Hydrological and soil physiochemical variables determine the rhizospheric microbiota in subtropical lakeshore areas
文献类型: 外文期刊
作者: Zhang, Xiaoke 1 ; Wang, Huili 1 ; Li, Zhifei 2 ; Xie, Jun 2 ; Ni, Jiajia 3 ;
作者机构: 1.Anqing Normal Univ, Res Ctr Aquat Organism Conservat & Water Ecosyst, Anqing, Peoples R China
2.Chinese Acad Fishery Sci, Pearl River Fisheries Res Inst, Key Lab Trop & Subtrop Fishery Resource Applicat, Guangzhou, Peoples R China
3.Southern Med Univ, Zhujiang Hosp, Guangdong Prov Res Ctr Artificial Organ & Tissue, Dept Hepatobiliary Surg 2, Guangzhou, Peoples R China
4.Guangdong Med Univ, Dongguan Key Lab Med Bioact Mol Dev & Translat Re, Dongguan, Guangdong, Peoples R China
关键词: Lakeshore area; Hydrology; Rhizospheric microbiota; Microbial community
期刊名称:PEERJ ( 影响因子:2.984; 五年影响因子:3.369 )
ISSN: 2167-8359
年卷期: 2020 年 8 卷
页码:
收录情况: SCI
摘要: Background. Due to intensive sluice construction and other human disturbances, lakeshore vegetation has been destroyed and ecosystems greatly changed. Rhizospheric microbiota constitute a key part of a functioning rhizosphere ecosystem. Maintaining rhizosphere microbial diversity is a central, critical issue for sustaining these rhizospheric microbiota functions and associated ecosystem services. However, the community composition and abiotic factors influencing rhizospheric microbiota in lakeshore remain largely understudied. Methods. The spatiotemporal composition of lakeshore rhizospheric microbiota and the factors shaping them were seasonally investigated in three subtropical floodplain lakes (Lake Chaohu, Lake Wuchang, and Lake Dahuchi) along the Yangtze River in China through 16S rRNA amplicon high-throughput sequencing. Results. Our results showed that four archaeal and 21 bacterial phyla (97.04 +/- 0.25% of total sequences) dominated the rhizospheric microbiota communities of three lakeshore areas. Moreover, we uncovered significant differences among rhizospheric microbiota among the lakes, seasons, and average submerged depths. The Acidobacteria, Actinobacteria, Bacteroidetes, Bathyarchaeota, Gemmatimonadetes, and Proteobacteria differed significantly among the three lakes, with more than half of these dominant phyla showing significant changes in abundance between seasons, while the DHVEG-6, Ignavibacteriae, Nitrospirae, Spirochaetes, and Zixibacteria varied considerably across the average submerged depths (n = 58 sites in total). Canonical correspondence analyses revealed that the fluctuation range of water level and pH were the most important factors influencing the microbial communities and their dominant microbiota, followed by total nitrogen, moisture, and total phosphorus in soil. These results suggest a suite of hydrological and soil physiochemical variables together governed the differential structuring of rhizospheric microbiota composition among different lakes, seasons, and sampling sites. This work thus provides valuable ecological information to better manage rhizospheric microbiota and protect the vegetation of subtropical lakeshore areas.
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