The community patterns and assembly mechanism varied in eukaryotic microorganisms with different cell sizes

Cell size is a fundamental determinant of eukaryotic microorganisms' ecology, influencing community dynamics, physiological processes, and ecological interactions. However, it is still unclear whether eukaryotic microorganisms of different size have similar structural and assembly mechanisms. In this study, we sorted eukaryotic microorganisms' cells into two sizes classes (large-sized eukaryotic microorganisms (LE) and small-sized eukaryotic microorganisms (SE)) and compared their structural and assembly mechanisms along the Han River. The results showed that LE fractions had higher diversity compared to SE fractions, the two size classes harbored distinct eukaryotic microorganisms' communities. And. Assembly mechanisms of the two classes were significantly different. We conclude that cell size is an important factor that determines eukaryotic microorganisms' structure and assembly mechanisms. These findings underscore the critical role of cell size in determining eukaryotic microorganisms' community and uncover a direct relationship between microbial morphology and ecological traits.

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Publication Details

Journal
Archives of Microbiology
Published
2026-09-15
DOI
https://doi.org/10.1007/s00203-026-05164-2
Primary Topic
Microbial Community Ecology and Physiology
Type
article
Field-Weighted Citation Impact
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article

The community patterns and assembly mechanism varied in eukaryotic microorganisms with different cell sizes

Yumei Qian, Hanghang Han, Zongcan Yang, Xiaofan Zhao et al.
Archives of Microbiology
Microbial Community Ecology and Physiology
article

The community patterns and assembly mechanism varied in eukaryotic microorganisms with different cell sizes

Yumei Qian, Hanghang Han, Zongcan Yang, Xiaofan Zhao, Pengfei Yang, Xinxin Lai, Kexin Zhang, Zenghui zhang, Wei Hu
article en

Abstract

Cell size is a fundamental determinant of eukaryotic microorganisms' ecology, influencing community dynamics, physiological processes, and ecological interactions. However, it is still unclear whether eukaryotic microorganisms of different size have similar structural and assembly mechanisms. In this study, we sorted eukaryotic microorganisms' cells into two sizes classes (large-sized eukaryotic microorganisms (LE) and small-sized eukaryotic microorganisms (SE)) and compared their structural and assembly mechanisms along the Han River. The results showed that LE fractions had higher diversity compared to SE fractions, the two size classes harbored distinct eukaryotic microorganisms' communities. And. Assembly mechanisms of the two classes were significantly different. We conclude that cell size is an important factor that determines eukaryotic microorganisms' structure and assembly mechanisms. These findings underscore the critical role of cell size in determining eukaryotic microorganisms' community and uncover a direct relationship between microbial morphology and ecological traits.

Archives of MicrobiologyVol. 208(12)
Zhengzhou University of Light Industry (CN), China Tobacco (CN), Qilu Normal University (CN), China Tobacco Guangxi Industrial (China) (CN), Zhengzhou University of Industrial Technology (CN)
Openalex Percentile: Top 11%
Microbial Community Ecology and Physiology
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The community patterns and assembly mechanism varied in eukaryotic microorganisms with different cell sizes — Yumei Qian, Hanghang Han, et al. · Archives of Microbiology (2026) | TGRS Research Map | TGRS