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富含鸟嘌呤的 RNA 和 DNA 与血红素结合牢固,能催化氧转移反应。

Guanine-rich RNAs and DNAs that bind heme robustly catalyze oxygen transfer reactions.

机构信息

Department of Molecular Biology & Biochemistry, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.

出版信息

J Am Chem Soc. 2011 Feb 16;133(6):1877-84. doi: 10.1021/ja108571a. Epub 2011 Jan 25.

Abstract

Diverse guanine-rich RNAs and DNAs that fold to form guanine quadruplexes are known to form tight complexes with Fe(III) heme. We show here that a wide variety of such complexes robustly catalyze two-electron oxidations, transferring oxygen from hydrogen peroxide to thioanisole, indole, and styrene substrates. Use of (18)O-labeled hydrogen peroxide reveals the source of the oxygen transferred to form thioanisole sulfoxide and styrene oxide to be the activated ferryl moiety within these systems. Hammett analysis of the kinetics of thioanisole sulfoxide formation is unable to distinguish between a one-step, direct oxygen transfer and a two-step, oxygen rebound mechanism for this catalysis. Oxygen transfer to indole produces a range of products, including indigo and related dyes. Docking of heme onto a high-resolution structure of the G-quadruplex fold of Bcl-2 promoter DNA, which both binds heme and transfers oxygen, suggests a relatively open active site for this class of ribozymes and deoxyribozymes. That heme-dependent catalysis of oxygen transfer is a property of many RNAs and DNAs has ramifications for primordial evolution, enzyme design, cellular oxidative disease, and anticancer therapeutics.

摘要

已知富含鸟嘌呤的 RNA 和 DNA 可以形成鸟嘌呤四链体,与 Fe(III)血红素形成紧密复合物。我们在这里表明,各种这样的复合物可以强烈地催化两电子氧化反应,将氧从过氧化氢转移到硫醚、吲哚和苯乙烯底物。使用(18)O 标记的过氧化氢表明,硫醚亚砜和苯乙烯氧化物形成过程中转移的氧的来源是这些体系中活化的高氧亚铁部分。对硫醚亚砜形成动力学的哈米特分析无法区分这种催化的一步直接氧转移和两步氧回弹机制。氧转移到吲哚会产生一系列产物,包括靛蓝和相关染料。血红素与 Bcl-2 启动子 DNA 的 G-四链体折叠的高分辨率结构对接,该结构既结合血红素又转移氧,表明这种核酶和脱氧核酶具有相对开放的活性位点。血红素依赖性氧转移催化是许多 RNA 和 DNA 的特性,这对原始进化、酶设计、细胞氧化疾病和抗癌治疗都有影响。

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