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A single-input binary counting module based on serine integrase site-specific recombination

机译:基于丝氨酸整合酶特定位点重组的单输入二进制计数模块

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摘要

A device that counts and records the number of events experienced by an individual cell could have many uses in experimental biology and biotechnology. Here, we report a DNA-based ‘latch’ that switches between two states upon each exposure to a repeated stimulus. The key component of the latch is a DNA segment whose orientation is inverted by the actions of ϕC31 integrase and its recombination directionality factor (RDF). Integrase expression is regulated by an external input, while RDF expression is controlled by the state of the latch, such that the orientation of the invertible segment switches efficiently each time the device receives an input pulse. Recombination occurs over a time scale of minutes after initiation of integrase expression. The latch requires a delay circuit, implemented with a transcriptional repressor expressed in only one state, to ensure that each input pulse results in only one inversion of the DNA segment. Development and optimization of the latch in living cells was driven by mathematical modelling of the recombination reactions and gene expression regulated by the switch. We discuss how N latches built with orthogonal site-specific recombination systems could be chained together to form a binary ripple counter that could count to 2N − 1.
机译:计数并记录单个细胞经历的事件数量的设备在实验生物学和生物技术中可能有许多用途。在这里,我们报告了一种基于DNA的“闩锁”,该闩锁会在每次受到重复刺激时在两种状态之间切换。闩锁的关键部分是一个DNA片段,其方向因orientationC31整合酶及其重组方向性因子(RDF)的作用而反转。积分表达式由外部输入调节,而RDF表达式则由锁存器的状态控制,因此每次器件接收到输入脉冲时,可反转段的方向都会有效切换。重组发生在整合酶表达启动后的几分钟内。锁存器需要一个延迟电路,该电路用仅以一种状态表达的转录阻遏物实现,以确保每个输入脉冲仅导致DNA片段的一次反转。重组细胞和开关调控基因表达的数学模型驱动着活细胞闩锁的发展和优化。我们讨论了如何将使用正交于特定位置的重组系统构建的N个锁存器链接在一起以形成可计数至2N−1的二进制纹波计数器。

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