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问号钩端螺旋体毒力相关血红素加氧酶的结构和突变分析为其催化机制提供了见解。

Structural and mutational analyses of the Leptospira interrogans virulence-related heme oxygenase provide insights into its catalytic mechanism.

作者信息

Soldano Anabel, Klinke Sebastián, Otero Lisandro H, Rivera Mario, Catalano-Dupuy Daniela L, Ceccarelli Eduardo A

机构信息

Instituto de Biología Molecular y Celular de Rosario (IBR), CONICET, Facultad de Ciencias Bioquímicas y Farmacéuticas, Universidad Nacional de Rosario, Rosario, Argentina.

Fundación Instituto Leloir, IIBBA-CONICET, and Plataforma Argentina de Biología Estructural y Metabolómica PLABEM, Buenos Aires, Argentina.

出版信息

PLoS One. 2017 Aug 3;12(8):e0182535. doi: 10.1371/journal.pone.0182535. eCollection 2017.

Abstract

Heme oxygenase from Leptospira interrogans is an important virulence factor. During catalysis, redox equivalents are provided to this enzyme by the plastidic-type ferredoxin-NADP+ reductase also found in L. interrogans. This process may have evolved to aid this bacterial pathogen to obtain heme-iron from their host and enable successful colonization. Herein we report the crystal structure of the heme oxygenase-heme complex at 1.73 Å resolution. The structure reveals several distinctive features related to its function. A hydrogen bonded network of structural water molecules that extends from the catalytic site to the protein surface was cleared observed. A depression on the surface appears to be the H+ network entrance from the aqueous environment to the catalytic site for O2 activation, a key step in the heme oxygenase reaction. We have performed a mutational analysis of the F157, located at the above-mentioned depression. The mutant enzymes were unable to carry out the complete degradation of heme to biliverdin since the reaction was arrested at the verdoheme stage. We also observed that the stability of the oxyferrous complex, the efficiency of heme hydroxylation and the subsequent conversion to verdoheme was adversely affected. These findings underscore a long-range communication between the outer fringes of the hydrogen-bonded network of structural waters and the heme active site during catalysis. Finally, by analyzing the crystal structures of ferredoxin-NADP+ reductase and heme oxygenase, we propose a model for the productive association of these proteins.

摘要

问号钩端螺旋体的血红素加氧酶是一种重要的毒力因子。在催化过程中,问号钩端螺旋体中也存在的质体型铁氧化还原蛋白-NADP+还原酶为该酶提供氧化还原当量。这一过程可能已经进化,以帮助这种细菌病原体从宿主获取血红素铁并实现成功定殖。在此,我们报告了血红素加氧酶-血红素复合物在1.73 Å分辨率下的晶体结构。该结构揭示了与其功能相关的几个独特特征。从催化位点延伸到蛋白质表面的结构水分子氢键网络清晰可见。表面的一个凹陷似乎是H+从水环境进入催化位点以激活O2的网络入口,这是血红素加氧酶反应中的关键步骤。我们对位于上述凹陷处的F157进行了突变分析。突变酶无法将血红素完全降解为胆绿素,因为反应在高铁血红素阶段停止。我们还观察到亚铁氧复合物的稳定性、血红素羟基化效率以及随后向高铁血红素的转化均受到不利影响。这些发现强调了在催化过程中结构水氢键网络的外围与血红素活性位点之间的远程通讯。最后,通过分析铁氧化还原蛋白-NADP+还原酶和血红素加氧酶的晶体结构,我们提出了这些蛋白质有效结合的模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae77/5542595/c60feb873870/pone.0182535.g001.jpg

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