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Shifts of active microbial community structure and functions in constructed wetlands responded to continuous decreasing temperature in winter

生物地球化学循环 微生物种群生物学 自行车 纤维素酶 化学 尿素酶 生态学 细菌 食品科学 硝酸还原酶 亚硝酸盐还原酶 环境化学 纤维素 生物 硝酸盐 生物化学 考古 历史 遗传学
作者
Shaokun Wang,Rumiao Wang,Jan Vymazal,Yukun Hu,Wei Li,Jinzhi Wang,Yinru Lei,Xiajie Zhai,Xinsheng Zhao,Jing Li,Lijuan Cui
出处
期刊:Chemosphere [Elsevier BV]
卷期号:335: 139080-139080 被引量:15
标识
DOI:10.1016/j.chemosphere.2023.139080
摘要

Important functions of constructed wetland related to biogeochemical processes are mediated by soil microbes and low-temperature damage is the main limiting factor for microbes in winter. However, the response thresholds for active microbial community and enzyme activities to continuous decreases in temperature remain unclear. In this study, total 90 soil samples were collected every week over a 6-week period to track the dynamics of four enzymes involved in cycles of C, N, P and active bacterial community as field soil temperature decreased continuously from 6.62 °C to 0.55 °C. Enzyme activity changed suddenly when the temperature decreased to 4.83 °C, the nitrite reductase activity reduced by 36.2%, while alkaline phosphatase activity is increased by 396%. The cellulase and urease were only marginally influenced by cold stress. Decreased nitrite reductase activities corresponded with loss of nir-type denitrifiers important for nitrite reduction. For cold stress, N-related bacteria were sensitive species. Whereas increased alkaline phosphatase activity may be due to the fact that P-related bacteria were opportunistic species. Key functional taxa connected with degradation of cellulose promoted species coexistence and microbial network stability. The lower and upper temperature thresholds for community change were 4.85 °C and 6.30 °C, respectively. Collectively, these results revealed that microbial taxa involved in C, N and P cycling respond differently to continuous decreases in temperature and higher than 4.85 °C is an ideal environment to prevent loss of microbial diversity and functions in winter, providing a scientific reference for the targeted isolation and cultivation of key microbial taxa in rhizosphere soil and adjusting temperature range to improve the purification capacity of wetlands during low temperature periods.
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