重组工程
基因组
计算生物学
合成生物学
生物
基因组编辑
基因组工程
同源重组
遗传学
人口
代谢工程
基因
人口学
社会学
作者
Gur Pines,Emily F. Freed,James D. Winkler,Ryan T. Gill
标识
DOI:10.1021/acssynbio.5b00009
摘要
The ability to specifically modify bacterial genomes in a precise and efficient manner is highly desired in various fields, ranging from molecular genetics to metabolic engineering and synthetic biology. Much has changed from the initial realization that phage-derived genes may be employed for such tasks to today, where recombineering enables complex genetic edits within a genome or a population. Here, we review the major developments leading to recombineering becoming the method of choice for in situ bacterial genome editing while highlighting the various applications of recombineering in pushing the boundaries of synthetic biology. We also present the current understanding of the mechanism of recombineering. Finally, we discuss in detail issues surrounding recombineering efficiency and future directions for recombineering-based genome editing.
科研通智能强力驱动
Strongly Powered by AbleSci AI