Diversity patterns and ecological assembly mechanisms of bacterial communities in the northeastern Indian Ocean epipelagic waters during the northeast monsoon

Disentangling microbial community diversity patterns and assembly mechanisms is critical for understanding ecological processes and evaluating biogeochemical cycling in ecosystems. However, the diversity patterns and assembly mechanism of the microbial communities in the epipelagic waters in the nor...

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Veröffentlicht in:The Science of the total environment 2024-11, Vol.951, p.175755, Article 175755
Hauptverfasser: Guo, Ruoyu, Ma, Xiao, Zhu, Chenjie, Liu, Chenggang, Shou, Lu, Zhang, Jingjing, Li, Hongliang, Li, Zhongqiao, Dai, Xinfeng, Priyadarshani, W.N.C., Jayathilake, R.M.R.M., Lwin, Soe Moe, Thu, Chit Aung, Li, Guanlin, Wang, Pengbin, Zhou, Feng
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Sprache:eng
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Zusammenfassung:Disentangling microbial community diversity patterns and assembly mechanisms is critical for understanding ecological processes and evaluating biogeochemical cycling in ecosystems. However, the diversity patterns and assembly mechanism of the microbial communities in the epipelagic waters in the northeastern Indian Ocean (NEIO) on the spatial scale are still unclear. In this study, we investigated the spatial dynamics, geographic distribution pattern, and assembly process of the bacterial community using 532 samples collected from the epipelagic waters in the NEIO during the northeast monsoon. The results indicate that the bacterial richness and Bray-Curtis dissimilarity exhibited the strongest correlations with depth compared to the latitudinal and longitudinal scales. The dissolved oxygen was identified as the most important environmental factor affecting the bacterial richness and Bray-Curtis dissimilarity compared to temperature and salinity. The distance–decay relationship (DDR) of the bacterial community strengthened with increasing water depth. Turnover was the predominant β-diversity component influencing the spatial changes in the whole bacterial community. The dispersal limitation of the stochastic process and homogeneous selection of the deterministic process governed the bacterial ecological assembly process of the whole bacterial community. Abundant and rare subcommunities differed in terms of the niche breath, composition changes. The abundant subcommunities exhibited a much wider niche breath than the rare subcommunities. Regarding the abundant subcommunity species changes, the contributions of the turnover and nestedness varied with the water depth and oceanic region. In contrast, turnover was the major β-diversity component regarding the changes in the rare species. These data improve our understanding of the ecological processes of bacterial community assemblages in the NEIO. [Display omitted] •The α-and β-diversity changes in the bacterial community are stronger on the vertical scale than on the horizontal scale.•Turnover is the major component influencing the changes in the whole bacterial community species.•Dispersal limitation, followed by homogeneous selection, governs the ecological assembly of the bacterial community.•Abundant and rare subcommunities exhibit different ecological assembly patterns in the NEIO.
ISSN:0048-9697
1879-1026
1879-1026
DOI:10.1016/j.scitotenv.2024.175755