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首页> 外文期刊>BMC Systems Biology >Cascading signaling pathways improve the fidelity of a stochastically and deterministically simulated molecular RS latch
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Cascading signaling pathways improve the fidelity of a stochastically and deterministically simulated molecular RS latch

机译:级联的信号通路提高了随机和确定性模拟的分子RS锁存器的保真度

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Background While biological systems have often been compared with digital systems, they differ by the strong effect of crosstalk between signals due to diffusivity in the medium, reaction kinetics and geometry. Memory elements have allowed the creation of autonomous digital systems and although biological systems have similar properties of autonomy, equivalent memory mechanisms remain elusive. Any such equivalent memory system, however, must silence the effect of crosstalk to maintain memory fidelity. Results Here, we present a system of enzymatic reactions that behaves like an RS latch (a simple memory element in digital systems). Using both a stochastic molecular simulator and ordinary differential equation simulator, we showed that crosstalk between two latches operating in the same spatial localization disrupts the memory fidelity of both latches. Crosstalk was reduced or silenced when simple reaction loops were replaced with multiple step or cascading reactions, showing that cascading signaling pathways are less susceptible to crosstalk. Conclusion Thus, the common biological theme of cascading signaling pathways is advantageous for maintaining the fidelity of a memory latch in the presence of crosstalk. The experimental implementation of such a latch system will lead to novel approaches to cell control using synthetic proteins and will contribute to our understanding of why cells behave differently even when given the same stimulus.
机译:背景技术虽然通常将生物系统与数字系统进行比较,但由于介质之间的扩散性,反应动力学和几何形状,它们之间的信号串扰的强烈影响有所不同。记忆元件允许创建自主的数字系统,尽管生物系统具有类似的自治属性,但等效的记忆机制仍然难以捉摸。但是,任何此类等效的存储系统都必须消除串扰的影响,以保持存储保真度。结果在这里,我们介绍了一种酶促反应系统,其行为类似于RS锁存器(数字系统中的简单存储元件)。通过使用随机分子模拟器和常微分方程模拟器,我们证明了在相同空间定位下工作的两个锁存器之间的串扰会破坏两个锁存器的存储保真度。当简单的反应环被多步反应或级联反应代替时,串扰会降低或消除,这表明级联的信号通路不易受到串扰的影响。结论因此,级联信号通路的共同生物学主题有利于在存在串扰的情况下保持记忆锁存器的保真度。这种闩锁系统的实验实现将导致使用合成蛋白进行细胞控制的新方法,并且将有助于我们理解为什么即使给予相同的刺激,细胞的行为也会有所不同。

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