论文标题
通过相互作用网络解释的星际分子复杂性的出现
The emergence of interstellar molecular complexity explained by interacting networks
论文作者
论文摘要
近年来,在星际空间中发现了越来越多的复杂有机分子的发现,其中一些是益生元感兴趣的。揭示星际益生元化学的起源及其与生物化学的联系,最终与生物学的联系是一个极具挑战性的科学目标,即复杂性理论和网络科学的应用尚未得到充分利用。在这个想法的鼓励下,我们提出了一个理论和计算框架,将简单网络结构的演变建模为复杂性。在我们的环境中,复杂的网络代表简化的化学化合物,并相互作用优化了节点的动态重要性。当代表环境的参数达到临界值时,我们描述了从简单网络向复杂性的过渡的出现。值得注意的是,尽管我们的系统没有试图对真实化学的规则进行建模,也不依赖于外部输入数据,但结果描述了星际介质中化学多样性进化中复杂性的出现。此外,它们揭示了乌云中分子的丰度与产生它们作为产品的化学反应的潜在数量之间的尚不清楚的关系,从而支持此处介绍的概念框架的能力,从而阐明了真实场景。我们的工作加强了这样一个观念,即从化学中的化学到益生元化学再到生命的某些特性,可以表现出相对简单和普遍的模式。
Recent years have witnessed the detection of an increasing number of complex organic molecules in interstellar space, some of them being of prebiotic interest. Disentangling the origin of interstellar prebiotic chemistry and its connection to biochemistry and ultimately to biology is an enormously challenging scientific goal where the application of complexity theory and network science has not been fully exploited. Encouraged by this idea, we present a theoretical and computational framework to model the evolution of simple networked structures toward complexity. In our environment, complex networks represent simplified chemical compounds, and interact optimizing the dynamical importance of their nodes. We describe the emergence of a transition from simple networks toward complexity when the parameter representing the environment reaches a critical value. Notably, although our system does not attempt to model the rules of real chemistry, nor is dependent on external input data, the results describe the emergence of complexity in the evolution of chemical diversity in the interstellar medium. Furthermore, they reveal an as yet unknown relationship between the abundances of molecules in dark clouds and the potential number of chemical reactions that yield them as products, supporting the ability of the conceptual framework presented here to shed light on real scenarios. Our work reinforces the notion that some of the properties that condition the extremely complex journey from the chemistry in space to prebiotic chemistry and finally to life could show relatively simple and universal patterns.