Nonequilibrium steady state of biochemical cycle kinetics under non-isothermal conditions

被引:4
|
作者
Jin, Xiao [1 ,2 ]
Ge, Hao [1 ,3 ]
机构
[1] Peking Univ, BICMR, Beijing 100871, Peoples R China
[2] Peking Univ, Sch Math Sci, Beijing 100871, Peoples R China
[3] Peking Univ, Biodynam Opt Imaging Ctr BIOPIC, Beijing 100871, Peoples R China
来源
NEW JOURNAL OF PHYSICS | 2018年 / 20卷
关键词
stochastic thermodynamics; cycle kinetics; reaction-rate formula; non-isothermal condition; CA-ATPASE; SYSTEMS; TIME; TEMPERATURE; CA2+-ATPASE; RETICULUM; TRANSPORT; BINDING; CELL;
D O I
10.1088/1367-2630/aab8cf
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The nonequilibrium steady state of isothermal biochemical cycle kinetics has been extensively studied, but that under non-isothermal conditions has been much less extensively investigated. When the heat exchange between subsystems is slow, the isothermal assumption of the whole system breaks down, as is true for many types of living organisms. Here, starting with a four-state model of molecular transporter across the cell membrane, we generalize the nonequilibrium steady-state theory of isothermal biochemical cycle kinetics to the circumstances with non-uniform temperatures of subsystems in terms of general master equation models. We obtain a new thermodynamic relationship between the chemical reaction rates and thermodynamic potentials in non-isothermal circumstances, based on the overdamped dynamics along the continuous reaction coordinate. We show that the entropy production can vary up to 3% in real cells, even when the temperature difference across the cell membrane is only approximately 1 K. We then decompose the total thermodynamic driving force into its thermal and chemical components and predict that the net flux of molecules transported by the molecular transporter can potentially go against the temperature gradient in the absence of a chemical driving force. Furthermore, we demonstrate that the simple application of the isothermal transition-state rate formula for each chemical reaction in terms of only the reactant' temperature is not thermodynamically consistent. Therefore, we mathematically derive several revised reaction rate formulas that are not only consistent with the new thermodynamic relationship but also approximate the exact reaction rate better than Kramers' rate formula under isothermal conditions.
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页数:23
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