Niche differentiation of microbial community shapes vertical distribution of recalcitrant dissolved organic matter in deep-sea sediments

有机质 底栖区 沉积物 微生物种群生物学 溶解有机碳 沉积有机质 生物地球化学循环 深海 总有机碳 环境科学 生态学 环境化学 水柱 海洋学 地质学 生物 化学 古生物学 细菌
作者
Xiaoxia Chen,Ruanhong Cai,Xiaocun Zhuo,Quanrui Chen,Chen He,Jia Sun,Yao Zhang,Qiang Zheng,Quan Shi,Nianzhi Jiao
出处
期刊:Environment International [Elsevier BV]
卷期号:178: 108080-108080 被引量:47
标识
DOI:10.1016/j.envint.2023.108080
摘要

Sedimentary organic matter provides carbon substrates and energy sources for microorganisms, which drive benthic biogeochemical processes and in turn modify the quantity and quality of dissolved organic matter (DOM). However, the molecular composition and distribution of DOM and its interactions with microbes in deep-sea sediments remain poorly understood. Here, molecular composition of DOM and its relationship with microbes were analyzed in samples collected from two sediment cores (∼40 cm below the sea floor), at depths of 1157 and 2253 m from the South China Sea. Results show that niche differentiation was observed on a fine scale in different sediment layers, with Proteobacteria and Nitrososphaeria dominating the shallow sediments (0–6 cm) and Chloroflexi and Bathyarchaeia prevailing in deeper sediments (6–40 cm), indicating correspondence of microbial community composition with both geographical isolation and the availability of organic matter. An intimate link between the DOM composition and microbial community further indicates that, microbial mineralization of fresh organic matter in the shallow layer potentially resulted in the accumulation of recalcitrant DOM (RDOM), while relatively low abundance of RDOM was linked to anaerobic microbial utilization in deeper sediment layers. In addition, higher RDOM abundance in the overlying water, as compared to that in the surface sediment, suggests that sediment might be a source of deep-sea RDOM. These results emphasize the close relation between distribution of sediment DOM and different microbial community, laying a foundation for understanding the complex dynamics of RDOM in deep-sea sediment and water column.
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