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How and why kinetics thermodynamics and chemistry induce the logic of biological evolution

机译:动力学热力学和化学如何以及为何引发生物进化的逻辑

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摘要

Thermodynamic stability, as expressed by the Second Law, generally constitutes the driving force for chemical assembly processes. Yet, somehow, within the living world most self-organisation processes appear to challenge this fundamental rule. Even though the Second Law remains an inescapable constraint, under energy-fuelled, far-from-equilibrium conditions, populations of chemical systems capable of exponential growth can manifest another kind of stability, dynamic kinetic stability (DKS). It is this stability kind based on time/persistence, rather than on free energy, that offers a basis for understanding the evolutionary process. Furthermore, a threshold distance from equilibrium, leading to irreversibility in the reproduction cycle, is needed to switch the directive for evolution from thermodynamic to DKS. The present report develops these lines of thought and argues against the validity of a thermodynamic approach in which the maximisation of the rate of energy dissipation/entropy production is considered to direct the evolutionary process. More generally, our analysis reaffirms the predominant role of kinetics in the self-organisation of life, which, in turn, allows an assessment of semi-quantitative constraints on systems and environments from which life could evolve.
机译:如第二定律所示,热力学稳定性通常构成化学组装过程的驱动力。但是,以某种方式,在生活世界中,大多数自组织过程似乎都在挑战这一基本规则。即使第二定律仍然是不可避免的约束条件,但是在能量驱动的,远非平衡的条件下,具有指数增长能力的化学体系种群可以表现出另一种稳定性,即动态动力学稳定性(DKS)。正是这种基于时间/持久性而不是基于自由能的稳定性,为理解进化过程提供了基础。此外,需要一个距平衡的阈值距离,从而导致复制周期不可逆,才能将指令从热力学转换为DKS。本报告提出了这些思路,并反对热力学方法的有效性,在热力学方法中,能量耗散/熵产生速率的最大化被认为是指导进化过程的方法。更普遍地说,我们的分析重申了动力学在生命的自组织中的主要作用,从而可以评估生命可以进化的系统和环境的半定量约束。

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