Tsuruyama Tatsuaki
Clinical Research Center for Medical Equipment Development, Department of Pathology, Kyoto University Hospital, Shogoin-Kawahara-cho 54, Sakyo-ku, Kyoto 606-8057, Japan.
Entropy (Basel). 2018 Mar 26;20(4):224. doi: 10.3390/e20040224.
A cell signaling system is in a non-equilibrium state, and it includes multistep biochemical signaling cascades (BSCs), which involve phosphorylation of signaling molecules, such as mitogen-activated protein kinase (MAPK) pathways. In this study, the author considered signal transduction description using information thermodynamic theory. The ideal BSCs can be considered one type of the Szilard engine, and the presumed feedback controller, Maxwell's demon, can extract the work during signal transduction. In this model, the mutual entropy and chemical potential of the signal molecules can be redefined by the extracted chemical work in a model, Szilard engine, of BSC. In conclusion, signal transduction is computable using the information thermodynamic method.
细胞信号系统处于非平衡状态,它包括多步生化信号级联反应(BSCs),其中涉及信号分子的磷酸化,如丝裂原活化蛋白激酶(MAPK)途径。在本研究中,作者考虑使用信息热力学理论来描述信号转导。理想的BSCs可被视为一种西拉德引擎,而假定的反馈控制器麦克斯韦妖可以在信号转导过程中提取功。在该模型中,信号分子的互熵和化学势可以通过在BSC的西拉德引擎模型中提取的化学功来重新定义。总之,信号转导可以用信息热力学方法进行计算。