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根瘤菌 hupE 编码一种镍转运蛋白,该蛋白对于氢化酶活性是必需的。

Rhizobium leguminosarum hupE encodes a nickel transporter required for hydrogenase activity.

机构信息

Departamento de Biotecnología, Escuela Técnica Superior de Ingenieros Agrónomos, Universidad Politécnica de Madrid, Madrid, Spain.

出版信息

J Bacteriol. 2010 Feb;192(4):925-35. doi: 10.1128/JB.01045-09. Epub 2009 Dec 18.

Abstract

Synthesis of the hydrogen uptake (Hup) system in Rhizobium leguminosarum bv. viciae requires the function of an 18-gene cluster (hupSLCDEFGHIJK-hypABFCDEX). Among them, the hupE gene encodes a protein showing six transmembrane domains for which a potential role as a nickel permease has been proposed. In this paper, we further characterize the nickel transport capacity of HupE and that of the translated product of hupE2, a hydrogenase-unlinked gene identified in the R. leguminosarum genome. HupE2 is a potential membrane protein that shows 48% amino acid sequence identity with HupE. Expression of both genes in the Escherichia coli nikABCDE mutant strain HYD723 restored hydrogenase activity and nickel transport. However, nickel transport assays revealed that HupE and HupE2 displayed different levels of nickel uptake. Site-directed mutagenesis of histidine residues in HupE revealed two motifs (HX(5)DH and FHGX[AV]HGXE) that are required for HupE functionality. An R. leguminosarum double mutant, SPF22A (hupE hupE2), exhibited reduced levels of hydrogenase activity in free-living cells, and this phenotype was complemented by nickel supplementation. Low levels of symbiotic hydrogenase activity were also observed in SPF22A bacteroid cells from lentil (Lens culinaris L.) root nodules but not in pea (Pisum sativum L.) bacteroids. Moreover, heterologous expression of the R. leguminosarum hup system in bacteroid cells of Rhizobium tropici and Mesorhizobium loti displayed reduced levels of hydrogen uptake in the absence of hupE. These data support the role of R. leguminosarum HupE as a nickel permease required for hydrogen uptake under both free-living and symbiotic conditions.

摘要

根瘤菌属植物 bv. 豌豆中氢摄取(Hup)系统的合成需要 18 个基因簇(hupSLCDEFGHIJK-hypABFCDEX)的功能。其中,hupE 基因编码一种具有六个跨膜结构域的蛋白质,其作为镍渗透酶的潜在作用已被提出。在本文中,我们进一步表征了 HupE 的镍转运能力以及在根瘤菌属基因组中鉴定的与氢化酶无关的基因 hupE2 的翻译产物的镍转运能力。HupE2 是一种潜在的膜蛋白,与 HupE 具有 48%的氨基酸序列同一性。在大肠杆菌 nikABCDE 突变株 HYD723 中表达这两个基因恢复了氢化酶活性和镍转运。然而,镍转运试验表明,HupE 和 HupE2 显示出不同水平的镍摄取。HupE 中组氨酸残基的定点突变揭示了两个基序(HX(5)DH 和 FHGX[AV]HGXE),这些基序是 HupE 功能所必需的。根瘤菌属双突变体 SPF22A(hupE hupE2)在自由生活细胞中表现出氢化酶活性降低的表型,这一表型通过镍补充得到了补充。在豌豆根瘤中的 SPF22A 类菌体细胞中也观察到低水平的共生氢化酶活性,但在豌豆类菌体细胞中没有观察到。此外,在 Rhizobium tropici 和 Mesorhizobium loti 的类菌体细胞中异源表达根瘤菌属 hup 系统时,在没有 hupE 的情况下,氢的摄取水平降低。这些数据支持根瘤菌属 HupE 作为一种镍渗透酶的作用,这种渗透酶在自由生活和共生条件下都需要用于氢的摄取。

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