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From Molecules to Life: Quantifying the Complexity of Chemical and Biological Systems in the Universe

机译:从分子到生命:量化宇宙中化学和生物系统的复杂性

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摘要

Life is a complex phenomenon and much research has been devoted to both understanding its origins from prebiotic chemistry and discovering life beyond Earth. Yet, it has remained elusive how to quantify this complexity and how to compare chemical and biological units on one common scale. Here, a mathematical description of molecular complexity was applied allowing to quantitatively assess complexity of chemical structures. This in combination with the orthogonal measure of information complexity resulted in a two-dimensional complexity space ranging over the entire spectrum from molecules to organisms. Entities with a certain level of information complexity directly require a functionally complex mechanism for their production or replication and are hence indicative for life-like systems. In order to describe entities combining molecular and information complexity, the term biogenic unit was introduced. Exemplified biogenic unit complexities were calculated for ribozymes, protein enzymes, multimeric protein complexes, and even an entire virus particle. Complexities of prokaryotic and eukaryotic cells, as well as multicellular organisms, were estimated. Thereby distinct evolutionary stages in complexity space were identified. The here developed approach to compare the complexity of biogenic units allows for the first time to address the gradual characteristics of prebiotic and life-like systems without the need for a definition of life. This operational concept may guide our search for life in the Universe, and it may direct the investigations of prebiotic trajectories that lead towards the evolution of complexity at the origins of life.Electronic supplementary materialThe online version of this article (10.1007/s00239-017-9824-6) contains supplementary material, which is available to authorized users.
机译:生命是一个复杂的现象,人们已经进行了大量研究,既了解益生元化学的起源,又发现地球以外的生命。然而,如何量化这种复杂性以及如何在一个通用的尺度上比较化学和生物学单位仍然难以捉摸。在此,对分子复杂性进行了数学描述,从而可以定量评估化学结构的复杂性。这与信息复杂度的正交度量相结合,形成了一个二维复杂度空间,其范围从分子到有机体,都覆盖了整个光谱。具有一定程度的信息复杂性的实体直接需要功能复杂的机制来进行生产或复制,因此指示着栩栩如生的系统。为了描述结合分子和信息复杂性的实体,引入了术语“生物发生单位”。计算了核酶,蛋白质酶,多聚体蛋白质复合物,甚至整个病毒颗粒的示例性生物单位复杂度。估计了原核和真核细胞以及多细胞生物的复杂性。从而确定了复杂性空间中不同的演化阶段。此处开发的比较生物基因单元复杂性的方法首次允许解决益生元和逼真的系统的渐进特征,而无需定义生命。这个操作概念可能会指导我们在宇宙中的生命探索,并可能指导对导致生命起源复杂性演变的益生元轨迹的研究。电子补充材料本文的在线版本(10.1007 / s00239-017- 9824-6)包含补充材料,授权用户可以使用。

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