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基于第一性原理预测简单遗传电路的信息处理能力。

First-principles prediction of the information processing capacity of a simple genetic circuit.

机构信息

Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, California 91125, USA.

Department of Physics, W. M. Keck Science Department, Claremont McKenna College, Claremont, California 91711, USA.

出版信息

Phys Rev E. 2020 Aug;102(2-1):022404. doi: 10.1103/PhysRevE.102.022404.

Abstract

Given the stochastic nature of gene expression, genetically identical cells exposed to the same environmental inputs will produce different outputs. This heterogeneity has been hypothesized to have consequences for how cells are able to survive in changing environments. Recent work has explored the use of information theory as a framework to understand the accuracy with which cells can ascertain the state of their surroundings. Yet the predictive power of these approaches is limited and has not been rigorously tested using precision measurements. To that end, we generate a minimal model for a simple genetic circuit in which all parameter values for the model come from independently published data sets. We then predict the information processing capacity of the genetic circuit for a suite of biophysical parameters such as protein copy number and protein-DNA affinity. We compare these parameter-free predictions with an experimental determination of protein expression distributions and the resulting information processing capacity of E. coli cells. We find that our minimal model captures the scaling of the cell-to-cell variability in the data and the inferred information processing capacity of our simple genetic circuit up to a systematic deviation.

摘要

鉴于基因表达的随机性,暴露在相同环境输入下的遗传上相同的细胞将产生不同的输出。这种异质性被假设对细胞在不断变化的环境中生存的能力有影响。最近的工作探索了使用信息论作为框架来理解细胞确定其周围环境状态的准确性。然而,这些方法的预测能力是有限的,并且尚未使用精确测量来严格测试。为此,我们生成了一个简单遗传电路的最小模型,其中模型的所有参数值都来自独立发布的数据集。然后,我们预测遗传电路对一系列生物物理参数(如蛋白质拷贝数和蛋白质-DNA 亲和力)的信息处理能力。我们将这些无参数预测与对大肠杆菌细胞中蛋白质表达分布和由此产生的信息处理能力的实验测定进行比较。我们发现,我们的最小模型可以捕获数据中细胞间变异性的缩放以及我们简单遗传电路的推断信息处理能力,直到出现系统偏差。

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