Suppr超能文献

真菌 Cladosporium cladosporioides (CGMCC 40504) 对水环境中恩诺沙星-铜复合污染物的生物转化。

Biotransformation of enrofloxacin-copper combined pollutant in aqueous environments by fungus Cladosporium cladosporioides (CGMCC 40504).

机构信息

Fishery Resource and Environment Research Center, Chinese Academy of Fishery Sciences, No.150 of Qingta, Fengtai District, Beijing, 100141, People's Republic of China.

出版信息

World J Microbiol Biotechnol. 2024 Nov 28;40(12):397. doi: 10.1007/s11274-024-04204-7.

Abstract

The combined pollution of antibiotics and heavy metals in aqueous environments increases the risk of aquatic ecosystem disruption and the complication of pollutant management. Here, a fungus Cladosporium cladosporioides 11 (CC11) isolated from aquaculture pond sediments possessed effective capacities to biotransform the combined pollution of enrofloxacin (ENR) and copper ion (Cu). ENR and Cu were considerably abated by CC11, and the presence of Cu (30 mg/L) promoted the biotransformation efficiency of ENR. The biotranformation of ENR in ENR-Cu co-contamination was associated to ligninolytic enzyme action. The expression of ligninolytic enzymes was enhanced by ENR and ENR-Cu combined pollution. And the increased activities of ligninolytic enzymes confirmed the significant role of enzymatic transformation. Cu played an important role in increasing the expression and activities of ligninolytic enzymes. The expressions of many genes associated with transporters, phosphate assimilation, oxidative phosphorylation, hyperosmotic stress and pectin metabolism were significantly up-regulated when facing Cu-stress, indicating their important roles in determining Cu removal and enhancing Cu-resistance. Additionally, CC11 significantly biotransformed other antibiotic and heavy metal combined pollution. All these results contributed to the applications of CC11 in aqueous environments.

摘要

水环境中抗生素和重金属的复合污染增加了破坏水生生态系统和使污染物管理复杂化的风险。在这里,从水产养殖池塘沉积物中分离到的一种真菌 Cladosporium cladosporioides 11(CC11)具有有效转化恩诺沙星(ENR)和铜离子(Cu)复合污染的能力。CC11 可显著减少 ENR 和 Cu,Cu(30mg/L)的存在促进了 ENR 的生物转化效率。ENR 在 ENR-Cu 共污染中的生物转化与木质素酶作用有关。ENR 和 ENR-Cu 复合污染会增强木质素酶的表达。木质素酶活性的增加证实了酶转化的重要作用。Cu 对木质素酶表达和活性的增加起着重要作用。当面临 Cu 胁迫时,许多与转运蛋白、磷酸盐同化、氧化磷酸化、高渗应激和果胶代谢相关的基因的表达显著上调,表明它们在决定 Cu 去除和增强 Cu 抗性方面的重要作用。此外,CC11 还能显著转化其他抗生素和重金属的复合污染。所有这些结果都有助于 CC11 在水环境中的应用。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验