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AauR-AauS双组分系统调控恶臭假单胞菌中酸性氨基酸的摄取和代谢。

The AauR-AauS two-component system regulates uptake and metabolism of acidic amino acids in Pseudomonas putida.

作者信息

Sonawane Avinash M, Singh Birendra, Röhm Klaus-Heinrich

机构信息

Department of Medicine, University of Florida, Gainesville, Florida, USA.

出版信息

Appl Environ Microbiol. 2006 Oct;72(10):6569-77. doi: 10.1128/AEM.00830-06.

Abstract

Pseudomonas putida KT2440 metabolizes a wide range of carbon and nitrogen sources, including many amino acids. In this study, a sigma54-dependent two-component system that controls the uptake and metabolism of acidic amino acids was identified. The system (designated aau, for acidic amino acid utilization) involves a sensor histidine kinase, AauS, encoded by PP1067, and a response regulator, AauR, encoded by PP1066. aauR and aauS deletion mutants were unable to efficiently utilize aspartate (Asp), glutamate (Glu), and glutamine (Gln) as sole sources of carbon and nitrogen. Growth of the mutants was partially restored when the above-mentioned amino acids were supplemented with glucose or succinate as an additional carbon source. Uptake of Gln, Asp, and asparagine (Asn) by the aauR mutant was moderately reduced, while Glu uptake was severely impaired. In the absence of glucose, the aauR mutant even secreted Glu into the medium. Furthermore, disruption of aauR affected the activities of several key enzymes of Glu and Asp metabolism, leading to the intracellular accumulation of Glu and greatly reduced survival times under conditions of nitrogen starvation. By a proteomics approach, four major proteins were identified that are downregulated during growth of the aauR mutant on Glu. Two of these were identified as periplasmic glutaminase/asparaginase and the solute-binding protein of a Glu/Asp transporter. Transcriptional analysis of lacZ fusions containing the putative promoter regions of these genes confirmed that their expression is indeed affected by the aau system. Three further periplasmic solute-binding proteins were strongly expressed during growth of the aauR deletion mutant on Glu but downregulated during cultivation on glucose/NH4+. These systems may be involved in amino acid efflux.

摘要

恶臭假单胞菌KT2440能代谢多种碳源和氮源,包括许多氨基酸。在本研究中,鉴定出了一个依赖σ54的双组分系统,该系统控制酸性氨基酸的摄取和代谢。该系统(命名为aau,即酸性氨基酸利用系统)涉及一个由PP1067编码的传感组氨酸激酶AauS和一个由PP1066编码的响应调节因子AauR。aauR和aauS缺失突变体不能有效地利用天冬氨酸(Asp)、谷氨酸(Glu)和谷氨酰胺(Gln)作为唯一的碳源和氮源。当上述氨基酸补充葡萄糖或琥珀酸作为额外碳源时,突变体的生长得到部分恢复。aauR突变体对Gln、Asp和天冬酰胺(Asn)的摄取适度减少,而Glu摄取严重受损。在没有葡萄糖的情况下,aauR突变体甚至将Glu分泌到培养基中。此外,aauR的破坏影响了Glu和Asp代谢的几种关键酶的活性,导致Glu在细胞内积累,并在氮饥饿条件下大大缩短了存活时间。通过蛋白质组学方法,鉴定出了四种主要蛋白质,它们在aauR突变体在Glu上生长期间表达下调。其中两种被鉴定为周质谷氨酰胺酶/天冬酰胺酶和Glu/Asp转运体的溶质结合蛋白。对含有这些基因推定启动子区域的lacZ融合体的转录分析证实,它们的表达确实受aau系统影响。另外三种周质溶质结合蛋白在aauR缺失突变体在Glu上生长期间强烈表达,但在葡萄糖/NH4+培养期间下调。这些系统可能参与氨基酸外排。

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