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自然选择的热力学II:化学卡诺循环。

Thermodynamics of natural selection II: Chemical Carnot cycles.

作者信息

Smith Eric

机构信息

Santa Fe Institute, 1399 Hyde Park Road, Santa Fe, NM 87501, USA.

出版信息

J Theor Biol. 2008 May 21;252(2):198-212. doi: 10.1016/j.jtbi.2008.02.008. Epub 2008 Feb 16.

DOI:10.1016/j.jtbi.2008.02.008
PMID:18367209
Abstract

This is the second in a series of three papers devoted to energy flow and entropy changes in chemical and biological processes, and to their relations to the thermodynamics of computation. In the first paper of the series, it was shown that a general-form dimensional argument from the second law of thermodynamics captures a number of scaling relations governing growth and development across many domains of life. It was also argued that models of physiology based on reversible transformations provide sensible approximations within which the second-law scaling is realized. This paper provides a formal basis for decomposing general cyclic, fixed-temperature chemical reactions, in terms of the chemical equivalent of Carnot's cycle for heat engines. It is shown that the second law relates the minimal chemical work required to perform a cycle to the Kullback-Leibler divergence produced in its chemical output ensemble from that of a Gibbs equilibrium. Reversible models of physiology are used to create reversible models of natural selection, which relate metabolic energy requirements to information gain under optimal conditions. When dissipation is added to models of selection, the second-law constraint is generalized to a relation between metabolic work and the combined energies of growth and maintenance.

摘要

这是关于化学和生物过程中的能量流动与熵变化及其与计算热力学关系的三篇系列论文中的第二篇。在该系列的第一篇论文中,表明了源自热力学第二定律的一般形式量纲论证捕捉到了许多支配生命诸多领域中生长和发育的标度关系。还论证了基于可逆变换的生理学模型提供了合理的近似,在其中实现了第二定律标度。本文为根据热机卡诺循环的化学等效形式来分解一般的循环、恒温化学反应提供了形式基础。结果表明,第二定律将执行一个循环所需的最小化学功与在其化学输出系综中相对于吉布斯平衡产生的库尔贝克 - 莱布勒散度联系起来。生理学的可逆模型被用于创建自然选择的可逆模型,该模型将代谢能量需求与最优条件下的信息增益联系起来。当将耗散添加到选择模型中时,第二定律约束被推广为代谢功与生长和维持的组合能量之间的关系。

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