这是当代代谢工程学所追求的。摘要在涉及Rieske非血红素铁氧合酶的异种生物化合物的生物降解途径的进化过程中,向新型底物的过渡通常与错误的反应有关。此类事件释放了活性氧物质(ROS),具有很高的诱变潜力。在这项研究中,我们评估了环境细菌对背景代谢网络的操作可能如何促进或减少2,4-二硝基甲苯(2,4-DNT)分解代谢仍在发展的途径。为此,将遗传易处理的恶臭假单胞菌EM173植入了2,4-DNT完全生物降解所必需的完整遗传补体(来自环境分离株Burkholderia sp。R34)。通过使用报告子技术和直接测量ROS的形成,我们观察到工程化的恶臭假单胞菌菌株在分解硝基芳族底物时会经历氧化应激。但是,ROS的形成既未转化为对DNA损伤的SOS反应的显着激活,也未导致诱变机制(与该途径的原始宿主Burkholderia sp。R34中观察到的不同)。为了检查是否可以将腐臭假单胞菌对氧化挑战的耐受性追溯到其特有的还原氧化还原机制,我们通过形成水的NADH特异性氧化酶人工改变了NAD(P)H库。在产生的低NAD(P)H状态下,2,4-DNT的分解代谢引发了引人注目的诱变和基因组多样化情况。这些结果表明环境细菌的背景生化网络最终决定了代谢途径的发展。而且,数据解释了某些细菌(例如,假单胞菌)对新的分解代谢途径进行宿主和进化的功效。

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