基因组工程
基因组
合成生物学
生物
重组酶
计算生物学
清脆的
质粒
基因组编辑
细菌基因组大小
转座因子
遗传学
基因
重组
作者
Joshua R. Elmore,Gara N. Dexter,Henri Baldino,Jay D. Huenemann,Ryan M. Francis,George Peabody,Jessica Martinez-Baird,Lauren A. Riley,Tuesday Simmons,Devin Coleman‐Derr,Adam M. Guss,Robert G. Egbert
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2023-03-10
卷期号:9 (10)
被引量:46
标识
DOI:10.1126/sciadv.ade1285
摘要
Efficient genome engineering is critical to understand and use microbial functions. Despite recent development of tools such as CRISPR-Cas gene editing, efficient integration of exogenous DNA with well-characterized functions remains limited to model bacteria. Here, we describe serine recombinase-assisted genome engineering, or SAGE, an easy-to-use, highly efficient, and extensible technology that enables selection marker-free, site-specific genome integration of up to 10 DNA constructs, often with efficiency on par with or superior to replicating plasmids. SAGE uses no replicating plasmids and thus lacks the host range limitations of other genome engineering technologies. We demonstrate the value of SAGE by characterizing genome integration efficiency in five bacteria that span multiple taxonomy groups and biotechnology applications and by identifying more than 95 heterologous promoters in each host with consistent transcription across environmental and genetic contexts. We anticipate that SAGE will rapidly expand the number of industrial and environmental bacteria compatible with high-throughput genetics and synthetic biology.
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