溶解有机碳
环境化学
微生物种群生物学
海水
富营养化
生态演替
碳循环
水槽(地理)
环境科学
总有机碳
生物量(生态学)
生态学
化学
营养物
生态系统
生物
细菌
地理
遗传学
地图学
作者
Jing Chen,Hongmei Li,Zenghu Zhang,Chen He,Quan Shi,Nianzhi Jiao,Yongyu Zhang
出处
期刊:Water Research
[Elsevier BV]
日期:2020-08-04
卷期号:185: 116268-116268
被引量:152
标识
DOI:10.1016/j.watres.2020.116268
摘要
and converts it into biomass. After the green tide, millions of tons of the macroalgal biomass sink to the seabed to be degraded eventually; this inevitably has a significant impact on the coastal organic carbon pool and microbial community. However, this impact is poorly understood. Here, the degradation of Ulva prolifera over 520 days revealed that relatively sufficient degradation of the macroalgae occurred at ca. 7 months. The rapid release of dissolved organic carbon (DOC) mainly occurred in the first week, which not only increased the size and diversity of the DOC pool in a short time but also promoted the rapid growth of bacteria and led to hypoxia and acidification of the seawater. After that, the labile portion of DOC was gradually used up by bacteria within one month, while the degradation of semi-labile or semi-refractory DOC occurred in half a year. The remaining DOC existed in the form of refractory DOC (RDOC), resisting bacterial consumption and remaining stable for 10 months. During the long-term degradation process, bacterial community structure and metabolic function showed obvious successional characteristics, driving the gradual transformation of DOC from labile to refractory through the microbial carbon pump mechanism. After the long-term degradation, the remaining RDOC accounted for approximately 1.6% of the macroalgal carbon biomass. As RDOC can maintain long-term stability, we propose that the frequent outbreaks of green tides not only affect microbial processes but also may have an important cumulative effect on the coastal RDOC pool.
科研通智能强力驱动
Strongly Powered by AbleSci AI