定向分子进化
转化(遗传学)
定向进化
突变
计算生物学
电穿孔
人口
生物
基因组工程
适应(眼睛)
计算机科学
微流控
适应性进化
基因组
随机性
代谢工程
生化工程
合成生物学
基因组编辑
突变率
过程(计算)
忠诚
遗传学
选择(遗传算法)
焊剂(冶金)
恒化器
工作流程
蛋白质工程
系统生物学
大肠杆菌
生物系统
功能(生物学)
微生物
作者
Peter Ruppen,Maximilian Ole Bahls,Michael Gerlt,M. Edelmann,Tania Michelle Roberts,Philippe Marlière,Sven Panke
标识
DOI:10.1016/j.ymben.2025.12.007
摘要
The rate of change in adaptive laboratory evolution (ALE), in which a population of microorganisms is continuously cultivated under a specific selective pressure, is controlled by the cellular mutagenesis rate and the randomness of where in the genetic material mutations are introduced. The constant selection pressure makes it a crucial, yet slow, method in developing microorganisms with novel phenotypes for which a rational engineering pathway is either too complex or unknown. A variety of targeted genome editing methods to accelerate evolution and facilitate the engineering of complex novel traits are available. However, these protocols require (nearly) as many successive transformation steps as loci they target, leaving the actual engineering process quite labor-intense, cumbersome, and at odds with the continuous nature of ALE. Here, we provide a fully integrated microfluidic platform that automates and accelerates bacterial transformation by electroporation to the mere push of a button. We demonstrate the functionality and effect by using oligonucleotide-directed mutagenesis in an ALE experiment to accelerate the engineering of riboflavin prototrophy into Escherichia coli.
科研通智能强力驱动
Strongly Powered by AbleSci AI