论文标题

用于分析益生元化学反应网络及其动力学行为的生态框架

An ecological framework for the analysis of prebiotic chemical reaction networks and their dynamical behavior

论文作者

Peng, Zhen, Plum, Alex, Gagrani, Praful, Baum, David A.

论文摘要

人们普遍认为,即使在遗传编码的出现之前,在生命的起源很早,各种小型化学物质的反应网络也可能表现出生命的关键特性,即自我传播和适应性进化。为了探索这种可能性,我们在化学生态系统生态学框架内正式化了化学反应网络的动态。为了捕获这样的想法,即通过富含能量的食物化学物质的通量来维持类似栩栩如生的化学系统,我们对混合良好的容器中的化学生态系统进行了建模,这些化学生态系统会通过固定浓度的食物化学物质溶液持续稀释。对所有化学反应进行建模为完全可逆的,我们表明,用少量的一种或多种成员化学物质播种自催化循环(AC)会导致该循环中所有成员化学物质的物流生长。这一发现证明,在AC和生物物种的种群之间进行了一个启发性的类比。我们扩展了这一发现,以表明成对的AC可以像生物物种一样表现出竞争性,捕食者或互助的关联。此外,当环境中有随机性,尤其是在AC的播种中,化学生态系统可以显示出类似于进化的复杂动力学。当网络体系结构产生生态优先级(第一个生存)时,进化特征尤其清楚,这使得历史上的继承道路取决于循环播种的顺序。尽管如此,此处开发的框架有助于可视化益生元化学反应网络中的自传分析如何产生栩栩如生的特性。此外,化学生态系统生态学可以为探索自适应动力学的出现和基于聚合物的遗传系统的起源提供有用的基础。

It is becoming widely accepted that very early in the origin of life, even before the emergence of genetic encoding, reaction networks of diverse small chemicals might have manifested key properties of life, namely self-propagation and adaptive evolution. To explore this possibility, we formalize the dynamics of chemical reaction networks within the framework of chemical ecosystem ecology. To capture the idea that life-like chemical systems are maintained out of equilibrium by fluxes of energy-rich food chemicals, we model chemical ecosystems in well-mixed containers that are subject to constant dilution by a solution with a fixed concentration of food chemicals. Modelling all chemical reactions as fully reversible, we show that seeding an autocatalytic cycle (AC) with tiny amounts of one or more of its member chemicals results in logistic growth of all member chemicals in the cycle. This finding justifies drawing an instructive analogy between an AC and the population of a biological species. We extend this finding to show that pairs of ACs can show competitive, predator-prey, or mutualistic associations just like biological species. Furthermore, when there is stochasticity in the environment, particularly in the seeding of ACs, chemical ecosystems can show complex dynamics that can resemble evolution. The evolutionary character is especially clear when the network architecture results in ecological precedence (survival of the first), which makes the path of succession historically contingent on the order in which cycles are seeded. For all its simplicity, the framework developed here is helpful for visualizing how autocatalysis in prebiotic chemical reaction networks can yield life-like properties. Furthermore, chemical ecosystem ecology could provide a useful foundation for exploring the emergence of adaptive dynamics and the origins of polymer-based genetic systems.

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