新月形茎杆菌
细胞分裂
质粒
不对称细胞分裂
生物
多细胞生物
细胞生物学
大肠杆菌
细胞
遗传学
DNA
细胞周期
基因
作者
Sara Molinari,David L. Shis,Shyam Bhakta,James Chappell,Oleg A. Igoshin,Matthew R. Bennett
标识
DOI:10.1038/s41589-019-0339-x
摘要
We describe a synthetic genetic circuit for controlling asymmetric cell division in Escherichia coli in which a progenitor cell creates a differentiated daughter cell while retaining its original phenotype. Specifically, we engineered an inducible system that can bind and segregate plasmid DNA to a single position in the cell. Upon cell division, colocalized plasmids are kept by one and only one of the daughter cells. The other daughter cell receives no plasmid DNA and is irreversibly differentiated from its sibling. In this way, we achieved asymmetric cell division through asymmetric plasmid partitioning. We then used this system to achieve physical separation of genetically distinct cells by tying motility to differentiation. Finally, we characterized an orthogonal inducible circuit that enables the simultaneous asymmetric partitioning of two plasmid species, resulting in cells that have four distinct differentiated states. These results point the way toward the engineering of multicellular systems from prokaryotic hosts. The chromosomal partitioning system (par) of Caulobacter crescentus was repurposed to create an inducible genetic circuit for asymmetric plasmid partitioning and cell division in Escherichia coli.
科研通智能强力驱动
Strongly Powered by AbleSci AI