根据古代共生关系确定细菌生命树的年代。

IF 6.1 1区 生物学 Q1 EVOLUTIONARY BIOLOGY
Sishuo Wang, Haiwei Luo
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引用次数: 0

摘要

获得细菌进化的时间尺度对于理解早期生命进化至关重要,但由于细菌化石的稀缺性,这是困难的。在这里,我们引入了多个新的时间约束来校准基于古代共生的细菌进化。这个想法是通过一个细菌树来实现的,这个细菌树是由在变形杆菌中嵌入的线粒体谱系中发现的基因构建的。扩大的线粒体-细菌树允许真核生物通过丰富的化石建立的节点年龄限制传播到古老的共同进化的细菌共生体和整个细菌生命树。重要的是,我们制定了一个新的概率框架,该框架考虑了现代共生体祖先生活方式推断的不确定性,并应用19个相对时间约束(RTC),每个RTC都由宿主-共生体关联通知,以约束不超过其真核宿主的细菌共生体。此外,我们开发了一种结合替代混合物模型的方法,该模型可以更好地适应取代饱和度和成分异质性,以确定深层系统发育的年代。我们的分析估计,最后的细菌共同祖先(LBCA)大约发生在40 - 35亿年前(Ga),随后是主要细菌分支的快速分化。它对不同的根年龄、根位置、树的拓扑结构、化石年龄、祖先生活方式重建、基因集等因素都具有普遍的鲁棒性。获得的时间表可作为检验关于细菌多样化及其与不同时间尺度的地质生物学事件的相关性的假设的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dating the bacterial tree of life based on ancient symbiosis.

Obtaining a timescale for bacterial evolution is crucial to understand early life evolution but is difficult owing to the scarcity of bacterial fossils. Here, we introduce multiple new time constraints to calibrate bacterial evolution based on ancient symbiosis. This idea is implemented using a bacterial tree constructed with genes found in the mitochondrial lineages phylogenetically embedded within Proteobacteria. The expanded mitochondria-bacterial tree allows the node age constraints of eukaryotes established by their abundant fossils to be propagated to ancient co-evolving bacterial symbionts and across the bacterial tree of life. Importantly, we formulate a new probabilistic framework that considers uncertainty in inference of the ancestral lifestyle of modern symbionts to apply 19 relative time constraints (RTC) each informed by host-symbiont association to constrain bacterial symbionts no older than their eukaryotic host. Moreover, we develop an approach to incorporating substitution mixture models that better accommodate substitutional saturation and compositional heterogeneity for dating deep phylogenies. Our analysis estimates that the last bacterial common ancestor (LBCA) occurred approximately 4.0-3.5 billion years ago (Ga), followed by rapid divergence of major bacterial clades. It is generally robust to alternative root ages, root positions, tree topologies, fossil ages, ancestral lifestyle reconstruction, gene sets, among other factors. The obtained timetree serves as a foundation for testing hypotheses regarding bacterial diversification and its correlation with geobiological events across different timescales.

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来源期刊
Systematic Biology
Systematic Biology 生物-进化生物学
CiteScore
13.00
自引率
7.70%
发文量
70
审稿时长
6-12 weeks
期刊介绍: Systematic Biology is the bimonthly journal of the Society of Systematic Biologists. Papers for the journal are original contributions to the theory, principles, and methods of systematics as well as phylogeny, evolution, morphology, biogeography, paleontology, genetics, and the classification of all living things. A Points of View section offers a forum for discussion, while book reviews and announcements of general interest are also featured.
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