College of Environmental Science and Engineering, Yangzhou University, Huayang West Road #196, Yangzhou, 225009, PR China; Key Laboratory of Integrated Regulation and Resource Development on Shallow Lake of Ministry of Education, College of Environment, Hohai University, Xikang Road #1, Nanjing, 210098, PR China.
Department of Aquatic Sciences and Assessment, Swedish University of Agricultural Sciences, SE-75007, Uppsala, Sweden.
Environ Res. 2024 Feb 15;243:117886. doi: 10.1016/j.envres.2023.117886. Epub 2023 Dec 9.
Water column mixing homogenizes thermal and chemical gradients which are known to define distribution of microbial communities and influence the prevailing biogeochemical processes. Little is however known about the effects of rapid water column mixing on the vertical distribution of microbial communities in stratified reservoirs. To address this knowledge gap, physicochemical properties and microbial community composition from 16 S rRNA amplicon sequencing were analyzed before and after mixing of vertically stratified water-column bioreactors. Our results showed that α-diversity of bacterial communities decreased from bottom to surface during periods of thermal stratification. After an experimental mixing event, bacterial community diversity experienced a significant decrease throughout the water column and network connectivity was disrupted, followed by slow recovery. Significant differences in composition were seen for both total (DNA) and active (RNA) bacterial communities when comparing surface and bottom layer during periods of stratification, and when comparing samples collected before mixing and after re-stratification. The dominant predicted community assembly processes for stratified conditions were deterministic while such processes were less important during recovery from episodic mixing. Water quality characteristics of stratified water were significantly correlated with bacterial community diversity and structure. Furthermore, structural equation modeling analyses showed that changes in sulfur may have the greatest direct effect on bacterial community composition. Our results imply that rapid vertical mixing caused by episodic weather extremes and hydrological operations may have a long-term effect on microbial communities and biogeochemical processes.
水层混合使热梯度和化学梯度均匀化,而这些梯度已知会影响微生物群落的分布,并影响普遍存在的生物地球化学过程。然而,关于快速水层混合对分层水库中微生物群落垂直分布的影响,人们知之甚少。为了弥补这一知识空白,我们在垂直分层水生物反应器混合前后,分析了理化性质和 16S rRNA 扩增子测序的微生物群落组成。结果表明,在热分层期间,细菌群落的 α 多样性从底部到表面逐渐降低。在一次实验性混合事件后,整个水柱的细菌群落多样性经历了显著下降,网络连通性被破坏,随后缓慢恢复。在分层期间,比较表层和底层以及比较混合前和再分层后的样本时,总(DNA)和活性(RNA)细菌群落的组成均存在显著差异。分层条件下,预测群落组装过程主要是确定性的,而在间歇混合恢复期间,这些过程的重要性较低。分层水的水质特征与细菌群落多样性和结构显著相关。此外,结构方程模型分析表明,硫的变化可能对细菌群落组成有最大的直接影响。我们的研究结果表明,由极端天气和水文作业引起的快速垂直混合可能对微生物群落和生物地球化学过程产生长期影响。