Liang Jie, Yan Min, Zhu Ziqian, Lu Lan, Ding Junjie, Zhou Qinxue, Gao Xiang, Tang Ning, Li Shuai, Li Xiaodong, Zeng Guangming
College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 41082, PR China.
College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 41082, PR China.
Water Res. 2025 Jan 1;268(Pt A):122556. doi: 10.1016/j.watres.2024.122556. Epub 2024 Oct 3.
River-lake confluences are key zones in the river-lake network, essential for managing contaminant transport and transformation. However, the role of biogeochemical transformations, particularly in phosphorus (P) dynamics, has been underexplored. As a result, this study looks into the dynamics of microbial communities and how important microbes are to the cycling of P. It was revealed that microorganisms contribute differently to phosphorus cycling in different hydraulic regions. Regions with higher-velocity and finer sediment showed increased microbial diversity and enhanced capabilities for organic phosphorus (OP) mineralization and inorganic phosphorus (IP) solubilization due to lower bio-available P (bio-P) concentrations. In areas characterized by flow deflection (FD), flow stagnation (FST), and flow separation (FSE), distinct P fraction distributions were observed: Total phosphorus (TP) and bio-P were found to be more abundant in the FST and FD regions, but residual phosphorus (Res-P) and calcium phosphorus (Ca-P) were more prevalent in the FSE region. Sediment characteristics, including P species like aluminum-phosphorus (Al-P), OP, iron-associate phosphorus (BD-P), and sediment mid-diameter (D), significantly influence microbial community composition. These results improve our comprehension of the distribution of microbial community distribution and its role in the phosphorus cycle at river-lake confluence, providing useful provide valuable information for managing river-lake confluences and protecting aquatic ecosystems.
江湖汇流处是江湖水系中的关键区域,对于管理污染物的迁移和转化至关重要。然而,生物地球化学转化的作用,尤其是在磷(P)动态方面,尚未得到充分研究。因此,本研究探讨了微生物群落的动态以及微生物对磷循环的重要性。研究发现,微生物在不同水力区域对磷循环的贡献不同。由于生物可利用磷(bio-P)浓度较低,流速较高且沉积物较细的区域显示出微生物多样性增加,有机磷(OP)矿化和无机磷(IP)溶解能力增强。在以水流偏转(FD)、水流停滞(FST)和水流分离(FSE)为特征的区域,观察到不同的磷组分分布:总磷(TP)和bio-P在FST和FD区域更为丰富,但残留磷(Res-P)和钙磷(Ca-P)在FSE区域更为普遍。沉积物特征,包括铝磷(Al-P)、OP、铁结合磷(BD-P)等磷形态以及沉积物中值粒径(D),显著影响微生物群落组成。这些结果提高了我们对江湖汇流处微生物群落分布及其在磷循环中作用的理解,为管理江湖汇流处和保护水生生态系统提供了有价值的信息。