首页> 美国卫生研究院文献>Journal of Bacteriology >Docking of the Periplasmic FecB Binding Protein to the FecCD Transmembrane Proteins in the Ferric Citrate Transport System of Escherichia coli
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Docking of the Periplasmic FecB Binding Protein to the FecCD Transmembrane Proteins in the Ferric Citrate Transport System of Escherichia coli

机译:在大肠杆菌的柠檬酸铁转运系统中将周质FecB结合蛋白与FecCD跨膜蛋白对接。

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摘要

Citrate-mediated iron transport across the cytoplasmic membrane is catalyzed by an ABC transporter that consists of the periplasmic binding protein FecB, the transmembrane proteins FecC and FecD, and the ATPase FecE. Salt bridges between glutamate residues of the binding protein and arginine residues of the transmembrane proteins are predicted to mediate the positioning of the substrate-loaded binding protein on the transmembrane protein, based on the crystal structures of the ABC transporter for vitamin B12, consisting of the BtuF binding protein and the BtuCD transmembrane proteins (E. L. Borths et al., Proc. Natl. Acad. Sci. USA 99:16642-16647, 2002). Here, we examined the role of the residues predicted to be involved in salt-bridge formation between FecB and FecCD by substituting these residues with alanine, cysteine, arginine, and glutamate and by analyzing the citrate-mediated iron transport of the mutants. Replacement of E93 in FecB with alanine [FecB(E93A)], cysteine, or arginine nearly abolished citrate-mediated iron transport. Mutation FecB(E222R) nearly eliminated transport, and FecB(E222A) and FecB(E222C) strongly reduced transport. FecD(R54C) and FecD(R51E) abolished transport, whereas other R-to-C mutations in putative interaction sites between FecCD and FecB substantially reduced transport. The introduced cysteine residues in FecB and FecCD also served to examine the formation of disulfide bridges in place of salt bridges between the binding protein and the transmembrane proteins. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis results suggest cross-linking of FecB(E93C) to FecD(R54C) and FecB(E222C) to FecC(R60C). The data are consistent with the proposal that FecB(E93) is contained in the region that binds to FecD and FecB(E222) in the region that binds to FecC.
机译:柠檬酸介导的跨细胞质膜的铁转运是由ABC转运蛋白催化的,该转运蛋白由周质结合蛋白FecB,跨膜蛋白FecC和FecD以及ATPase FecE组成。基于维生素B12的ABC转运蛋白的晶体结构,结合蛋白的谷氨酸残基和跨膜蛋白的精氨酸残基之间的盐桥预计会介导底物负载的结合蛋白在跨膜蛋白上的定位。 BtuF结合蛋白和BtuCD跨膜蛋白(EL Borths等人,Proc.Natl.Acad.Sci.USA 99:16642-16647,2002)。在这里,我们通过用丙氨酸,半胱氨酸,精氨酸和谷氨酸取代这些残基,并分析了柠檬酸介导的突变体铁转运,研究了预计在FecB和FecCD之间的盐桥形成中涉及的残基的作用。用丙氨酸[FecB(E93A)],半胱氨酸或精氨酸替代FecB中的E93,几乎消除了柠檬酸盐介导的铁转运。突变FecB(E222R)几乎消除了转运,而FecB(E222A)和FecB(E222C)大大降低了转运。 FecD(R54C)和FecD(R51E)取消了运输,而FecCD和FecB之间推定的相互作用位点中的其他R-to-C突变则大大降低了运输。 FecB和FecCD中引入的半胱氨酸残基也可用来检查二硫键的形成,以取代结合蛋白和跨膜蛋白之间的盐桥。十二烷基硫酸钠-聚丙烯酰胺凝胶电泳结果表明FecB(E93C)与FecD(R54C)和FecB(E222C)与FecC(R60C)交联。数据与以下建议一致:FecB(E93)包含在与FecD绑定的区域中,而FecB(E222)包含在与FecC绑定的区域中。

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