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铜离子和氧化还原状态参与恶臭假单胞菌中丁烷单加氧酶调控的证据。

Evidence for involvement of copper ions and redox state in regulation of butane monooxygenase in Pseudomonas butanovora.

作者信息

Doughty D M, Kurth E G, Sayavedra-Soto L A, Arp D J, Bottomley P J

机构信息

Department of Microbiology, Oregon State University, Corvallis, OR 97331-3804, USA.

出版信息

J Bacteriol. 2008 Apr;190(8):2933-8. doi: 10.1128/JB.01409-07. Epub 2008 Feb 15.

Abstract

Pseudomonas butanovora possesses an alcohol-inducible alkane monooxygenase, butane monooxygenase (BMO), that initiates growth on C(2)-C(9) alkanes. A lacZ transcriptional reporter strain, P. butanovora bmoX::lacZ, in which the BMO promoter controls the expression of beta-galactosidase activity, was used to show that 1-butanol induced the BMO promoter in the presence or absence of O(2) when lactate-grown, BMO-repressed cells were washed free of lactate and incubated in NH(4)Cl-KNa phosphate buffer. In contrast, when lactate-grown cells of the reporter strain were incubated in phosphate buffer containing the mineral salts of standard growth medium, 1-butanol-dependent induction was significantly repressed at low O(2) (1 to 2% [vol/vol]) and totally repressed under anoxic conditions. The repressive effect of the mineral salts was traced to its copper content. In cells exposed to 1% (vol/vol) O(2), CuSO(4) (0.5 microM) repressed 1-butanol-dependent induction of beta-galactosidase activity. Under oxic conditions (20% O(2) [vol/vol]), significantly higher concentrations of CuSO(4) (2 microM) were required for almost complete repression of induction in lactate-grown cells. A combination of the Cu(2+) reducing agent Na ascorbate (100 microM) and CuSO(4) (0.5 microM) repressed the induction of beta-galactosidase activity under oxic conditions to the same extent that 0.5 microM CuSO(4) alone repressed it under anoxic conditions. Under oxic conditions, 2 microM CuSO(4) repressed induction of the BMO promoter less effectively in butyrate-grown cells of the bmoX::lacZ strain and of an R8-bmoX::lacZ mutant reporter strain with a putative BMO regulator, BmoR, inactivated. Under anoxic conditions, CuSO(4) repression remained highly effective, regardless of the growth substrate, in both BmoR-positive and -negative reporter strains.

摘要

布氏假单胞菌拥有一种酒精诱导型烷烃单加氧酶,即丁烷单加氧酶(BMO),它启动了对C(2)-C(9)烷烃的利用。构建了一个lacZ转录报告菌株,即布氏假单胞菌bmoX::lacZ,其中BMO启动子控制β-半乳糖苷酶活性的表达,以此表明当在乳酸盐中生长、BMO受抑制的细胞用不含乳酸盐的缓冲液洗涤并在NH(4)Cl-KNa磷酸盐缓冲液中培养时,无论有无氧气,1-丁醇都能诱导BMO启动子。相反,当报告菌株在含有标准生长培养基矿物质盐的磷酸盐缓冲液中培养时,在低氧(1%至2% [体积/体积])条件下,1-丁醇依赖性诱导受到显著抑制,在缺氧条件下则完全被抑制。矿物质盐的抑制作用可追溯到其铜含量。在暴露于1%(体积/体积)氧气的细胞中,CuSO(4)(0.5微摩尔)抑制了1-丁醇依赖性β-半乳糖苷酶活性的诱导。在有氧条件下(20%氧气[体积/体积]),对于在乳酸盐中生长的细胞,几乎完全抑制诱导需要显著更高浓度的CuSO(4)(2微摩尔)。在有氧条件下,Cu(2+)还原剂抗坏血酸钠(100微摩尔)和CuSO(4)(0.5微摩尔)的组合对β-半乳糖苷酶活性诱导的抑制程度与0.5微摩尔CuSO(4)在缺氧条件下单独抑制的程度相同。在有氧条件下,2微摩尔CuSO(4)对bmoX::lacZ菌株的丁酸盐生长细胞以及推定的BMO调节因子BmoR失活的R8-bmoX::lacZ突变报告菌株中BMO启动子诱导的抑制作用较弱。在缺氧条件下,无论生长底物如何,CuSO(4)的抑制作用在BmoR阳性和阴性报告菌株中都仍然非常有效。

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Involvement of BmoR and BmoG in n-alkane metabolism in 'Pseudomonas butanovora'.
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2
Propionate inactivation of butane monooxygenase activity in 'Pseudomonas butanovora': biochemical and physiological implications.
Microbiology (Reading). 2007 Nov;153(Pt 11):3722-3729. doi: 10.1099/mic.0.2007/008441-0.
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The anaerobic regulatory network required for Pseudomonas aeruginosa nitrate respiration.
J Bacteriol. 2007 Jun;189(11):4310-4. doi: 10.1128/JB.00240-07. Epub 2007 Mar 30.
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Annu Rev Biochem. 2007;76:223-41. doi: 10.1146/annurev.biochem.76.061505.175355.
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