Shao Kailin, Yu Xiaobin, Zhao Yan, Zhang Ying, Liu Xiaobo
The Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology Jiangnan University, Wuxi, Jiangsu, China.
China Federation Supply & Marketing Cooperation, Jinan Fruit Research Institution, Jinan, China.
Microb Biotechnol. 2025 Mar;18(3):e70130. doi: 10.1111/1751-7915.70130.
Organic selenium, a bioavailable form of the essential trace element selenium, holds significant potential for improving human health through dietary supplements and functional foods. However, low bioconversion efficiency has primarily limited the biosynthesis of organic selenium compounds. Here, we focused on enhancing the biosynthesis of organic selenium by optimising the expression and activity of two key enzymes, SenB and SenC, involved in the conversion process. We compared several expression systems, including fusion expression and dual-promoter approaches, and optimised reaction conditions such as temperature, pH and incubation time. Our results showed that mutations of SenC more than doubled enzyme activity, resulting in a corresponding rise in the intermediate SeP. Notably, the fusion expression of SenB and SenC exhibited the highest conversion rate of organic selenium, achieving over 95% under optimal conditions. Our findings provide a basis for organic selenium production through microbial biotechnology.
有机硒是必需微量元素硒的一种生物可利用形式,通过膳食补充剂和功能性食品改善人类健康具有巨大潜力。然而,低生物转化效率主要限制了有机硒化合物的生物合成。在此,我们专注于通过优化参与转化过程的两种关键酶SenB和SenC的表达和活性来提高有机硒的生物合成。我们比较了几种表达系统,包括融合表达和双启动子方法,并优化了温度、pH值和孵育时间等反应条件。我们的结果表明,SenC的突变使酶活性增加了一倍多,导致中间体SeP相应增加。值得注意的是,SenB和SenC的融合表达表现出最高的有机硒转化率,在最佳条件下达到95%以上。我们的研究结果为通过微生物生物技术生产有机硒提供了依据。