The Hamburg Centre for Ultrafast Imaging, University of Hamburg, Hamburg, Germany.
Department of Chemistry, Institute for Biochemistry and Molecular Biology, University of Hamburg, Hamburg, Germany.
Elife. 2019 Aug 6;8:e48528. doi: 10.7554/eLife.48528.
Many microbes and fungi acquire the essential ion Fe through the synthesis and secretion of high-affinity chelators termed siderophores. In Gram-negative bacteria, these ferric-siderophore complexes are actively taken up using highly specific TonB-dependent transporters (TBDTs) located in the outer bacterial membrane (OM). However, the detailed mechanism of how the inner-membrane protein TonB connects to the transporters in the OM as well as the interplay between siderophore- and TonB-binding to the transporter is still poorly understood. Here, we present three crystal structures of the TBDT FoxA from (containing a signalling domain) in complex with the siderophore ferrioxamine B and TonB and combine them with a detailed analysis of binding constants. The structures show that both siderophore and TonB-binding is required to form a translocation-competent state of the FoxA transporter in a two-step TonB-binding mechanism. The complex structure also indicates how TonB-binding influences the orientation of the signalling domain.
许多微生物和真菌通过合成和分泌高亲和力螯合剂(称为铁载体)来获取必需的离子 Fe。在革兰氏阴性细菌中,这些三价铁-铁载体复合物通过位于外膜(OM)中的高度特异性 TonB 依赖性转运体(TBDT)被主动摄取。然而,TonB 如何与 OM 中的转运体连接的详细机制以及铁载体和 TonB 与转运体结合之间的相互作用仍知之甚少。在这里,我们展示了来自 (包含信号域)的 TBDT FoxA 与铁载体 ferrioxamine B 和 TonB 形成复合物的三个晶体结构,并结合了对结合常数的详细分析。这些结构表明,在两步 TonB 结合机制中,铁载体和 TonB 结合对于形成 FoxA 转运体的易位能力状态都是必需的。该复合物结构还表明了 TonB 结合如何影响信号域的取向。