Zhang Guoqiang, Lin Yuping, Qi Xianni, Wang Lixian, He Peng, Wang Qinhong, Ma Yanhe
Key Laboratory of Systems Microbial Biotechnology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, 32 XiQiDao, Tianjin Airport Economic Area, Tianjin, 300308, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
Microb Cell Fact. 2015 Aug 7;14:112. doi: 10.1186/s12934-015-0303-8.
Sugar alcohols have been widely applied in the fields of food and medicine owing to their unique properties. Compared to chemical production, microbial production of sugar alcohols has become attractive because of its environmentally friendly and sustainable characteristics. Our previous study identified the nonconventional yeast Pichia anomala TIB-x229 as a potential producer of sugar alcohols from glucose. To further improve strain performance, we combined genome shuffling with optimized high throughput screening methods for the directed improvement of nonconventional yeast and complex phenotypes.
To accelerate strain improvement, a practical genome shuffling procedure was developed and successfully applied in the nonconventional yeast P. anomala to increase sugar alcohol production. Through two rounds of genome shuffling, an improved P. anomala isolate GS2-3 could produce 47.1 g/L total sugar alcohols from 100 g/L glucose, which was 32.3% higher than the original strain. In this process, a simple and accurate colorimetric assay was optimized and used for high throughput screening of sugar alcohol-producing strains. Moreover, a fluorescence-activated cell sorting method was developed to efficiently screen protoplast fusions for genome shuffling of nonconventional yeast.
An efficient genome shuffling procedure was developed and applied to enhance the sugar alcohol production of the nonconventional yeast P. anomala. Our results provide a general platform for strain improvement of polyol-producing microorganisms or nonconventional microorganisms in the future.
糖醇因其独特性质已在食品和医药领域广泛应用。与化学生产相比,微生物生产糖醇因其环境友好和可持续的特性而备受关注。我们之前的研究鉴定出非常规酵母异常毕赤酵母TIB-x229是从葡萄糖生产糖醇的潜在菌株。为进一步提高菌株性能,我们将基因组重排与优化的高通量筛选方法相结合,用于定向改良非常规酵母和复杂表型。
为加速菌株改良,开发了一种实用的基因组重排程序,并成功应用于非常规酵母异常毕赤酵母以提高糖醇产量。通过两轮基因组重排,改良的异常毕赤酵母分离株GS2-3能从100 g/L葡萄糖中产生47.1 g/L总糖醇,比原始菌株高出32.3%。在此过程中,优化了一种简单且准确的比色测定法,并用于高产糖醇菌株的高通量筛选。此外,还开发了一种荧光激活细胞分选方法,以有效筛选用于非常规酵母基因组重排的原生质体融合体。
开发并应用了一种高效的基因组重排程序,以提高非常规酵母异常毕赤酵母的糖醇产量。我们的结果为未来多元醇生产微生物或非常规微生物的菌株改良提供了一个通用平台。