细菌生长温度作为一种水平获得的多基因性状。

IF 3.2 2区 生物学 Q2 EVOLUTIONARY BIOLOGY Genome Biology and Evolution Pub Date : 2025-01-06 DOI:10.1093/gbe/evae277
Anne A Farrell, Camilla L Nesbø, Olga Zhaxybayeva
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引用次数: 0

摘要

导致有机体对特定生长温度偏好的进化事件,以及在该温度下正常功能所需的产物的基因,都知之甚少。以64种热腐菌门细菌为模型系统,研究了热腐菌历史中最佳生长温度的变化情况。我们推测热腐藻的最后共同祖先是一个嗜热动物,一些热腐藻随后进化出了嗜温和超嗜热的生活方式。通过模拟热生藻历史中基因的获得和损失,并通过重建其系统发育,我们证明了对较低和较高生长温度的适应既包括必要基因的获得,也包括不必要基因的损失。通过一项全基因组关联研究,我们将68个基因的存在/缺失与特定的最佳生长温度区间相关联。虽然其中一些基因的特征不明确,但大多数基因参与氨基酸、核苷酸、碳水化合物和脂质的代谢,以及信号转导和转录调节。68个基因中的大多数都有与其他细菌和古细菌水平基因转移的历史,这些细菌和古细菌通常生长在相似的温度下,这表明基因的平行获取可能促进了不同热生菌物种对特定生长温度的独立适应。
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Bacterial Growth Temperature as a Horizontally Acquired Polygenic Trait.

Evolutionary events leading to organismal preference for a specific growth temperature, as well as genes whose products are needed for a proper function at that temperature, are poorly understood. Using 64 bacteria from phylum Thermotogota as a model system, we examined how optimal growth temperature changed throughout Thermotogota history. We inferred that Thermotogota's last common ancestor was a thermophile and that some Thermotogota evolved the mesophilic and hyperthermophilic lifestyles secondarily. By modeling gain and loss of genes throughout Thermotogota history and by reconstructing their phylogenies, we demonstrated that adaptations to lower and higher growth temperature involve both the acquisition of necessary genes and loss of unnecessary genes. Via a pangenome-wide association study, we correlated presence/absence of 68 genes with specific optimal growth temperature intervals. While some of these genes are poorly characterized, most are involved in metabolism of amino acids, nucleotides, carbohydrates, and lipids, as well as in signal transduction and regulation of transcription. Most of the 68 genes have a history of horizontal gene transfer with other bacteria and archaea that often grow at similar temperatures, suggesting that parallel acquisitions of genes likely promote independent adaptations of different Thermotogota species to specific growth temperatures.

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来源期刊
Genome Biology and Evolution
Genome Biology and Evolution EVOLUTIONARY BIOLOGY-GENETICS & HEREDITY
CiteScore
5.80
自引率
6.10%
发文量
169
审稿时长
1 months
期刊介绍: About the journal Genome Biology and Evolution (GBE) publishes leading original research at the interface between evolutionary biology and genomics. Papers considered for publication report novel evolutionary findings that concern natural genome diversity, population genomics, the structure, function, organisation and expression of genomes, comparative genomics, proteomics, and environmental genomic interactions. Major evolutionary insights from the fields of computational biology, structural biology, developmental biology, and cell biology are also considered, as are theoretical advances in the field of genome evolution. GBE’s scope embraces genome-wide evolutionary investigations at all taxonomic levels and for all forms of life — within populations or across domains. Its aims are to further the understanding of genomes in their evolutionary context and further the understanding of evolution from a genome-wide perspective.
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