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Thermal robustness of signaling in bacterial chemotaxis

机译:信号在细菌趋化性中的热鲁棒性

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Temperature is a global factor that affects the performance of all intracellular networks. Robustness against temperature variations is thus expected to be an essential network property, particularly in organisms without inherent temperature control. Here, we combine experimental analyses with computational modeling to investigate thermal robustness of signaling in chemotaxis of Escherichia coli, a relatively simple and well-established model for systems biology. We show that steady-state and kinetic pathway parameters that are essential for chemotactic performance are indeed temperature- compensated in the entire physiological range. Thermal robustness of steady-state pathway output is ensured at several levels by mutual compensation of temperature effects on activities of individual pathway components. Moreover, the effect of temperature on adaptation kinetics is counterbalanced by preprogrammed temperature dependence of enzyme synthesis and stability to achieve nearly optimal performance at the growth temperature. Similar compensatory mechanisms are expected to ensure thermal robustness in other systems. PaperClip
机译:温度是影响所有细胞内网络性能的全局因素。因此,对温度变化的鲁棒性被认为是必不可少的网络特性,尤其是在没有固有温度控制的生物中。在这里,我们将实验分析与计算模型相结合,以研究信号在大肠杆菌趋化性中的热鲁棒性,这是一个相对简单且完善的系统生物学模型。我们表明,对于趋化性能必不可少的稳态和动力学途径参数在整个生理范围内确实是温度补偿的。通过相互补偿各个通道组件活动的温度影响,可以在几个级别上确保稳态通道输出的热鲁棒性。此外,温度对适应动力学的影响可以通过预先编程的酶合成温度依赖性和稳定性来抵消,从而在生长温度下获得近乎最佳的性能。预期类似的补偿机制可确保其他系统的热稳定性。回形针

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