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A widely distributed diheme enzyme from Burkholderia that displays an atypically stable bis-Fe(IV) state

机译:来自伯克霍尔德氏菌的广泛分布的双血红素酶显示出非典型稳定的双-Fe(IV)状态

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摘要

Bacterial diheme peroxidases represent a diverse enzyme family with functions that range from hydrogen peroxide (H2O2) reduction to post-translational modifications. By implementing a sequence similarity network (SSN) of the bCCP_MauG superfamily, we present the discovery of a unique diheme peroxidase BthA conserved in all Burkholderia. Using a combination of magnetic resonance, near-IR and Mössbauer spectroscopies and electrochemical methods, we report that BthA is capable of generating a bis-Fe(IV) species previously thought to be a unique feature of the diheme enzyme MauG. However, BthA is not MauG-like in that it catalytically converts H2O2 to water, and a 1.54-Å resolution crystal structure reveals striking differences between BthA and other superfamily members, including the essential residues for both bis-Fe(IV) formation and H2O2 turnover. Taken together, we find that BthA represents a previously undiscovered class of diheme enzymes, one that stabilizes a bis-Fe(IV) state and catalyzes H2O2 turnover in a mechanistically distinct manner.
机译:细菌二血红素过氧化物酶代表了一个多样化的酶家族,其功能范围从过氧化氢(H2O2)还原到翻译后修饰。通过实施bCCP_MauG超家族的序列相似性网络(SSN),我们提出了在所有伯克霍尔德氏菌中都保守的独特的二血红素过氧化物酶BthA的发现。使用磁共振,近红外光谱和穆斯堡尔光谱法以及电化学方法的结合,我们报道了BthA能够生成以前被认为是双血红素酶MauG的独特特征的bis-Fe(IV)物种。然而,BthA不是MauG样的,因为它催化将H2O2催化转化为水,并且1.54Å分辨率的晶体结构揭示了BthA与其他超家族成员之间的惊人差异,包括双-Fe(IV)形成和H2O2的必需残基。周转。两者合计,我们发现BthA代表以前未发现的一类二氢血红素酶,它可以稳定bis-Fe(IV)状态并以机械上不同的方式催化H2O2转换。

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