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The Mechanism of Heme Transfer from the Cytoplasmic Heme Binding Protein PhuS to the δ-regioselective Heme Oxygenase of Pseudomonas aeruginosa

机译:血红素从细胞质血红素结合蛋白PhuS转移到铜绿假单胞菌δ-区域选择性血红素加氧酶的机理

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摘要

The opportunistic pathogen Pseudomonas aeruginosa has evolved two outer membrane receptor mediated uptake systems (encoded by the phu and has operons) by which it can utilize the hosts heme and hemeproteins as a source of iron. PhuS is a cytoplasmic heme binding protein encoded within the phu operon, and has previously been shown to function in the trafficking of heme to the iron-regulated heme oxygenase (pa-HO). While the heme association rate for PhuS was similar to that of myoglobin, a markedly higher rate of heme dissociation (∼105 s−1) was observed, in keeping with a function in heme-trafficking. Additionally, the transfer of heme from PhuS to pa-HO was shown to be specific and unidirectional when compared to transfer to the non-iron regulated heme oxygenase (BphO), in which heme distribution between the two proteins merely reflects their relative intrinsic affinities for heme. Furthermore, the rate of transfer of heme from holo-PhuS to pa-HO of 0.11 ± 0.01 s−1 is 30-fold faster than that to apo-myoglobin, despite the significant higher binding affinity of apo-myoglobin for heme (kH =1.3 × 10−8 μM) than that of PhuS (0.2 μM). This data suggests that heme transfer to pa-HO is independent of heme affinity and is consistent with temperature dependence studies which indicate the reaction is driven by a negative entropic contribution, typical of an ordered transition state, and supports the notion that heme transfer from PhuS to pa-HO is mediated via a specific protein-protein interaction. In addition, pH studies, and reactions conducted in the presence of cyanide, suggest the involvement of spin transition during the heme transfer process, whereby the heme undergoes spin change from 6-c LS to 6-c HS either in PhuS or pa-HO. Based on the magnitudes of the activation parameters obtained in the presence of cyanide, whereby both complexes are maintained in a 6-c LS state, and the biphasic kinetics of heme transfer from holo-PhuS to pa-HO-wt, supports the notion that the spin-state crossover occur within holo-PhuS prior to heme transfer step. Alternatively, the lack of the biphasic kinetic with pa-HO-G125V, 6-c LS, and with comparable rate of heme transfer as pa-HO-is supportive of mechanism in which the spin-change could occur within pa-HO. The present data suggests either or both of the two pathways proposed for heme transfer may occur under the present experimental conditions. The dissection of which pathway is physiologically relevant is the focus of ongoing studies.
机译:机会性病原体铜绿假单胞菌已进化出两个外膜受体介导的摄取系统(由phu编码,并具有操纵子),通过它可以利用宿主血红素和血红蛋白作为铁源。 PhuS是在phu操纵子内编码的细胞质血红素结合蛋白,以前已证明在将血红素转运到铁调节的血红素加氧酶(pa-HO)中起作用。虽然PhuS的血红素缔合率与肌红蛋白相似,但观察到的血红素解离率明显更高(〜10 5 s -1 ),与在血红素贩运中发挥作用。此外,与从非铁调节的血红素加氧酶(BphO)转移相比,血红素从PhuS到pa-HO的转移显示出特异性和单向性,其中两种蛋白质之间的血红素分布仅反映了它们相对于内源性的亲和力血红素。此外,尽管载脂蛋白具有明显更高的结合亲和力,但血红素从全氟尿嘧啶转移至pa-HO的速率为0.11±0.01 s -1 ,比脱辅基肌红蛋白的转移速率快30倍。 -肌红蛋白的血红素(kH = 1.3×10 −8 μM)比PhuS(0.2μM)高。该数据表明血红素向pa-HO的转移与血红素亲和力无关,并且与温度依赖性研究一致,后者表明反应是由负熵的贡献(典型的有序过渡态)驱动的,并支持从PhuS转移血红素的观点。通过特定的蛋白质-蛋白质相互作用介导对pa-HO的“抗”。此外,pH研究和在氰化物存在下进行的反应表明,在血红素转移过程中涉及自旋转变,因此在PhuS或pa-HO中,血红素经历了从6-c LS到6-c HS的自旋转变。 。根据在氰化物存在下获得的活化参数的大小,两个络合物均保持在6-c LS状态,血红素从全氟-PhuS转移至pa-HO-wt的双相动力学支持以下观点:自旋态交叉发生在血红素转移步骤之前的holo-PhuS中。备选地,缺乏与pa-HO-G125V,6-c LS的双相动力学,以及与pa-HO-相当的血红素转移速率,支持了其中可能在pa-HO内发生自旋变化的机制。目前的数据表明,提出的血红素转移的两种途径中的一种或两种都可能在目前的实验条件下发生。正在进行中的研究重点是解剖与生理相关的途径。

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  • 作者

    Mehul N. Bhakta; Angela Wilks;

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  • 年(卷),期 -1(45),38
  • 年度 -1
  • 页码 11642–11649
  • 总页数 19
  • 原文格式 PDF
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