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Memory and Modularity in Cell-Fate Decision Making

机译:细胞命运决策中的记忆和模块化

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摘要

Genetically identical cells sharing an environment can display markedly different phenotypes. It is often unclear how much of this variation derives from chance, external signals, or attempts by individual cells to exert autonomous phenotypic programs. By observing thousands of cells for hundreds of consecutive generations under constant conditions, we dissect the stochastic decision between a solitary, motile state and a chained, sessile state in Bacillus subtilis. The motile state is memoryless, exhibiting no autonomous control over the time spent in the state, whereas chaining is tightly timed. Timing enforces coordination among related cells in the multicellular state. Further, we show that the three-protein regulatory circuit governing the decision is modular, as initiation and maintenance of chaining are genetically separable functions. As stimulation of the same initiating pathway triggers biofilm formation, we argue that autonomous timing allows a trial commitment to multicellularity that external signals could extend.
机译:共享环境的遗传上相同的细胞可以显示明显不同的表型。常常不清楚这种变化的多少是由偶然,外部信号或单个细胞尝试进行自主表型程序产生的。通过在恒定条件下观察数百个连续世代中的数千个细胞,我们研究了枯草芽孢杆菌中一种孤立的,能动的状态和一个链的,无柄的状态之间的随机决策。运动状态是无记忆的,在该状态下花费的时间没有显示出自主控制权,而链接的时间紧迫。定时在多细胞状态下强制相关细胞之间的协调。此外,我们显示,支配该决定的三蛋白质调节电路是模块化的,因为链的起始和维持是遗传上可分离的功能。由于对同一起始途径的刺激会触发生物膜的形成,因此我们认为自主计时允许对外部信号可能扩展的多细胞性的试验承诺。

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