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鉴定和表征参与镧系元素代谢的小分子金属载体。

Identification and characterization of a small-molecule metallophore involved in lanthanide metabolism.

机构信息

Department of Plant and Microbial Biology, University of California, Berkeley, Berkeley, CA 94720.

Department of Chemistry, Ludwig-Maximilians-Universität München, Munich 81377, Germany.

出版信息

Proc Natl Acad Sci U S A. 2024 Aug 6;121(32):e2322096121. doi: 10.1073/pnas.2322096121. Epub 2024 Jul 30.

Abstract

Many bacteria secrete metallophores, low-molecular-weight organic compounds that bind ions with high selectivity and affinity, in order to access essential metals from the environment. Previous work has elucidated the structures and biosynthetic machinery of metallophores specific for iron, zinc, nickel, molybdenum, and copper. No physiologically relevant lanthanide-binding metallophore has been discovered despite the knowledge that lanthanide metals (Ln) have been revealed to be essential cofactors for certain alcohol dehydrogenases across a diverse range of phyla. Here, we report the biosynthetic machinery, the structure, and the physiological relevance of a lanthanophore, methylolanthanin. The structure of methylolanthanin exhibits a unique 4-hydroxybenzoate moiety which has not previously been described in other metallophores. We find that production of methylolanthanin is required for normal levels of Ln accumulation in the methylotrophic bacterium AM1, while overexpression of the molecule greatly increases bioaccumulation and adsorption. Our results provide a clearer understanding of how Ln-utilizing bacteria sense, scavenge, and store Ln; essential processes in the environment where Ln are poorly bioavailable. More broadly, the identification of this lanthanophore opens doors for study of how biosynthetic gene clusters are repurposed for additional functions and the complex relationship between metal homeostasis and fitness.

摘要

许多细菌会分泌金属载体,这是一种低分子量的有机化合物,能够高度选择性和亲和力地结合离子,以便从环境中获取必需的金属。以前的工作已经阐明了针对铁、锌、镍、钼和铜的金属载体的结构和生物合成机制。尽管已经知道镧系金属(Ln)是某些跨多个门的醇脱氢酶的必需辅助因子,但尚未发现与生理相关的镧系元素结合金属载体。在这里,我们报告了一种镧系元素载体甲基镧系素的生物合成机制、结构和生理相关性。甲基镧系素的结构表现出独特的 4-羟基苯甲酸酯部分,这在其他金属载体中尚未描述过。我们发现,甲基镧系素的产生对于甲基营养菌 AM1 中正常水平的 Ln 积累是必需的,而该分子的过表达大大增加了生物积累和吸附。我们的结果提供了对 Ln 利用细菌如何感知、清除和储存 Ln 的更清晰理解;这是 Ln 生物利用度差的环境中的重要过程。更广泛地说,这种镧系元素载体的鉴定为研究生物合成基因簇如何被重新用于其他功能以及金属稳态和适应性之间的复杂关系开辟了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d5d/11317620/a19d2ef4a481/pnas.2322096121fig01.jpg

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