Suppr超能文献

恶臭假单胞菌CSV86中与转运和代谢相关基因簇的转录调控导致优先利用苯甲酸盐而非葡萄糖。

Transcriptional Modulation of Transport- and Metabolism-Associated Gene Clusters Leading to Utilization of Benzoate in Preference to Glucose in Pseudomonas putida CSV86.

作者信息

Choudhary Alpa, Modak Arnab, Apte Shree K, Phale Prashant S

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Powai, Mumbai, India.

Molecular Biology Division, Bhabha Atomic Research Center, Trombay, Mumbai, India.

出版信息

Appl Environ Microbiol. 2017 Sep 15;83(19). doi: 10.1128/AEM.01280-17. Print 2017 Oct 1.

Abstract

The effective elimination of xenobiotic pollutants from the environment can be achieved by efficient degradation by microorganisms even in the presence of sugars or organic acids. Soil isolate CSV86 displays a unique ability to utilize aromatic compounds prior to glucose. The draft genome and transcription analyses revealed that glucose uptake and benzoate transport and metabolism genes are clustered at the and loci, respectively, as two distinct operons. When grown on glucose plus benzoate, CSV86 displayed significantly higher expression of the locus in the first log phase and of the locus in the second log phase. Kinetics of substrate uptake and metabolism matched the transcription profiles. The inability of succinate to suppress benzoate transport and metabolism resulted in coutilization of succinate and benzoate. When challenged with succinate or benzoate, glucose-grown cells showed rapid reduction in locus transcription, glucose transport, and metabolic activity, with succinate being more effective at the functional level. Benzoate and succinate failed to interact with or inhibit the activities of glucose transport components or metabolic enzymes. The data suggest that succinate and benzoate suppress glucose transport and metabolism at the transcription level, enabling CSV86 to preferentially metabolize benzoate. This strain thus has the potential to be an ideal host to engineer diverse metabolic pathways for efficient bioremediation. strains play an important role in carbon cycling in the environment and display a hierarchy in carbon utilization: organic acids first, followed by glucose, and aromatic substrates last. This limits their exploitation for bioremediation. This study demonstrates the substrate-dependent modulation of and operons in CSV86, wherein benzoate suppresses glucose transport and metabolism at the transcription level, leading to preferential utilization of benzoate over glucose. Interestingly, succinate and benzoate are cometabolized. These properties are unique to this strain compared to other pseudomonads and open up avenues to unravel novel regulatory processes. Strain CSV86 can serve as an ideal host to engineer and facilitate efficient removal of recalcitrant pollutants even in the presence of simpler carbon sources.

摘要

即使在存在糖类或有机酸的情况下,通过微生物的高效降解也能够实现从环境中有效消除外源性污染物。土壤分离株CSV86展现出在利用葡萄糖之前优先利用芳香族化合物的独特能力。基因组草图和转录分析表明,葡萄糖摄取以及苯甲酸转运和代谢基因分别作为两个不同的操纵子,聚集在 和 位点。当在葡萄糖加苯甲酸的培养基上生长时,CSV86在第一个对数期显著上调 位点的表达,在第二个对数期显著上调 位点的表达。底物摄取和代谢动力学与转录谱相匹配。琥珀酸无法抑制苯甲酸的转运和代谢,导致琥珀酸和苯甲酸被共同利用。当用琥珀酸或苯甲酸进行挑战时,以葡萄糖为碳源生长的细胞在 位点转录、葡萄糖转运和代谢活性方面迅速降低,在功能水平上琥珀酸的作用更明显。苯甲酸和琥珀酸不会与葡萄糖转运成分或代谢酶的活性相互作用或产生抑制。数据表明,琥珀酸和苯甲酸在转录水平上抑制葡萄糖转运和代谢,使CSV86能够优先代谢苯甲酸。因此,该菌株有可能成为构建多种代谢途径以实现高效生物修复的理想宿主。假单胞菌属菌株在环境中的碳循环中发挥重要作用,并且在碳利用方面呈现出一种层次结构:首先利用有机酸,其次是葡萄糖,最后是芳香族底物。这限制了它们在生物修复中的应用。本研究证明了CSV86中 和 操纵子的底物依赖性调控,其中苯甲酸在转录水平上抑制葡萄糖转运和代谢,导致优先利用苯甲酸而非葡萄糖。有趣的是,琥珀酸和苯甲酸被共代谢。与其他假单胞菌相比,这些特性是该菌株所独有的,为揭示新的调控过程开辟了道路。菌株CSV86可作为理想宿主,即使在存在更简单碳源的情况下,也能构建并促进难降解污染物的高效去除。

相似文献

3
Benzoate transport in Pseudomonas putida CSV86.恶臭假单胞菌CSV86中的苯甲酸酯转运
FEMS Microbiol Lett. 2017 Jul 3;364(12). doi: 10.1093/femsle/fnx118.

本文引用的文献

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验