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Emergence and Evolution of Modern Molecular Functions Inferred from Phylogenomic Analysis of Ontological Data

机译:从本体数据的系统学分析推断现代分子功能的产生和演变

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The biological processes that characterize the phenotypes of a living system are embodied in the function of molecules and hold the key to evolutionary history, delimiting natural selection and change. These processes and functions provide direct insight into the emergence, development, and organization of cellular life. However, detailed molecular functions make up a network-like hierarchy of relationships that tells little of evolutionary links between structure and function in biology. For example, Gene Ontology terms represent widely-used vocabularies of processes and functions with evolutionary relationships that are implicit but not defined. Here, we uncover patterns of global evolutionary history in ontological terms associated with the sequence of 38 genomes. These patterns unfold the metabolic origins of modern molecular functions and major biological transitions in evolution toward complex life. Phylogenies reveal the primordial appearance of hydrolases and transferases, with ATPase, GTPase, and helicase activities being the most ancient. This indicates that ancient catalysts were crucial for binding and transport, the emergence of nucleic acids and protein biopolymers, and the communication of primordial cells with the environment. Finally, the history of biological processes showed that cellular biopolymer metabolic processes preceded biopolymer biosynthesis and essential processes related to macromolecular formation, directly challenging the existence of an RNA world. Phylogenomic systematization of biological function takes the structure and function paradigm to a completely new level of abstraction, demonstrating a “metabolic first” origin of life. The approach uncovers patterns in the morphing of function that are unprecedented and necessary for systematic views in biology.
机译:表征生命系统表型的生物学过程体现在分子的功能中,并成为进化史的关键,从而限制了自然选择和变化。这些过程和功能可以直接洞悉细胞生命的出现,发展和组织。但是,详细的分子功能构成了类似网络的关系层次结构,几乎无法说明生物学中结构与功能之间的进化联系。例如,基因本体术语代表具有隐式但未定义的进化关系的广泛使用的过程和功能词汇。在这里,我们以与38个基因组序列相关的本体论术语揭示了全球进化史的模式。这些模式揭示了现代分子功能的代谢起源和向复杂生活演变的主要生物学转变。系统发育揭示了水解酶和转移酶的原始外观,其中最古老的是ATPase,GTPase和解旋酶活性。这表明古老的催化剂对于结合和运输,核酸和蛋白质生物聚合物的出现以及原始细胞与环境的交流至关重要。最后,生物学过程的历史表明,细胞生物聚合物的代谢过程先于生物聚合物的生物合成和涉及大分子形成的基本过程,直接挑战了RNA世界的存在。生理功能的系统生物学系统化将结构和功能范式提升到了一个全新的抽象水平,证明了生命的“代谢优先”。该方法揭示了功能变体中的模式,这对于生物学的系统性观察是前所未有的和必要的。

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