Bedeaux Dick, Kjelstrup Signe
Centre for Advanced Study at Norwegian Academy of Science and Letters, Oslo, NO-0271, Norway.
Phys Chem Chem Phys. 2008 Dec 28;10(48):7304-17. doi: 10.1039/b810374g. Epub 2008 Oct 29.
We present a new mesoscopic basis which can be used to derive flux equations for the forward and reverse mode of operation of ion-pumps. We obtain a description of the fluxes far from global equilibrium. An asymmetric set of transport coefficients is obtained, by assuming that the chemical reaction as well as the ion transports are activated, and that the enzyme has a temperature independent of the activation coordinates. Close to global equilibrium, the description reduces to the well known one from non-equilibrium thermodynamics with a symmetric set of transport coefficients. We show how the measurable heat flux and the heat production under isothermal conditions, as well as thermogenesis, can be defined. Thermogenesis is defined via the onset of the chemical reaction or ion transports by a temperature drop. A prescription has been given for how to determine transport coefficients on the mesocopic level, using the macroscopic coefficient obtained from measurements, the activation enthalpy, and a proper probability distribution. The method may give new impetus to a long-standing unsolved transport problem in biophysics.
我们提出了一种新的介观基础,可用于推导离子泵正向和反向运行模式下的通量方程。我们得到了远离全局平衡时通量的描述。通过假设化学反应以及离子传输是活化的,并且酶具有与活化坐标无关的温度,得到了一组不对称的传输系数。在接近全局平衡时,该描述简化为具有对称传输系数集的非平衡热力学中众所周知的描述。我们展示了如何定义可测量的热通量、等温条件下的热产生以及产热。产热是通过化学反应或离子传输因温度下降而开始来定义的。已经给出了一种规定,说明如何使用从测量中获得的宏观系数、活化焓和适当的概率分布来确定介观水平上的传输系数。该方法可能会为生物物理学中一个长期未解决的传输问题带来新的推动。