Jiangsu Key Laboratory of Marine Bioresources and Environment, Jiangsu Ocean University, Lianyungang, 222005, China.
Co-innovation Center of Jiangsu Marine Bio-industry Technology, Jiangsu Ocean University, Lianyungang, 222005, China.
Microb Ecol. 2023 Nov;86(4):2981-2992. doi: 10.1007/s00248-023-02291-x. Epub 2023 Sep 9.
As one of the low-carbon and high-efficient energy sources, nuclear power is developing vigorously to alleviate the crisis of global climate warming and realize carbon neutrality goals. Meanwhile, the ecological effect of thermal drainage in the nuclear power plant is significantly remarkable, which environmental assessment system has not yet referred to microorganisms. The rapid response of microbial diversity and community structure to environmental changes is crucial for ecosystem stability. This study investigated the bacterial diversity, community construction, and the co-occurrence patterns by 16S rRNA gene amplicon sequencing among gradient warming regions in Tianwan Nuclear Power Plant. The alpha diversity of the high warming region was the lowest in summer, which was dominated by Proteobacteria, whereas the highest bacterial diversity presented in high warming regions in winter, which harbored higher proportions of Proteobacteria, Actinobacteria, Bacteroidetes, and Firmicutes. The spatial distribution of bacterial communities showed clear separation especially in summer. Strong correlations were between community compositions and environmental factors, such as salinity, DO, TN, and temperature in summer. Furthermore, remarkable seasonality in bacterial co-occurrence patterns was discovered: the robustness of the bacterial co-occurrence network was promoted in winter, while the complexity and robustness were decreased in summer due to the warming of thermal drainage. These findings reveal the potential factors underpinning the influence of thermal drainage on bacterial community structure, which make it possible to predict the ecological effect of the nuclear power plants by exploring how the microbial assembly is likely to respond to the temperature and other environmental changes.
作为低碳高效的能源之一,核能正在大力发展,以缓解全球气候变暖危机,实现碳中和目标。与此同时,核电站温排水的生态效应十分显著,而这一环境评估系统尚未涉及微生物。微生物多样性和群落结构对环境变化的快速响应对于生态系统的稳定性至关重要。本研究通过 16S rRNA 基因扩增子测序,调查了田湾核电站不同梯度升温区的细菌多样性、群落结构和共生模式。夏季高温区的 alpha 多样性最低,优势菌门为变形菌门,而冬季高温区的细菌多样性最高,其中变形菌门、放线菌门、拟杆菌门和厚壁菌门的比例更高。夏季细菌群落的空间分布表现出明显的分离。群落组成与盐度、DO、TN 和温度等环境因子之间存在强烈相关性。此外,还发现了细菌共生模式的显著季节性:冬季细菌共生网络的稳健性增强,而夏季由于温排水的升温,其复杂性和稳健性降低。这些发现揭示了热排水对细菌群落结构影响的潜在因素,通过探索微生物组合可能对温度和其他环境变化的响应,为预测核电站的生态效应提供了可能。