Schmidt Katharina, Charria-Girón Esteban, Gorelik Tatiana E, Kleeberg Christian, Muema Jackson M, Heitkämper Simone, Verwaaijen Bart, Kuhnert Eric, Gerke Jennifer, Kalinowski Jörn, Hyde Kevin D, Stadler Marc, Cox Russell, Surup Frank
Institute for Organic Chemistry and BMWZ, Leibniz Universität Hannover, Schneiderberg 38, 30167, Hannover, Germany.
Department Microbial Drugs, Helmholtz Centre for Infection Research (HZI), and German Centre for Infection Research (DZIF), Partner Site Hannover-Braunschweig, Inhoffenstrasse 7, 38124, Braunschweig, Germany.
Chembiochem. 2025 May 27;26(10):e202500037. doi: 10.1002/cbic.202500037. Epub 2025 Apr 7.
Hypoxylon lienhwacheense, a fungal species with an unclear taxonomic placement within the Hypoxylaceae, presents a highly rare stromatal secondary metabolite profile. Isolation of its major stromatal constituents leads to the discovery of a novel tropolone-maleidride hybrid molecule, lienhwalide A 5, in addition to the known cordyanhydride B 6, its new derivative 7, and binaphthalenetetraol 8. Unexpectedly, Hypoxylon lienhwacheense produces in liquid cultures various lienhwalide A congeners 9-11. Their structures and relative configurations are elucidated using high-resolution mass spectrometry and nuclear magnetic resonance (NMR) spectroscopy, with their absolute configurations determined using X-ray analysis of a semisynthetic brominated derivative of 9 and synthesizing α-methoxy-α-trifluoromethylphenylacetyl esters of 11. Feeding experiments with C-labeled precursors (C-methionine; 1-C- and U-C-glucose) reveal insights into the biogenesis of tropolone and maleidride moieties, according to C couplings and incredible natural abundance double quantum transfer NMR data. Genome analysis identifies two separate biosynthetic gene clusters responsible for these moieties, and heterologous expression experiments provide further insights into the interplay of both clusters during the biosynthesis of these hybrid natural products. Remarkably, lienhwalides exhibit reduced toxicity and enhance antibacterial selectivity compared to related fungal tropolones.
莲华脐孢菌是一种在脐孢科中分类地位不明确的真菌物种,具有极为罕见的子座次生代谢产物谱。对其子座主要成分的分离,除了已知的脐孢酐B 6、其新衍生物7和联萘四醇8之外,还发现了一种新型的托酚酮 - 马来酸酐杂合分子莲华内酯A 5。出乎意料的是,莲华脐孢菌在液体培养物中产生了各种莲华内酯A同系物9 - 11。利用高分辨率质谱和核磁共振(NMR)光谱对它们的结构和相对构型进行了阐明,并通过对9的半合成溴化衍生物进行X射线分析以及合成11的α - 甲氧基 - α - 三氟甲基苯基乙酸酯来确定它们的绝对构型。用碳标记的前体(碳 - 甲硫氨酸;1 - 碳 - 和U - 碳 - 葡萄糖)进行的饲喂实验,根据碳偶合和令人难以置信的天然丰度双量子转移NMR数据,揭示了托酚酮和马来酸酐部分的生物合成过程。基因组分析确定了两个分别负责这些部分的生物合成基因簇,异源表达实验进一步深入了解了这两个基因簇在这些杂合天然产物生物合成过程中的相互作用。值得注意的是,与相关的真菌托酚酮相比,莲华内酯的毒性降低且抗菌选择性增强。