Suppr超能文献

通过代谢工程对卡那霉素链霉菌中卡那霉素B和卡那霉素A生物合成的调控

Modulation of kanamycin B and kanamycin A biosynthesis in Streptomyces kanamyceticus via metabolic engineering.

作者信息

Gao Wenli, Wu Zheng, Sun Junyang, Ni Xianpu, Xia Huanzhang

机构信息

School of Life Science and Biopharmaceutics, Shenyang Pharmaceutical University, No.103 Wenhua Road, Shenyang, Liaoning, China.

出版信息

PLoS One. 2017 Jul 28;12(7):e0181971. doi: 10.1371/journal.pone.0181971. eCollection 2017.

Abstract

Both kanamycin A and kanamycin B, antibiotic components produced by Streptomyces kanamyceticus, have medical value. Two different pathways for kanamycin biosynthesis have been reported by two research groups. In this study, to obtain an optimal kanamycin A-producing strain and a kanamycin B-high-yield strain, we first examined the native kanamycin biosynthetic pathway in vivo. Based on the proposed parallel biosynthetic pathway, kanN disruption should lead to kanamycin A accumulation; however, the kanN-disruption strain produced neither kanamycin A nor kanamycin B. We then tested the function of kanJ and kanK. The main metabolite of the kanJ-disruption strain was identified as kanamycin B. These results clarified that kanamycin biosynthesis does not proceed through the parallel pathway and that synthesis of kanamycin A from kanamycin B is catalyzed by KanJ and KanK in S. kanamyceticus. As expected, the kanamycin B yield of the kanJ-disruption strain was 3268±255 μg/mL, 12-fold higher than that of the original strain. To improve the purity of kanamycin A and reduce the yield of kanamycin B in the fermentation broth, four different kanJ- and kanK-overexpressing strains were constructed through either homologous recombination or site-specific integration. The overexpressing strain containing three copies of kanJ and kanK in its genome exhibited the lowest kanamycin B yield (128±20 μg/mL), which was 54% lower than that of the original strain. Our experimental results demonstrate that kanamycin A is derived from KanJ-and-KanK-catalyzed conversion of kanamycin B in S. kanamyceticus. Moreover, based on the clarified biosynthetic pathway, we obtained a kanamycin B-high-yield strain and an optimized kanamycin A-producing strain with minimal byproduct.

摘要

卡那霉素A和卡那霉素B是卡那霉素链霉菌产生的抗生素成分,都具有医学价值。两个研究小组报道了卡那霉素生物合成的两种不同途径。在本研究中,为了获得最优的卡那霉素A生产菌株和卡那霉素B高产菌株,我们首先在体内研究了天然卡那霉素生物合成途径。基于所提出的平行生物合成途径,kanN基因敲除应该会导致卡那霉素A积累;然而,kanN基因敲除菌株既不产生卡那霉素A也不产生卡那霉素B。然后我们测试了kanJ和kanK的功能。kanJ基因敲除菌株的主要代谢产物被鉴定为卡那霉素B。这些结果表明,卡那霉素生物合成不是通过平行途径进行的,并且在卡那霉素链霉菌中,卡那霉素B由KanJ和KanK催化合成卡那霉素A。正如预期的那样,kanJ基因敲除菌株的卡那霉素B产量为3268±255μg/mL,比原始菌株高12倍。为了提高发酵液中卡那霉素A的纯度并降低卡那霉素B的产量,通过同源重组或位点特异性整合构建了四种不同的kanJ和kanK过表达菌株。基因组中含有三个拷贝kanJ和kanK的过表达菌株表现出最低的卡那霉素B产量(128±20μg/mL),比原始菌株低54%。我们的实验结果表明,在卡那霉素链霉菌中,卡那霉素A源自KanJ和KanK催化的卡那霉素B转化。此外,基于阐明的生物合成途径,我们获得了一个卡那霉素B高产菌株和一个副产物最少的优化卡那霉素A生产菌株。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2845/5533434/38ff6e5d5663/pone.0181971.g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验