The Extracellular Metallometabolome: Metallophores, Metal Ionophores, and Other Chelating Agents as Natural Products

IF 1.5 4区 医学 Q4 CHEMISTRY, MEDICINAL Natural Product Communications Pub Date : 2024-08-28 DOI:10.1177/1934578x241271701
Wolfgang Maret
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Abstract

Natural products include inorganic as well as organic compounds. Living organisms face constant challenges in acquiring essential metal ions and getting rid of non-essential ones with toxic actions. They employ an extracellular biochemistry in these tasks and use it to engage in a chemical warfare against invaders and competitors by either increasing or decreasing the availability of metal ions for maintaining their welfare in aquatic or terrestrial ecological niches. To control mutualistic, cambialistic or parasitic symbiosis with other organisms they use a remarkably rich suite of secreted bioactive molecules with ligand donor atoms for metal binding. This overview discusses the interactions of these extracellular natural products with a multitude of metal ions in the periodic system of the elements. It focuses mainly on metallophores and metal ionophores secreted from bacteria, fungi, and plants, but metal-carrying cofactors and other chelating agents will also be mentioned in the context of related functions and with an intent to categorize. The intracellular fate of the metal ions and the controlled pathways for the biosynthesis, secretion, uptake, biodegradation or recycling of the secreted natural products that interact with metal ions will not be covered. Metallophores make extracellular metal ions available via delivery to specific transporters and unavailable to competing organisms, especially pathogens, though some invaders have developed ways to compete efficiently for metal ions. The classic concept of siderophores, carriers of iron(III) ions, is extended here to specific and broad-band metallophores for metal ions such as copper (chalkophores), zinc (zincophores), and yet others. Metal ionophores, in contrast, transport metal ions through biological membranes. There is a wide variety of chemical structures for either metallophores or metal ionophores. Together with physicochemical investigations of metal complexation und conditions mimicking the natural environment, “omics” mining and mapping the diversity of chemotypes is an on-going effort with analytic, genetic, and bioinformatic tools and comes together in defining the metallometabolome, which combines the metabolome and the metallome. Investigations are highly multidisciplinary, include an important, but academically infrequently crossed bridge between the biosciences (biochemistry) and the earth sciences (geochemistry), define significant applications in the pharmaceutical/medical sciences regarding immune modulation and the control of virulence at the host-pathogen interface, and have implications for the nutritional/toxicological and environmental/ecological sciences.
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细胞外金属代谢组:作为天然产品的金属离子团、金属离子团和其他螯合剂
天然产品包括无机和有机化合物。生物体在获取必需的金属离子和去除具有毒性的非必需金属离子方面不断面临挑战。它们利用细胞外生物化学来完成这些任务,并通过增加或减少金属离子的供应量来与入侵者和竞争者展开化学战,以维持它们在水生或陆生生态位中的生存。为了控制与其他生物的互生、共生或寄生共生,它们使用了一整套极其丰富的分泌型生物活性分子,这些分子具有配体供体原子,可与金属结合。本综述讨论了这些细胞外天然产物与元素周期系中多种金属离子的相互作用。它主要关注细菌、真菌和植物分泌的金属团和金属离子团,但也会根据相关功能和分类意图提及携带金属的辅助因子和其他螯合剂。至于金属离子在细胞内的去向,以及与金属离子相互作用的分泌型天然产物的生物合成、分泌、吸收、生物降解或循环利用的受控途径,则不在讨论之列。尽管一些入侵者已经开发出有效竞争金属离子的方法,但噬金属体通过向特定的转运体输送金属离子,使细胞外的金属离子无法被竞争生物(尤其是病原体)利用。苷元的经典概念是铁(III)离子的载体,在这里被扩展为特定的和宽带的金属离子载体,如铜(chalkophores)、锌(zincophores)和其他金属离子。而金属离子团则通过生物膜传输金属离子。金属团或金属离子团的化学结构多种多样。在模拟自然环境的条件下,对金属络合进行物理化学研究,利用分析、遗传和生物信息学工具对化学类型的多样性进行 "全息 "挖掘和绘图,是一项持续的工作。研究具有高度的多学科性,包括生物科学(生物化学)和地球科学(地球化学)之间一座重要但在学术上很少跨越的桥梁,确定了制药/医学科学中有关免疫调节和宿主-病原体界面毒力控制的重要应用,并对营养/毒理学和环境/生态科学产生了影响。
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来源期刊
Natural Product Communications
Natural Product Communications 工程技术-食品科技
CiteScore
3.10
自引率
11.10%
发文量
254
审稿时长
2.7 months
期刊介绍: Natural Product Communications is a peer reviewed, open access journal studying all aspects of natural products, including isolation, characterization, spectroscopic properties, biological activities, synthesis, structure-activity, biotransformation, biosynthesis, tissue culture and fermentation. It covers the full breadth of chemistry, biochemistry, biotechnology, pharmacology, and chemical ecology of natural products. Natural Product Communications is a peer reviewed, open access journal studying all aspects of natural products, including isolation, characterization, spectroscopic properties, biological activities, synthesis, structure-activity, biotransformation, biosynthesis, tissue culture and fermentation. It covers the full breadth of chemistry, biochemistry, biotechnology, pharmacology, and chemical ecology of natural products. Natural Product Communications is a peer reviewed, open access journal studying all aspects of natural products, including isolation, characterization, spectroscopic properties, biological activities, synthesis, structure-activity, biotransformation, biosynthesis, tissue culture and fermentation. It covers the full breadth of chemistry, biochemistry, biotechnology, pharmacology, and chemical ecology of natural products.
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