Mariculture increases microbially-driven carbon metabolism and sequestration in coastal ecosystems

被引:0
作者
Liu, Huanping [1 ]
Fan, Yijun
Su, Erxin
Liu, Shengwei
Ming, Yuzhen [3 ]
Huang, Zhenyu
Yu, Huang [4 ]
Liu, Fei
Wang, Cheng
Yu, Xiaoli
Niu, Mingyang
Wu, Kun
Yang, Yufeng
He, Zhili [1 ]
Zhang, Tao [2 ]
Yan, Qingyun [1 ]
机构
[1] Sun Yat Sen Univ, Marine Synthet Ecol Res Ctr, Guangdong Prov Observ & Res Stn Marine Ranching Li, Southern Marine Sci & Engn Guangdong Lab Zhuhai,Sc, Guangzhou 518107, Peoples R China
[2] Sun Yat Sen Univ, Sch Agr & Biotechnol, Shenzhen 518107, Peoples R China
[3] Hong Kong Univ Sci & Technol, Dept Ocean Sci, Clear Water Bay, Hong Kong 999077, Peoples R China
[4] Univ South China, Key Discipline Lab Natl Def Biotechnol Uranium Min, Hengyang 421001, Peoples R China
基金
中国国家自然科学基金;
关键词
Microbial metabolism; Carbon sequestration; Mariculture sediments; Metagenomics; DISSOLVED ORGANIC-MATTER; SOIL CARBON; SULFATE REDUCTION; CLIMATE-CHANGE; MARINE; GENOME; CYCLE; IDENTIFICATION; PRESERVATION; CULTIVATION;
D O I
10.1016/j.jenvman.2025.125756
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Mariculture has expanded significantly in recent decades due to rising seafood demand and its contribution to ocean carbon sequestration. While the mechanisms of carbon sequestration in mariculture are well-established, the roles of microorganisms in sedimentary carbon sequestration have rarely been explored. How microorganisms mediate organic carbon metabolism and their effects on coastal carbon pools remain unclear. Here we tested the carbon fraction and contents, as well as extracellular hydrolase activities in macroalgae culture area, fish or abalone culture area, and control area without mariculture. We profiled microbial community composition and carbon metabolism characteristics in sediments through 16S rRNA gene amplicon sequencing and metagenomics. Our findings revealed that macroalgae culture areas exhibited a significantly greater potential for carbon sequestration than the control area, the concentration of TOC in seawater and the contents of SOC, DOC, and ROC in sediments were significantly (p < 0.05) increased by 18.93 %, 6.98 %, 33.98 %, and 18.30 % respectively. These results can be attributed to decreased activities of extracellular hydrolase and a lower abundance of carbon-degrading genes. Moreover, metabolic profiling identified taxa from families such as Alteromonadaceae, Pseudomonadaceae, Rhodobacteraceae, Enterobacteriaceae, and Flavobacteriaceae, which are highly metabolically flexible in utilizing a wide range of organic and inorganic energy sources, playing crucial roles in carbon formation. Their respiratory metabolism, such as sulfate reduction, thiosulfate oxidation, and denitrification as well as secondary metabolism products could also affect the formation and persistence of sedimentary carbon pools. Specifically, increased total nitrogen (TN) and nitrate-nitrogen (NO3-) could potentially enhance microbial degradation of organic carbon, decreasing carbon stock within coastal sediments. This study enhanced our understanding of microbial regulation of the organic carbon pool in the mariculture ecosystem.
引用
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页数:14
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