Precise control of SCRaMbLE in synthetic haploid and diploid yeast

Compatibility between host cells and heterologous pathways is a challenge for constructing organisms with high productivity or gain of function. Designer yeast cells incorporating the Synthetic Chromosome Rearrangement and Modification by LoxP-mediated Evolution (SCRaMbLE) system provide a platform...

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Veröffentlicht in:Nature communications 2018-05, Vol.9 (1), p.1933-13, Article 1933
Hauptverfasser: Jia, Bin, Wu, Yi, Li, Bing-Zhi, Mitchell, Leslie A., Liu, Hong, Pan, Shuo, Wang, Juan, Zhang, Hao-Ran, Jia, Nan, Li, Bo, Shen, Michael, Xie, Ze-Xiong, Liu, Duo, Cao, Ying-Xiu, Li, Xia, Zhou, Xiao, Qi, Hao, Boeke, Jef D., Yuan, Ying-Jin
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Sprache:eng
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Zusammenfassung:Compatibility between host cells and heterologous pathways is a challenge for constructing organisms with high productivity or gain of function. Designer yeast cells incorporating the Synthetic Chromosome Rearrangement and Modification by LoxP-mediated Evolution (SCRaMbLE) system provide a platform for generating genotype diversity. Here we construct a genetic AND gate to enable precise control of the SCRaMbLE method to generate synthetic haploid and diploid yeast with desired phenotypes. The yield of carotenoids is increased to 1.5-fold by SCRaMbLEing haploid strains and we determine that the deletion of YEL013W is responsible for the increase. Based on the SCRaMbLEing in diploid strains, we develop a strategy called Multiplex SCRaMbLE Iterative Cycling (MuSIC) to increase the production of carotenoids up to 38.8-fold through 5 iterative cycles of SCRaMbLE. This strategy is potentially a powerful tool for increasing the production of bio-based chemicals and for mining deep knowledge. The SCRaMbLE system integrated into Sc2.0’s synthetic yeast chromosome project allows rapid strain evolution. Here the authors use a genetic logic gate to control induction of recombination in a haploid and diploid yeast carrying synthetic chromosomes.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-018-03084-4