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邻苯二甲酸通过严格和直接的转录抑制作用避免了污染物降解菌中 4-羟基苯甲酸的降解。

Strict and direct transcriptional repression of the pobA gene by benzoate avoids 4-hydroxybenzoate degradation in the pollutant degrader bacterium Cupriavidus necator JMP134.

机构信息

Facultad de Ingeniería y Ciencias, Universidad Adolfo Ibáñez, Santiago, Chile Millennium Nucleus on Plant Functional Genomics, Center for Advanced Studies in Ecology, P. Universidad Católica de Chile, Santiago, Chile.

出版信息

Environ Microbiol. 2011 Jun;13(6):1590-600. doi: 10.1111/j.1462-2920.2011.02470.x. Epub 2011 Mar 30.

Abstract

As other environmental bacteria, Cupriavidus necator JMP134 uses benzoate as preferred substrate in mixtures with 4-hydroxybenzoate, strongly inhibiting its degradation. The mechanism underlying this hierarchical use was studied. A C. necator benA mutant, defective in the first step of benzoate degradation, is unable to metabolize 4-hydroxybenzoate when benzoate is also included in the medium, indicating that this substrate and not one of its catabolic intermediates is directly triggering repression. Reverse transcription polymerase chain reaction analysis revealed that 4-hydroxybenzoate 3-hydroxylase-encoding pobA transcripts are nearly absent in presence of benzoate and a fusion of pobA promoter to lacZ reporter confirmed that benzoate drastically decreases the transcription of this gene. Expression of pobA driven by a heterologous promoter in C. necator benA mutant, allows growth on 4-hydroxybenzoate in presence of benzoate, overcoming its repressive effect. In contrast with other bacteria, regulators of benzoate catabolism do not participate in repression of 4-hydroxybenzoate degradation. Moreover, the effect of benzoate on pobA promoter can be observed in heterologous strains with the sole presence of PobR, the transcriptional activator of pobA gene, indicating that PobR is enough to fully reproduce the phenomenon. This novel mechanism for benzoate repression is probably mediated by direct action of benzoate over PobR.

摘要

与其他环境细菌一样,中温脱氮假单胞菌 JMP134 在与 4-羟基苯甲酸混合时使用苯甲酸作为首选底物,强烈抑制其降解。研究了这种分层利用的机制。在包含培养基中的苯甲酸时,不能代谢 4-羟基苯甲酸的 C. necator benA 突变体,表明该底物而不是其代谢中间产物之一直接触发抑制。逆转录聚合酶链反应分析表明,在存在苯甲酸的情况下,4-羟基苯甲酸 3-羟化酶编码的 pobA 转录物几乎不存在,并且 pobA 启动子与 lacZ 报告基因的融合证实苯甲酸大大降低了该基因的转录。在 C. necator benA 突变体中,由异源启动子驱动的 pobA 表达,允许在存在苯甲酸的情况下生长在 4-羟基苯甲酸上,克服了其抑制作用。与其他细菌不同,苯甲酸代谢的调节剂不参与 4-羟基苯甲酸降解的抑制。此外,在仅存在 pobA 基因的转录激活子 PobR 的异源菌株中,可以观察到苯甲酸对 pobA 启动子的影响,表明 PobR 足以完全再现该现象。这种新的苯甲酸抑制机制可能是由苯甲酸对 PobR 的直接作用介导的。

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