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硫自然化合物的化学与生物化学:代谢和氧化还原生物学的关键中间体。

Chemistry and Biochemistry of Sulfur Natural Compounds: Key Intermediates of Metabolism and Redox Biology.

机构信息

Department of Biochemical Sciences "A. Rossi Fanelli", Sapienza University of Rome, 00185 Rome, Italy.

Department of Organic Chemistry, Instituto Universitario de Bio-Orgánica Antonio González, University of La Laguna, La Laguna, 38296 Tenerife, Spain.

出版信息

Oxid Med Cell Longev. 2020 Sep 29;2020:8294158. doi: 10.1155/2020/8294158. eCollection 2020.

Abstract

Sulfur contributes significantly to nature chemical diversity and thanks to its particular features allows fundamental biological reactions that no other element allows. Sulfur natural compounds are utilized by all living beings and depending on the function are distributed in the different kingdoms. It is no coincidence that marine organisms are one of the most important sources of sulfur natural products since most of the inorganic sulfur is metabolized in ocean environments where this element is abundant. Terrestrial organisms such as plants and microorganisms are also able to incorporate sulfur in organic molecules to produce primary metabolites (e.g., methionine, cysteine) and more complex unique chemical structures with diverse biological roles. Animals are not able to fix inorganic sulfur into biomolecules and are completely dependent on preformed organic sulfurous compounds to satisfy their sulfur needs. However, some higher species such as humans are able to build new sulfur-containing chemical entities starting especially from plants' organosulfur precursors. Sulfur metabolism in humans is very complicated and plays a central role in redox biochemistry. The chemical properties, the large number of oxidation states, and the versatile reactivity of the oxygen family chalcogens make sulfur ideal for redox biological reactions and electron transfer processes. This review will explore sulfur metabolism related to redox biochemistry and will describe the various classes of sulfur-containing compounds spread all over the natural kingdoms. We will describe the chemistry and the biochemistry of well-known metabolites and also of the unknown and poorly studied sulfur natural products which are still in search for a biological role.

摘要

硫对自然界的化学多样性有着重要的贡献,由于其独特的特性,它能够促成其他元素无法促成的基本生物反应。所有生物都利用硫的天然化合物,根据其功能分布在不同的生物界中。海洋生物是硫的天然产物的最重要来源之一并非偶然,因为大部分无机硫在富含该元素的海洋环境中被代谢。陆地生物,如植物和微生物,也能够将硫纳入有机分子中,以产生初级代谢物(例如蛋氨酸、半胱氨酸)和具有多种生物功能的更复杂的独特化学结构。动物无法将无机硫固定到生物分子中,完全依赖于预先形成的有机含硫化合物来满足其硫需求。然而,一些高等生物,如人类,能够从植物的有机硫前体开始构建新的含硫化学实体。人类的硫代谢非常复杂,在氧化还原生物化学中起着核心作用。氧族的硫具有化学性质、大量的氧化态和多样的反应活性,使其成为氧化还原生物反应和电子转移过程的理想选择。本综述将探讨与氧化还原生物化学相关的硫代谢,并描述分布在整个自然界中的各种含硫化合物类别。我们将描述知名代谢物以及未知和研究较少的硫天然产物的化学和生物化学,这些产物仍在寻找其生物作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31c1/7545470/3f76ccb1a591/OMCL2020-8294158.001.jpg

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