北京大学学报(自然科学版) ›› 2026, Vol. 62 ›› Issue (4): 739-748.DOI: 10.13209/j.0479-8023.2026.046

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基于宏基因组分析灞河真核微生物群落结构及氮代谢功能

赵明珠1,2, 王佳文2,3,†, 王易初4, 张国华2, 李盈皞2, 杨子杰1,2   

  1. 1. 西安理工大学, 旱区水工程生态环境全国重点实验室, 西安 710048 2. 北京大学, 北京新型污水处理工程技术研究中心, 北京 100871 3. 西安交通大学人居环境与建筑工程学院, 西安 710049 4. 北京师范大学水科学研究院, 北京 100875
  • 收稿日期:2025-04-25 修回日期:2025-05-26 出版日期:2026-07-20 发布日期:2026-07-20
  • 基金资助:
    国家自然科学基金(52209078, U2243201)、西安市青年人才托举计划(0959202513029)和中央高校基本科研业务费专项资金 (xtr052025034)资助

Metagenomic Analysis Revealing the Community Structure and Nitrogen Metabolic Function of Eukaryotic Microbes Along the Bahe River

ZHAO Mingzhu1,2, WANG Jiawen2,3,†, WANG Yichu4, ZHANG Guohua2, LI Yinghao2, YANG Zijie1,2   

  1. 1. State Key Laboratory of Water Engineering Ecology and Environment in Arid Area, Xi’an University of Technology, Xi’an 710048 2. Beijing New Type Sewage Treatment Engineering Technology Research Center, Peking University, Beijing 100871 3. School of Human Settlements and Civil Engineering, Xi’an Jiaotong University, Xi’an 710049 4. College of Water Sciences, Beijing Normal University, Beijing 100875
  • Received:2025-04-25 Revised:2025-05-26 Online:2026-07-20 Published:2026-07-20

摘要:

综合运用宏基因组测序技术和多元统计的方法, 系统地分析灞河15个断面的真核微生物群落结构及其氮代谢基因的空间分布特征和环境驱动因素。结果表明, 灞河上、中、下游真核微生物的α多样性呈现显著差异, 且下游河段的真核多样性显著高于上游河段。在群落组成方面, 硅藻门(Bacillariophyta, 48.3%)为优势类群, 中下游河段的纤毛亚门(Ciliophora)丰度显著增加。真核生物的氮代谢功能在上游河段以同化作用为主导, 中游河段转运相关基因丰度逐渐升高, 下游河段则是反硝化作用增强。此外, 总磷、铵氮和硝态氮显著地影响真核微生物群落结构, 铵氮、硝态氮、叶绿素a、电导率和盐度是氮代谢基因分布的关键性驱动因子。

关键词: 城市河流, 真核微生物, 宏基因组, 氮代谢

Abstract:

This study employed metagenomic sequencing technology and multivariate statistical methods to systematically analyze the spatial distributions and environmental driving factors of eukaryotic microbial communities, as well as their nitrogen metabolism genes at 15 sites along the Ba River. The results indicated significant differences in the α diversity of eukaryotic microbes among the upper, middle and lower reaches, with higher diversity in the lower reaches rather than that in the upper reaches. In terms of community composition, Bacillariophyta (48.3%) was the dominant phylum, and the relative abundance of Ciliophora remarkably increased in the middle and lower reaches. Nitrogen metabolism in eukaryotes was dominated by assimilation in the upper reaches, with a gradual increase in the abundance of transport-related genes in the middle reaches, and denitrification intensified in the lower reaches. Furthermore, TP, NO3-N and NH4-N significantly affected the eukaryotic microbial community structure, while NH4+-N, NO3-N, Chl a, COND and salinity were the key factors driving the distribution of nitrogen metabolism genes. 

Key words: urban river, eukaryotic microbes, metagenomics, nitrogen metabolism