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用于甲萘醌结合肽抗生素作用机制研究的聚异戊二烯醌的化学多样化。

Chemical diversification of polyprenyl quinones for mechanistic studies on menaquinone-binding peptide antibiotics.

作者信息

Matheson Eilidh J, van Beekveld Roy A M, Innocenti Paolo, Martin Nathaniel I, Weingarth Markus, Cochrane Stephen A

机构信息

School of Chemistry and Chemical Engineering, Queen's University Belfast David Keir Building, Stranmillis Road Belfast BT9 5AG UK

NMR Spectroscopy, Bijvoet Center for Biomolecular Research, Department of Chemistry, Utrecht University Padualaan 8 3584 CH Utrecht The Netherlands.

出版信息

Chem Sci. 2025 Jul 3. doi: 10.1039/d5sc03363b.

Abstract

Polyprenyl quinones, such as ubiquinone and menaquinone, are essential membrane-embedded redox cofactors that are involved in electron transport and found across all domains of life. However, their highly hydrophobic structure, which includes a quinone head-group and long polyprenyl tail, has limited their chemical derivatization for biological studies. Here, we report a versatile synthetic approach for the chemical diversification of natural polyprenyl quinones, enabling the introduction of various reporter groups including fluorophores, quenchers, NMR-active nuclei, and photoaffinity and bioaffinity tags. These functionalized analogues retain their membrane-associating properties and enable new applications in antibiotic discovery. We show that fluorescently labelled menaquinone analogues retain their strong binding affinity to the menaquinone-binding peptide antibiotics lysocin E and lysomeb (MBA2). Incorporation of BODIPY-quinones into vesicles allowed visualization of the peptide-quinone interaction, revealing their effects on membrane integrity and quinone aggregation. This study expands the chemical toolbox for polyprenyl quinones, enabling targeted functionalization of these essential biomolecules and facilitating further exploration of their roles in biological systems.

摘要

聚异戊二烯醌,如泛醌和甲萘醌,是必不可少的膜嵌入氧化还原辅因子,参与电子传递,存在于所有生命领域。然而,它们高度疏水的结构,包括醌头基和长聚异戊二烯尾,限制了它们用于生物学研究的化学衍生化。在这里,我们报告了一种通用的合成方法,用于天然聚异戊二烯醌的化学多样化,能够引入各种报告基团,包括荧光团、猝灭剂、核磁共振活性核以及光亲和和生物亲和标签。这些功能化类似物保留了它们的膜结合特性,并在抗生素发现中实现了新的应用。我们表明,荧光标记的甲萘醌类似物对甲萘醌结合肽抗生素溶菌素E和溶菌酶B(MBA2)保持强烈的结合亲和力。将硼二吡咯醌掺入囊泡中可以可视化肽 - 醌相互作用,揭示它们对膜完整性和醌聚集的影响。这项研究扩展了聚异戊二烯醌的化学工具箱,实现了这些必需生物分子的靶向功能化,并促进了对它们在生物系统中作用的进一步探索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbfb/12308493/8199ae2da50b/d5sc03363b-f1.jpg

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