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Synthetic control of a fitness tradeoff in yeast nitrogen metabolism

机译:酵母氮代谢中适应性折衷的合成控制

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Background Microbial communities are involved in many processes relevant to industrial and medical biotechnology, such as the formation of biofilms, lignocellulosic degradation, and hydrogen production. The manipulation of synthetic and natural microbial communities and their underlying ecological parameters, such as fitness, evolvability, and variation, is an increasingly important area of research for synthetic biology. Results Here, we explored how synthetic control of an endogenous circuit can be used to regulate a tradeoff between fitness in resource abundant and resource limited environments in a population of Saccharomyces cerevisiae. We found that noise in the expression of a key enzyme in ammonia assimilation, Gdh1p, mediated a tradeoff between growth in low nitrogen environments and stress resistance in high ammonia environments. We implemented synthetic control of an endogenous Gdh1p regulatory network to construct an engineered strain in which the fitness of the population was tunable in response to an exogenously-added small molecule across a range of ammonia environments. Conclusion The ability to tune fitness and biological tradeoffs will be important components of future efforts to engineer microbial communities.
机译:背景技术微生物群落参与与工业和医学生物技术有关的许多过程,例如生物膜的形成,木质纤维素的降解和氢的产生。合成和天然微生物群落及其基本生态参数(如适应性,可进化性和变异性)的操纵是合成生物学研究中越来越重要的领域。结果在这里,我们探索了内生回路的综合控制可用于调节酿酒酵母种群在资源丰富和资源有限的环境中的适应性之间的折衷。我们发现,噪声在氨吸收中的关键酶Gdh1p的表达介导了低氮环境下的生长与高氨环境下的抗逆性之间的权衡。我们实施了对内源性Gdh1p调控网络的综合控制,以构建一种工程菌株,在该菌株中,种群的适应性可以在一系列氨环境中响应外源添加的小分子而调节。结论调整适应性和生物权衡的能力将是未来微生物群落工程的重要组成部分。

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