古细菌
环境化学
溶解有机碳
微生物种群生物学
有机质
广域古菌界
群落结构
镉
沉积物
污染
污染
生态学
化学
细菌
生物
古生物学
有机化学
遗传学
作者
Yu Wang,Yuxing Hu,Yanting Liu,Qi Chen,Jinxin Xu,Fei Zhang,Jinhua Mao,Quan Shi,Chen He,Ruanhong Cai,Christian Lønborg,Lihua Liu,Aixing Guo,Nianzhi Jiao,Qiang Zheng
标识
DOI:10.1016/j.scitotenv.2024.172003
摘要
Heavy metals can impact the structure and function of coastal sediment. The dissolved organic matter (DOM) pool plays an important role in determining both the heavy metal toxicity and microbial community composition in coastal sediments. However, how heavy metals affect the interactions between microbial communities and DOM remains unclear. Here, we investigated the influence of heavy metals on the microbial community structure (including bacteria and archaea) and DOM composition in surface sediments of Beibu Gulf, China. Our results revealed firstly that chromium, zinc, cadmium, and lead were the heavy metals contributing to pollution in our studied area. Furthermore, the DOM chemical composition was distinctly different in the contaminated area from the uncontaminated area, characterized by a higher average O/C ratio and increased prevalence of carboxyl-rich alicyclic molecules (CRAM) and highly unsaturated compounds (HUC). This indicates that DOM in the contaminated area was more recalcitrant compared to the uncontaminated area. Except for differences in archaeal diversity between the two areas, there were no significant variations observed in the structure of archaea and bacteria, as well as the diversity of bacteria, across the two areas. Nevertheless, our co-occurrence network analysis revealed that the B2M28 and Euryarchaeota, dominating bacterial and archaeal groups in the contaminated area were strongly related to CRAM. The network analysis also unveiled correlations between active bacteria and elevated proportions of nitrogen-containing DOM molecules. In contrast, the archaea-DOM network exhibited strong associations with nitrogen- and sulfur-containing molecules. Collectively, these findings suggest that heavy metals indeed influence the interaction between microbial communities and DOM, potentially affecting the accumulation of recalcitrant compounds in coastal sediments.
科研通智能强力驱动
Strongly Powered by AbleSci AI