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Swainsonine producing performance of Alternaria oxytropis was improved by heavy-ion mutagenesis technology
Author(s) -
Yan Liang,
Shangwei Li,
Xiangdong Song,
Deshun Zhou,
Dejuan Zhi,
Baocheng Hao,
Yu Liu,
Jianping Liang,
Zhen Wang
Publication year - 2021
Publication title -
fems microbiology letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.899
H-Index - 151
eISSN - 1574-6968
pISSN - 0378-1097
DOI - 10.1093/femsle/fnab047
Subject(s) - swainsonine , indolizidine , biology , yield (engineering) , mutagenesis , strain (injury) , mutant , botany , alkaloid , biochemistry , materials science , anatomy , gene , metallurgy
Swainsonine, an indolizidine alkaloid, is a promising anti-tumorigenic compound. Biological production of swainsonine was prospective, but the low swainsonine yield of wild type Alternaria oxytropis limited its production on a large scale. In present work, a stable A. oxytropis mutant UO1 with swanisonine yield of 14.84% higher than the wild-type strain was successfully obtained after heavy-ion irradiation. The A. oxytropis mutant UO1 and original wild-type strain were futher evaluated for SW concentrations under different factors. Results showed that the optimum culture temperature was 25°C. The optimum initial medium pH was 6.5 and the optimum inoculum size was 2 mL per 200 mL. Addition of the biosynthetic precursor L-pipecolic acids and L-lysine appropriately could increase the SW synthesis. These findings provided a theoretical basis and scientific data for the industrial production of swainsonine.

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