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仿生氮氧化物(NO)转化反应活性的合成血红素化合物-I 和化合物-II 中间体。

Bio-inspired nitrogen oxide (NO) interconversion reactivities of synthetic heme Compound-I and Compound-II intermediates.

机构信息

Department of Chemistry and O'Neal Comprehensive Cancer Center, University of Alabama at Birmingham, Birmingham, AL 35205, United States.

Department of Chemistry and O'Neal Comprehensive Cancer Center, University of Alabama at Birmingham, Birmingham, AL 35205, United States.

出版信息

J Inorg Biochem. 2022 Jan;226:111633. doi: 10.1016/j.jinorgbio.2021.111633. Epub 2021 Oct 16.

Abstract

Dioxygen activating heme enzymes have long predicted to be powerhouses for nitrogen oxide interconversion, especially for nitric oxide (NO) oxidation which has far-reaching biological and/or environmental impacts. Lending credence, reactivity of NO with high-valent heme‑oxygen intermediates of globin proteins has recently been implicated in the regulation of a variety of pivotal physiological events such as modulating catalytic activities of various heme enzymes, enhancing antioxidant activity to inhibit oxidative damage, controlling inflammatory and infectious properties within the local heme environments, and NO scavenging. To reveal insights into such crucial biological processes, we have investigated low temperature NO reactivities of two classes of synthetic high-valent heme intermediates, Compound-II and Compound-I. In that, Compound-II rapidly reacts with NO yielding the six-coordinate (NO bound) heme ferric nitrite complex, which upon warming to room temperature converts into the five-coordinate heme ferric nitrite species. These ferric nitrite complexes mediate efficient substrate oxidation reactions liberating NO; i.e., shuttling NO back to NO. In contrast, Compound-I and NO proceed through an oxygen-atom transfer process generating the strong nitrating agent NO, along with the corresponding ferric nitrosyl species that converts to the naked heme ferric parent complex upon warmup. All reaction components have been fully characterized by UV-vis, H NMR and EPR spectroscopic methods, mass spectrometry, elemental analyses, and semi-quantitative determination of NO anions. The clean, efficient, potentially catalytic NO interconversions driven by high-valent heme species presented herein illustrate the strong prospects of a heme enzyme/O/NO dependent unexplored territory that is central to human physiology, pathology, and therapeutics.

摘要

双氧激活血红素酶一直被预测为氮氧化物转化的强大动力,特别是对于一氧化氮(NO)氧化,它具有深远的生物学和/或环境影响。最近,球蛋白蛋白中高价血红素-氧中间体与 NO 的反应性被认为参与了各种关键生理事件的调节,例如调节各种血红素酶的催化活性,增强抗氧化活性以抑制氧化损伤,控制局部血红素环境中的炎症和感染特性,以及清除 NO。为了深入了解这些关键的生物学过程,我们研究了两类合成高价血红素中间体,即化合物 II 和化合物 I 的低温 NO 反应性。在这种情况下,化合物 II 与 NO 快速反应生成六配位(NO 结合)血红素高铁亚硝酸盐配合物,当升温至室温时,该配合物转化为五配位血红素高铁亚硝酸盐物种。这些高铁亚硝酸盐配合物介导有效的底物氧化反应,释放出 NO;也就是说,将 NO 回扫到 NO。相比之下,化合物 I 和 NO 通过氧原子转移过程生成强硝化剂 NO ,以及相应的铁亚硝酰物种,该物种在升温时转化为裸露的血红素铁母体配合物。所有反应成分均通过 UV-vis、H NMR 和 EPR 光谱法、质谱、元素分析和对 NO 阴离子的半定量测定进行了充分表征。高价血红素物种驱动的清洁、高效、潜在催化的 NO 转化,说明了血红素酶/O/NO 依赖性未探索领域的巨大前景,这对于人类生理学、病理学和治疗学至关重要。

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