从黄铜蔷薇内生菌 Alternaria brassicicola 中生物加工喜树碱,喜树碱具有很强的抗增殖活性和对拓扑异构酶的抑制作用。

IF 4.3 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Microbial Cell Factories Pub Date : 2024-07-26 DOI:10.1186/s12934-024-02471-5
Nouran A A Abd El-Hady, Abdelaleim I ElSayed, Khalid M Wadan, Sayed S El-Saadany, Ashraf S A El-Sayed
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引用次数: 0

摘要

通过保存和连续的亚培养来抑制真菌喜树碱(CPT)的生物合成是阻碍真菌工业化应用的一个挑战,因此,筛选具有稳定的喜树碱生产潜能的新型真菌分离物是这项工作的主要目标。具有多种生物活性代谢产物的石竹属植物可能拥有大量具有独特代谢特性的新型内生菌。在 C. roseus 的内生菌中,Alternaria brassicicola EFBL-NV OR131587.1 的 CPT 产率最高(96.5 μg/L)。通过 HPLC、FTIR、HNMR 和 LC-MS/MS 验证了假定 CPT 的结构特征,其分子质量为 349 m/z,分子碎片模式与真品完全相同。纯化的A. brassicicola CPT对UO-31(0.75 μM)和MCF7(3.2 μM)具有很强的抗增殖活性,选择性指数分别为30.8和7.1,此外,它对Topo II的抑制活性(IC50值为0.26 nM)高于Topo 1(IC50值为3.2 nM)。纯化的 CPT 可使 UO-31 细胞的伤口愈合率降低约 52%,并阻止其基质形成、细胞迁移和转移。与对照细胞相比,纯化的 CPT 可使 UO-31 细胞分裂停止在 S 期,并诱导其细胞凋亡约 20.4 倍。采用表面响应法进行生物处理后,黄铜酵母的 CPT 产量比对照组提高了约 3.3 倍。黄铜酵母合成 CPT 的代谢能力随着真菌的贮藏和亚培养而减弱,在贮藏第 6 个月和第 6 代时,其 CPT 产量损失了约 50%。实际上,通过添加 1%的表面灭菌的蔷薇叶片,被削弱的黄铜穗甲菌的 CPT 生产力得到了恢复,确保了黄铜穗甲菌 CPT 的隐性基因簇通过植物微生物组-黄铜穗甲菌的相互作用得到激发。因此,除了提取的 CPT 对拓扑异构酶 I 和 II 有独特的抑制亲和力外,还首次发现了一种新型的内生分离菌 A. brassicicola,它具有相对稳定的 CPT 生物合成机制,利用 C. roseus 微生物组恢复其 CPT 生产率是可行的。
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Bioprocessing of camptothecin from Alternaria brassicicola, an endophyte of Catharanthus roseus, with a strong antiproliferative activity and inhibition to Topoisomerases.

Suppression of fungal camptothecin (CPT) biosynthesis with the preservation and successive subculturing is the challenge that impedes fungi from the industrial application, so, screening for a novel fungal isolate with a conceivable stable producing potency of CPT was the main objective of this work. Catharanthus roseus with diverse contents of bioactive metabolites could have a plethora of novel endophytes with unique metabolic properties. Among the endophytes of C. roseus, Alternaria brassicicola EFBL-NV OR131587.1 was the highest CPT producer (96.5 μg/L). The structural identity of the putative CPT was verified by HPLC, FTIR, HNMR and LC-MS/MS, with a molecular mass 349 m/z, and molecular fragmentation patterns that typically identical to the authentic one. The purified A. brassicicola CPT has a strong antiproliferative activity towards UO-31 (0.75 μM) and MCF7 (3.2 μM), with selectivity index 30.8, and 7.1, respectively, in addition to resilient activity to inhibit Topo II (IC50 value 0.26 nM) than Topo 1 (IC50 value 3.2 nM). The purified CPT combat the wound healing of UO-31 cells by ~ 52%, stops their matrix formation, cell migration and metastasis. The purified CPT arrest the cellular division of the UO-31 at the S-phase, and inducing their cellular apoptosis by ~ 20.4 folds, compared to the control cells. Upon bioprocessing with the surface response methodology, the CPT yield by A. brassicicola was improved by ~ 3.3 folds, compared to control. The metabolic potency of synthesis of CPT by A. brassicicola was attenuated with the fungal storage and subculturing, losing ~ 50% of their CPT productivity by the 6th month of storage and 6th generation. Practically, the CPT productivity of the attenuated A. brassicicola was restored by addition of 1% surface sterilized leaves of C. roseus, ensuring the eliciting of cryptic gene cluster of A. brassicicola CPT via the plant microbiome-A. brassicicola interactions. So, for the first time, a novel endophytic isolate A. brassicicola, from C. roseus, was explored to have a relatively stable CPT biosynthetic machinery, with an affordable feasibility to restore their CPT productivity using C. roseus microbiome, in addition to the unique affinity of the extracted CPT to inhibit Topoisomerase I and II.

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来源期刊
Microbial Cell Factories
Microbial Cell Factories 工程技术-生物工程与应用微生物
CiteScore
9.30
自引率
4.70%
发文量
235
审稿时长
2.3 months
期刊介绍: Microbial Cell Factories is an open access peer-reviewed journal that covers any topic related to the development, use and investigation of microbial cells as producers of recombinant proteins and natural products, or as catalyzers of biological transformations of industrial interest. Microbial Cell Factories is the world leading, primary research journal fully focusing on Applied Microbiology. The journal is divided into the following editorial sections: -Metabolic engineering -Synthetic biology -Whole-cell biocatalysis -Microbial regulations -Recombinant protein production/bioprocessing -Production of natural compounds -Systems biology of cell factories -Microbial production processes -Cell-free systems
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