Design principles for biochemical oscillations with limited energy resources

Zhiyu Cao, Huijun Jiang, Z. Hou
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引用次数: 2

Abstract

As biochemical systems may frequently suffer from limited energy resources so that internal molecular fluctuation has to be utilized to induce random rhythm, it is still a great theoretical challenge to understand the elementary principles for biochemical systems with limited energy resources to maintain phase accuracy and phase sensitivity. Here, we address the issue by deriving the energy accuracy and the sensitivity-accuracy trade-off relations for a general biochemical model, analytically and numerically. We find that, biochemical systems consume much lower energy cost by noise-induced oscillations to keep almost equal efficiency to maintain precise processes than that by normal oscillations, elucidating clearly the survival mechanism when energy resources are limited. Moreover, an optimal system size is predicted where both the highest sensitivity and accuracy can be reached at the same time, providing a new strategy for the design of biological networks with limited energy sources.
有限能源条件下生化振荡的设计原则
由于生物化学系统往往能量有限,必须利用分子内部波动来诱导随机节律,因此了解有限能量的生物化学系统保持相精度和相灵敏度的基本原理仍然是一个很大的理论挑战。在这里,我们通过解析和数值推导一般生化模型的能量精度和灵敏度-精度权衡关系来解决这个问题。我们发现,与正常振荡相比,生物化学系统通过噪声诱导振荡消耗更低的能量成本来保持几乎相同的效率,以维持精确的过程,清楚地阐明了能量资源有限时的生存机制。此外,还预测了同时达到最高灵敏度和精度的最优系统尺寸,为有限能量的生物网络设计提供了一种新的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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