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采用合理的代谢工程策略优化伴刀豆球蛋白的生产。

Optimized production of concanamycins using a rational metabolic engineering strategy.

作者信息

Pereira Filipa, McCauley Morgan, Lev Katherine, Verhey-Henke Linnea, Condren Alanna R, Harte Ralph J, Galvez Jesus, Sherman David H

机构信息

Life Sciences Institute, University of Michigan, Ann Arbor, MI, 48109, USA.

Life Sciences Institute, University of Michigan, Ann Arbor, MI, 48109, USA.

出版信息

Metab Eng. 2025 Mar;88:63-76. doi: 10.1016/j.ymben.2024.11.008. Epub 2024 Nov 22.

Abstract

Plecomacrolides, such as concanamycins and bafilomycins, are potent and specific inhibitors of vacuolar-type ATPase. Concanamycins are 18-membered macrolides with promising therapeutic potential against multiple diseases, including viral infection, osteoporosis, and cancer. Due to the complexity of their total synthesis, the production of concanamycins is only achieved through microbial fermentation. However, the low titers of concanamycin A and its analogs in the native producing strains are a significant bottleneck for scale-up, robust structure-activity relationship studies, and drug development. To address this challenge, we designed a library of engineered Streptomyces strains for the overproduction of concanamycin A-C by combining the overexpression of target regulatory genes with the optimization of fermentation media. Integration of two endogenous regulators from the concanamycin biosynthetic gene cluster (cms) and one heterologous regulatory gene from the bafilomycin biosynthetic gene cluster significantly increased production of concanamycin A and its less abundant analog concanamycin B in Streptomyces eitanensis. The highest titers reported to date were observed in the engineered S. eitanensis DHS10676, which produced over 900 mg/L of concanamycin A and 300 mg/L of concanamycin B. Heterologous overexpression of the identified target regulatory genes across a panel of Streptomyces spp. harboring a putative concanamycin biosynthetic gene cluster confirmed its identity, and significantly improved concanamycin A production in all tested strains. Strain engineering, optimization of fermentation, and extraction purification protocols enabled swift access to these structurally complex plecomacrolides for semi-synthetic medicinal chemistry-based approaches. Together, this work established a platform for robust overproduction of concanamycin analogs across species.

摘要

多球霉素,如伴刀豆球蛋白和巴弗洛霉素,是液泡型ATP酶的强效特异性抑制剂。伴刀豆球蛋白是18元大环内酯类化合物,对多种疾病具有潜在的治疗潜力,包括病毒感染、骨质疏松症和癌症。由于其全合成的复杂性,伴刀豆球蛋白只能通过微生物发酵来生产。然而,在天然生产菌株中伴刀豆球蛋白A及其类似物的产量较低,这是扩大生产规模、进行稳健的构效关系研究和药物开发的一个重大瓶颈。为应对这一挑战,我们设计了一个工程链霉菌菌株文库,通过将目标调控基因的过表达与发酵培养基的优化相结合,来过量生产伴刀豆球蛋白A-C。整合来自伴刀豆球蛋白生物合成基因簇(cms)的两个内源性调控因子和来自巴弗洛霉素生物合成基因簇的一个异源调控基因,显著提高了埃氏链霉菌中伴刀豆球蛋白A及其含量较少的类似物伴刀豆球蛋白B的产量。在工程化的埃氏链霉菌DHS10676中观察到了迄今为止报道的最高产量,该菌株产生了超过900 mg/L的伴刀豆球蛋白A和300 mg/L的伴刀豆球蛋白B。在一组含有假定的伴刀豆球蛋白生物合成基因簇的链霉菌属中异源过表达所鉴定的目标调控基因,证实了其特性,并显著提高了所有测试菌株中伴刀豆球蛋白A的产量。菌株工程改造、发酵优化以及提取纯化方案,使得能够通过基于半合成药物化学的方法快速获得这些结构复杂的多球霉素。总之,这项工作建立了一个在不同物种中稳健过量生产伴刀豆球蛋白类似物的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/effb/11908387/d529b78e2062/nihms-2062824-f0001.jpg

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