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索拉非尼 Z 家族强效抗癌天然产物:结构、生物活性、生物合成和异源表达。

The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression.

机构信息

Department of Microbial Natural Products, Helmholtz-Institute for Pharmaceutical Research Saarland, Helmholtz Centre for Infection Research and Department of Pharmacy at Saarland University, Saarbrücken, Germany.

Helmholtz International Lab for Anti-Infectives, Shandong University-Helmholtz Institute of Biotechnology, State Key Laboratory of Microbial Technology, Shandong University, Qingdao, China.

出版信息

Microbiol Spectr. 2023 Aug 17;11(4):e0073023. doi: 10.1128/spectrum.00730-23. Epub 2023 Jun 15.

Abstract

Myxobacteria serve as a treasure trove of secondary metabolites. During our ongoing search for bioactive natural products, a novel subclass of disorazoles termed disorazole Z was discovered. Ten disorazole Z family members were purified from a large-scale fermentation of the myxobacterium Sorangium cellulosum So ce1875 and characterized by electrospray ionization-high-resolution mass spectrometry (ESI-HRMS), X-ray, nuclear magnetic resonance (NMR), and Mosher ester analysis. Disorazole Z compounds are characterized by the lack of one polyketide extension cycle, resulting in a shortened monomer in comparison to disorazole A, which finally forms a dimer in the bis-lactone core structure. In addition, an unprecedented modification of a geminal dimethyl group takes place to form a carboxylic acid methyl ester. The main component disorazole Z1 shows comparable activity in effectively killing cancer cells to disorazole A1 via binding to tubulin, which we show induces microtubule depolymerization, endoplasmic reticulum delocalization, and eventually apoptosis. The disorazole Z biosynthetic gene cluster (BGC) was identified and characterized from the alternative producer So ce427 and compared to the known disorazole A BGC, followed by heterologous expression in the host Myxococcus xanthus DK1622. Pathway engineering by promoter substitution and gene deletion paves the way for detailed biosynthesis studies and efficient heterologous production of disorazole Z congeners. Microbial secondary metabolites are a prolific reservoir for the discovery of bioactive compounds, which prove to be privileged scaffolds for the development of new drugs such as antibacterial and small-molecule anticancer drugs. Consequently, the continuous discovery of novel bioactive natural products is of great importance for pharmaceutical research. Myxobacteria, especially spp., which are known for their large genomes with yet-underexploited biosynthetic potential, are proficient producers of such secondary metabolites. From the fermentation broth of Sorangium cellulosum strain So ce1875, we isolated and characterized a family of natural products named disorazole Z, which showed potent anticancer activity. Further, we report on the biosynthesis and heterologous production of disorazole Z. These results can be stepping stones toward pharmaceutical development of the disorazole family of anticancer natural products for (pre)clinical studies.

摘要

粘细菌是次生代谢产物的宝库。在我们不断寻找生物活性天然产物的过程中,发现了一类新型的异二唑类化合物,称为异二唑 Z。从粘细菌 Sorangium cellulosum So ce1875 的大规模发酵液中分离并纯化了 10 种异二唑 Z 家族成员,并通过电喷雾电离-高分辨质谱(ESI-HRMS)、X 射线、核磁共振(NMR)和 Mosher 酯分析进行了表征。异二唑 Z 化合物的特征是缺少一个聚酮延伸循环,与异二唑 A 相比,单体缩短,最终在双内酯核心结构中形成二聚体。此外,还发生了前所未有的偕二甲基基团修饰,形成羧酸甲酯。主要成分异二唑 Z1 通过与微管蛋白结合,有效地杀死癌细胞,与异二唑 A1 具有相当的活性,我们证明它诱导微管解聚、内质网定位,并最终导致细胞凋亡。从替代产生菌 So ce427 中鉴定并表征了异二唑 Z 生物合成基因簇(BGC),并与已知的异二唑 A BGC 进行了比较,然后在宿主 Myxococcus xanthus DK1622 中进行异源表达。通过启动子替换和基因缺失进行途径工程,为详细的生物合成研究和异源生产异二唑 Z 同系物铺平了道路。

微生物次生代谢产物是发现生物活性化合物的丰富资源,这些化合物被证明是开发新药物(如抗菌和小分子抗癌药物)的特权支架。因此,不断发现新的生物活性天然产物对药物研究具有重要意义。粘细菌,特别是 spp.,以其具有未充分开发的生物合成潜力的大型基因组而闻名,是此类次生代谢产物的高效产生者。我们从粘细菌 Sorangium cellulosum 菌株 So ce1875 的发酵液中分离并表征了一类天然产物,称为异二唑 Z,它具有很强的抗癌活性。此外,我们还报告了异二唑 Z 的生物合成和异源生产。这些结果可以为异二唑类抗癌天然产物的药物开发(预)临床试验提供基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e0a/10434194/f399d4cdd22d/spectrum.00730-23-f001.jpg

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