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A load driver device for engineering modularity in biological networks

机译:用于生物网络中的工程模块化的负载驱动器设备

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摘要

The behavior of gene modules in complex synthetic circuits is often unpredictable(1-4). After joining modules to create a circuit, downstream elements (such as binding sites for a regulatory protein) apply a load to upstream modules that can negatively affect circuit function(1,5). Here we devised a genetic device named a load driver that mitigates the impact of load on circuit function, and we demonstrate its behavior in Saccharomyces cerevisiae. The load driver implements the design principle of timescale separation: inclusion of the load driver's fast phosphotransfer processes restores the capability of a slower transcriptional circuit to respond to time-varying input signals even in the presence of substantial load. Without the load driver, we observed circuit behavior that suffered from a 76% delay in response time and a 25% decrease in system bandwidth due to load. With the addition of a load driver, circuit performance was almost completely restored. Load drivers will serve as fundamental building blocks in the creation of complex, higher-level genetic circuits.
机译:基因模块在复杂的合成电路中的行为通常是不可预测的(1-4)。连接模块以创建电路后,下游元件(例如调节蛋白的结合位点)会向上游模块施加负载,这可能会对电路功能产生负面影响(1,5)。在这里,我们设计了一种名为负载驱动程序的遗传设备,该设备可减轻负载对电路功能的影响,并展示其在酿酒酵母中的行为。负载驱动器实现了时标分离的设计原理:负载驱动器的快速磷转移过程的包含恢复了较慢的转录电路对时变输入信号做出响应的能力,即使存在大量负载也是如此。在没有负载驱动器的情况下,我们观察到电路性能因响应时间而延迟了76%,而系统带宽却降低了25%。加上负载驱动器,电路性能几乎完全恢复。负载驱动程序将作为创建复杂的更高级别的遗传电路的基本构建块。

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