Li Bin, Yang Yuangang, Xu Bo, Song Pengfei, Jiang Feng, Gao Hongmei, Cai Zhenyuan, Gu Haifeng, Zhang Tongzuo
Key Laboratory of Adaptation and Evolution of Plateau Biota, Northwest Institute of Plateau Biology, Chinese Academy of Sciences, Xining, China.
College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.
BMC Biol. 2025 Jun 4;23(1):154. doi: 10.1186/s12915-025-02269-w.
Diverse gut microbiota in animals significantly influences host physiology, ecological adaptation, and evolution. However, the specific functional roles of gut microbiota in facilitating host adaptation, as well as the coevolutionary dynamics between microbiota and their hosts, remain largely understudied.
A total of 41,847 metagenome-assembled genomes and 3193 high-quality species-level genome bins were generated, establishing a comprehensive gut microbiome catalog for cervids in this study. Phylogenetic analysis revealed a coevolutionary relationship between cervids and their gut microbiota. Comparative metagenomic analyses further indicated that the gut microbiota of plateau cervids have undergone genome-level adaptations related to energy metabolism. At the genus level, species-level genome bins from the genera Alistipes and Faecousia in plateau cervids exhibit enhanced energy metabolism capabilities. Structural variations analysis revealed that the insertion and duplications structural variations in the gut microbiota of plateau cervids were significantly enriched in energy metabolism pathways. In contrast, the deletions and contractions in structural variations were predominantly enriched with metabolic pathways involved in the biosynthesis of diverse biochemical molecules.
Our study provides a comprehensive gut microbiome catalog of the cervid gut microbiota, revealing the coevolutionary relationship between cervid gut microbiota and hosts. These findings highlight the adaptive genomic evolution of the gut microbiota in contributing to the plateau adaptability of cervids and offer new insights into the mechanisms by which the gut microbiota help hosts adapt to extreme environments.
动物体内多样的肠道微生物群对宿主生理、生态适应和进化有显著影响。然而,肠道微生物群在促进宿主适应方面的具体功能作用,以及微生物群与其宿主之间的共同进化动态,在很大程度上仍未得到充分研究。
本研究共生成了41847个宏基因组组装基因组和3193个高质量的物种水平基因组箱,建立了一个全面的鹿科动物肠道微生物组目录。系统发育分析揭示了鹿科动物与其肠道微生物群之间的共同进化关系。比较宏基因组分析进一步表明,高原鹿科动物的肠道微生物群经历了与能量代谢相关的基因组水平适应。在属水平上,高原鹿科动物中Alistipes属和Faecousia属的物种水平基因组箱表现出增强的能量代谢能力。结构变异分析表明,高原鹿科动物肠道微生物群中的插入和重复结构变异在能量代谢途径中显著富集。相比之下,结构变异中的缺失和收缩主要富集在参与多种生物化学分子生物合成的代谢途径中。
我们的研究提供了一个全面的鹿科动物肠道微生物群微生物组目录,揭示了鹿科动物肠道微生物群与宿主之间的共同进化关系。这些发现突出了肠道微生物群的适应性基因组进化对鹿科动物高原适应性的贡献,并为肠道微生物群帮助宿主适应极端环境的机制提供了新的见解。