首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >Heme binding to the IsdE(M78A; H229A) double mutant: Challenging unidirectional heme transfer in the iron-regulated surface determinant protein heme transfer pathway of Staphylococcus aureus
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Heme binding to the IsdE(M78A; H229A) double mutant: Challenging unidirectional heme transfer in the iron-regulated surface determinant protein heme transfer pathway of Staphylococcus aureus

机译:血红素与IsdE(M78A; H229A)双突变体的结合:挑战金黄色葡萄球菌铁调节的表面决定因素蛋白血红素转移途径中的单向血红素转移

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摘要

The pathogenic bacterium Staphylococcus aureus has adopted specialized mechanisms for scavenging iron from its host. The cell-wall- and cell-membrane-associated iron-regulated surface determinant (Isd) proteins (IsdH, IsdB, IsdA, IsdC, IsdDEF, IsdG, and IsdI) allow S. aureus to scavenge iron from the heme in hemoglobin and haptoglobin-hemoglobin. Of these, IsdE chaperones heme to the ATP-binding-cassette-type transmembrane transporter (IsdF). IsdH, IsdB, IsdA, and IsdC contain at least one heme-binding near transporter (NEAT) domain. Previous studies have shown that ferric heme is transferred unidirectionally in the sequence IsdA-NEAT (Tyr-proximal amino acid) → IsdC-NEAT (Tyr) → IsdE (His). IsdA-NEAT does not transfer heme directly to IsdE. To challenge and probe this unusual unidirectional mechanism, the double mutant IsdE(M78A; H229A)-IsdE(MH)-was constructed and used in studies of heme transfer between IsdA-NEAT, IsdC-NEAT, and IsdE. This study probed the specific requirements in the heme binding site that enforce the unidirectional property of the system. Significantly, heme transfer from holo-IsdE(MH) to apo-IsdA-NEAT now occurs, breaking the established mechanism. The unique unidirectional heme-transfer properties now function under an affinity-driven mechanism. Overall, the heme proximal and distal ligands must play a crucial role controlling a gate that stops heme transfer between the native IsdE and IsdA-NEAT. We propose that these amino acids are the key control elements in the specific unidirectional protein-protein-gated release mechanism exhibited by the Isd system.
机译:致病菌金黄色葡萄球菌已采用专门的机制从其宿主中清除铁。细胞壁和细胞膜相关的铁调节表面决定簇(Isd)蛋白(IsdH,IsdB,IsdA,IsdC,IsdDEF,IsdG和IsdI)允许金黄色葡萄球菌从血红蛋白和触珠蛋白中的血红素中清除铁-血红蛋白。其中,IsdE伴侣血红素与ATP结合盒式跨膜转运蛋白(IsdF)。 IsdH,IsdB,IsdA和IsdC包含至少一个血红素结合附近转运蛋白(NEAT)域。先前的研究表明,三价铁血红素以IsdA-NEAT(Tyr近端氨基酸)→IsdC-NEAT(Tyr)→IsdE(His)的顺序单向转移。 IsdA-NEAT不会将血红素直接转移到IsdE。为了挑战和探究这种异常的单向机制,构建了双重突变体IsdE(M78A; H229A)-IsdE(MH),并用于研究IsdA-NEAT,IsdC-NEAT和IsdE之间的血红素转移。这项研究探讨了血红素结合位点的特定要求,这些要求可以增强系统的单向性。重要的是,现在发生了血红素从完整的IsdE(MH)转移到apo-IsdA-NEAT的过程,从而破坏了已建立的机制。现在,独特的单向血红素转移特性在亲和力驱动的机制下起作用。总体而言,血红素的近端和远端配体必须发挥关键作用,控制一个门,以阻止血红素在天然IsdE和IsdA-NEAT之间的转移。我们建议这些氨基酸是Isd系统显示的特定单向蛋白质-蛋白质门控释放机制中的关键控制元素。

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