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嗜果糖脱硫弧菌对锝(VII)的还原作用由镍铁氢化酶介导。

Reduction of technetium(VII) by Desulfovibrio fructosovorans is mediated by the nickel-iron hydrogenase.

作者信息

De Luca G, de Philip P, Dermoun Z, Rousset M, Verméglio A

机构信息

CEA Cadarache, DSV/DEVM/Laboratoire de Bioénergétique Cellulaire, 13108 Saint Paul-Lez-Durance, France.

出版信息

Appl Environ Microbiol. 2001 Oct;67(10):4583-7. doi: 10.1128/AEM.67.10.4583-4587.2001.

Abstract

Resting cells of the sulfate-reducing bacterium Desulfovibrio fructosovorans grown in the absence of sulfate had a very high Tc(VII)-reducing activity, which led to the formation of an insoluble black precipitate. The involvement of a periplasmic hydrogenase in Tc(VII) reduction was indicated (i) by the requirement for hydrogen as an electron donor, (ii) by the tolerance of this activity to oxygen, and (iii) by the inhibition of this activity by Cu(II). Moreover, a mutant carrying a deletion in the nickel-iron hydrogenase operon showed a dramatic decrease in the rate of Tc(VII) reduction. The restoration of Tc(VII) reduction by complementation of this mutation with nickel-iron hydrogenase genes demonstrated the specific involvement of the periplasmic nickel-iron hydrogenase in the mechanism in vivo. The Tc(VII)-reducing activity was also observed with cell extracts in the presence of hydrogen. Under these conditions, Tc(VII) was reduced enzymatically to soluble Tc(V) or precipitated to an insoluble black precipitate, depending on the chemical nature of the buffer used. The purified nickel-iron hydrogenase performed Tc(VII) reduction and precipitation at high rates. These series of genetic and biochemical approaches demonstrated that the periplasmic nickel-iron hydrogenase of sulfate-reducing bacteria functions as a Tc(VII) reductase. The role of cytochrome c(3) in the mechanism is also discussed.

摘要

在无硫酸盐条件下培养的硫酸盐还原菌果糖脱硫弧菌的静息细胞具有非常高的还原Tc(VII)的活性,这导致形成一种不溶性黑色沉淀。周质氢化酶参与Tc(VII)还原的证据如下:(i)需要氢气作为电子供体;(ii)该活性对氧气具有耐受性;(iii)该活性受到Cu(II)的抑制。此外,镍铁氢化酶操纵子中存在缺失的突变体显示Tc(VII)还原速率显著降低。用镍铁氢化酶基因对该突变进行互补后,Tc(VII)还原得以恢复,这证明了周质镍铁氢化酶在体内机制中的特定参与。在有氢气存在的情况下,细胞提取物也表现出还原Tc(VII)的活性。在这些条件下,根据所用缓冲液的化学性质,Tc(VII)可被酶促还原为可溶性Tc(V)或沉淀为不溶性黑色沉淀。纯化的镍铁氢化酶能高效地进行Tc(VII)的还原和沉淀。这一系列的遗传学和生物化学方法表明,硫酸盐还原菌的周质镍铁氢化酶作为一种Tc(VII)还原酶发挥作用。文中还讨论了细胞色素c(3)在该机制中的作用。

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