代谢阻断和非还原性聚酮合成酶底物灵活性的协同作用扩大了海洋曲霉物种中去脂酮的多样性。

IF 3.6 2区 生物学 Q2 CHEMISTRY, MEDICINAL
Yang Liu, Liwu Lin, Jiafan Yang, Zeping Chen, Longchao Xin, Xiang Weng, Wen Ge, Runping Fang, Junying Ma, Yingying Chen, Jianhua Ju
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引用次数: 0

摘要

Depsidones是一种结构多样的多酮类化合物,具有重要的药理潜力。它们在海洋真菌Aspergillus sp. SCSIO SX7S7中的结构变异源于关键酶的底物混杂性,特别是非还原聚酮合成酶(NR-PKS)的起始-单位酰基转移酶(SAT)结构域。在这项研究中,我们将代谢阻断与固有的生物合成灵活性结合起来,以获得罕见的depsidone衍生物。高度还原的聚酮合成酶(HR-PKS)基因depD失活将代谢通量重定向到潜在的分支途径,导致分离出(i) aspergilllol A(1),一种前所未有的具有独特苯取代的depsidone, (ii)四种新的orsellinic acid同源二聚体衍生的depsidones aspergilllol B-E (2-5), (iii)一种新的二苯基醚衍生物aspergilllol F(6),以及(iv)两种已知化合物(7和8),但缺乏先前发表的完整NMR数据。进一步的构效关系分析表明,化合物1-5的酯链对抗菌活性至关重要,而化合物1独特的苯延伸是其抗菌活性显著增强的原因。这些发现不仅扩大了已知的真菌depsidones的结构多样性,而且揭示了其生物合成的复杂代谢网络,同时为通过合理的途径操作发现具有生物活性的天然产物支架建立了有效的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synergizing a Metabolic Blockade and Non-reducing Polyketide Synthase Substrate Flexibility Expand Depsidone Diversity in a Marine-Derived Aspergillus Species.

Depsidones are structurally diverse polyketides with significant pharmacological potential. Their structural variability in the marine-derived fungus Aspergillus sp. SCSIO SX7S7 stems from the substrate promiscuity of key enzymes, particularly the starter-unit acyltransferase (SAT) domain of non-reducing polyketide synthase (NR-PKS). In this study, we combined a metabolic blockade with the inherent biosynthetic flexibility to access rare depsidone derivatives. Inactivation of the highly reducing polyketide synthase (HR-PKS) gene depD redirected metabolic flux to potential branching pathways, leading to the isolation of (i) aspergillol A (1), an unprecedented depsidone featuring a unique benzene substitution, (ii) four new orsellinic acid homodimer-derived depsidones aspergillol B-E (2-5), (iii) a new diphenyl ether derivative aspergillol F (6), and (iv) two known compounds (7 and 8) but lacking complete NMR data from a previous publication. Further structure-activity relationship analyses revealed that the ester linkage in compounds 1-5 is essential for antimicrobial activities, while the distinctive benzene extension in compound 1 is responsible for its significantly enhanced activity. These findings not only expand the known structural diversity of fungal depsidones but also reveal the complex metabolic network underlying their biosynthesis while establishing an effective approach for discovering bioactive natural product scaffolds through rational pathway manipulation.

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来源期刊
CiteScore
9.10
自引率
5.90%
发文量
294
审稿时长
2.3 months
期刊介绍: The Journal of Natural Products invites and publishes papers that make substantial and scholarly contributions to the area of natural products research. Contributions may relate to the chemistry and/or biochemistry of naturally occurring compounds or the biology of living systems from which they are obtained. Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin. When new compounds are reported, manuscripts describing their biological activity are much preferred. Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin.
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