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赋予野生型解脂耶氏酵母耐热表型可提高细胞生长和赤藓糖醇产量。

Conferring thermotolerant phenotype to wild-type Yarrowia lipolytica improves cell growth and erythritol production.

机构信息

School of Biotechnology, Jiangnan University, Wuxi, Jiangsu, China.

Department of Chemical, Biochemical, and Environmental Engineering, University of Maryland Baltimore County, Baltimore, Maryland, USA.

出版信息

Biotechnol Bioeng. 2021 Aug;118(8):3117-3127. doi: 10.1002/bit.27835. Epub 2021 Jun 11.

Abstract

In microbial engineering, heat stress is an important environmental factor modulating cell growth, metabolic flux distribution and the synthesis of target products. Yarrowia lipolytica, as a GARS (generally recognized as safe) nonconventional yeast, has been widely used in the food industry, especially as the host of erythritol production. Biomanufacturing economics is limited by the high operational cost of cooling energy in large-scale fermentation. It is of great significance to select thermotolerant Y. lipolytica to reduce the cooling cost and elucidate the heat-resistant mechanism at molecular level. For this purpose, we performed adaptive evolution and obtained a thermotolerant strain named Y. lipolytica BBE-18. Transcriptome analysis allows us to identify four genes in thiamine metabolism pathway that are responsible for the complicated thermotolerant phenotype. The heat-resistant phenotype was validated with the model strain Y. lipolytica Po1f by overexpression of single and combined genes. Then, conferring the thermotolerant phenotype to the wild-type Y. lipolytica BBE-17 enable the strain to produce three-times more erythritol of the control strain with 3°C higher than optimal cultivation temperature. To our knowledge, this is the first report on engineering heat-resistant phenotype to improve the erythritol production in Y. lipolytica. However, due to the increase of culture temperature, a large amount of adenosine triphosphate is consumed to ensure the life activities of Y. lipolytica which limits the potential of cell synthetic products to a certain extent. Even so, this study provides a reference for Y. lipolytica to produce other products under high temperature.

摘要

在微生物工程中,热应激是调节细胞生长、代谢通量分布和目标产物合成的重要环境因素。解脂耶氏酵母(Yarrowia lipolytica)作为一种 GARS(一般认为安全)的非常规酵母,已广泛应用于食品工业,特别是作为赤藓糖醇生产的宿主。生物制造的经济性受到大规模发酵中冷却能源高运营成本的限制。选择耐热的解脂耶氏酵母来降低冷却成本并阐明分子水平的耐热机制具有重要意义。为此,我们进行了适应性进化,获得了一株耐热菌株,命名为 Y. lipolytica BBE-18。转录组分析使我们能够确定在硫胺素代谢途径中四个负责复杂耐热表型的基因。通过过表达单个和组合基因,我们用模型菌株 Y. lipolytica Po1f 验证了耐热表型。然后,将耐热表型赋予野生型 Y. lipolytica BBE-17,使该菌株在比最佳培养温度高 3°C 的条件下,能够产生比对照菌株多三倍的赤藓糖醇。据我们所知,这是首次报道工程耐热表型来提高解脂耶氏酵母的赤藓糖醇产量。然而,由于培养温度的升高,需要消耗大量的三磷酸腺苷来确保解脂耶氏酵母的生命活动,这在一定程度上限制了细胞合成产物的潜力。即便如此,本研究为解脂耶氏酵母在高温下生产其他产品提供了参考。

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