Information thermodynamics derives the entropy current of cell signal transduction as a model of a binary coding system

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Abstract

The analysis of cellular signaling cascades based on information thermodynamics has recently developed considerably. A signaling cascade may be considered a binary code system consisting of two types of signaling molecules that carry biological information, phosphorylated active, and non-phosphorylated inactive forms. This study aims to evaluate the signal transduction step in cascades from the viewpoint of changes in mixing entropy. An increase in active forms may induce biological signal transduction through a mixing entropy change, which induces a chemical potential current in the signaling cascade. We applied the fluctuation theorem to calculate the chemical potential current and found that the average entropy production current is independent of the step in the whole cascade. As a result, the entropy current carrying signal transduction is defined by the entropy current mobility.

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Tsuruyama, T. (2018). Information thermodynamics derives the entropy current of cell signal transduction as a model of a binary coding system. Entropy, 20(2). https://doi.org/10.3390/e20020145

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