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合理的合成组合基因装置促进高温乙醇发酵。

Rational synthetic combination genetic devices boosting high temperature ethanol fermentation.

作者信息

Sun Huan, Jia Haiyang, Li Jun, Feng Xudong, Liu Yueqin, Zhou Xiaohong, Li Chun

机构信息

School of Life Science, Beijing Institute of Technology, Beijing 100081, China.

Key Laboratory of Systems Bioengineering, Ministry of Education, Tianjin University, Tianjin, 300072, China.

出版信息

Synth Syst Biotechnol. 2017 Apr 29;2(2):121-129. doi: 10.1016/j.synbio.2017.04.003. eCollection 2017 Jun.

Abstract

The growth and production of yeast in the industrial fermentation are seriously restrained by heat stress and exacerbated by heat induced oxidative stress. In this study, a novel synthetic biology approach was developed to globally boost the viability and production ability of at high temperature through rationally designing and combing heat shock protein (HSP) and superoxide dismutase (SOD) genetic devices to ultimately synergistically alleviate both heat stress and oxidative stress. HSP and SOD from extremophiles were constructed to be different genetic devices and they were preliminary screened by heat resistant experiments and anti-oxidative experiments, respectively. Then in order to customize and further improve thermotolerance of , the HSP genetic device and SOD genetic device were rationally combined. The results show the simply assemble of the same function genetic devices to solve heat stress or oxidative stress could not enhance the thermotolerance considerably. Only with the combination genetic device (FBA1p--FBA1p-) solving both stress showed 250% better thermotolerance than the control and displayed further 55% enhanced cell density compared with the strains with single FBA1p- or FBA1p- at 42 °C. Then the most excellent combination genetic device was introduced into lab and industrial for ethanol fermentation. The ethanol yields of the two strains were increased by 20.6% and 26.3% compared with the control under high temperature, respectively. These results indicate synergistically defensing both heat stress and oxidative stress is absolutely necessary to enhance the thermotolerance and production of .

摘要

在工业发酵中,热应激严重限制了酵母的生长和生产,而热诱导的氧化应激则使其情况恶化。在本研究中,开发了一种新型合成生物学方法,通过合理设计和组合热休克蛋白(HSP)和超氧化物歧化酶(SOD)基因装置,以全面提高酵母在高温下的活力和生产能力,最终协同缓解热应激和氧化应激。将来自极端微生物的HSP和SOD构建成不同的基因装置,并分别通过耐热实验和抗氧化实验进行初步筛选。然后,为了定制并进一步提高酵母的耐热性,将HSP基因装置和SOD基因装置进行合理组合。结果表明,简单组装相同功能的基因装置来解决热应激或氧化应激并不能显著提高耐热性。只有使用同时解决两种应激的组合基因装置(FBA1p--FBA1p-)的酵母,在42℃时比对照显示出高250%的耐热性,并且与具有单一FBA1p-或FBA1p-的菌株相比,细胞密度进一步提高了55%。然后将最优异的组合基因装置引入实验室酵母和工业酵母中进行乙醇发酵。在高温下,这两种菌株的乙醇产量分别比对照提高了20.6%和26.3%。这些结果表明,协同抵御热应激和氧化应激对于提高酵母的耐热性和产量绝对必要。

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