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从稻田土壤中分离出的新鞘氨醇YW6对久效磷的降解作用

Degradation of monocrotophos by Starkeya novella YW6 isolated from paddy soil.

作者信息

Sun Lina, Zhu Shijun, Yang Zhengzhong, Chen Qing, Liu Hongming, Zhang Jun, Hu Gang, Li Shunpeng, Hong Qing

机构信息

Key Laboratory of Agricultural Environmental Microbiology, Ministry of Agriculture, College of Life Sciences, Nanjing Agricultural University, Nanjing, 210095, China.

College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, 210095, China.

出版信息

Environ Sci Pollut Res Int. 2016 Feb;23(4):3727-35. doi: 10.1007/s11356-015-5606-0. Epub 2015 Oct 24.

Abstract

A bacteria strain, YW6, capable of utilizing monocrotophos (MCP) as the sole carbon and nitrogen sources for growth was isolated from paddy soil and identified as Starkeya novella. Strain YW6 completely degraded 0.2 mM MCP within 36 h without any lag period. Addition of carbon source resulted in slowing down of the initial rate of degradation of MCP, while the presence of a more favorable source of nitrogen enhanced the degradation of MCP. In addition to the degradation of MCP, strain YW6 was also able to degrade a wide range of organophosphorus pesticides (OPs) containing P-O-C bond, but not dimethoate, which has P-S-C bond. A MCP degradation pathway was proposed on the basis of metabolite production patterns and identification of the metabolites. MCP is hydrolyzed at the P-O-C bond to form N-methylacetoacetamide and dimethyl phosphate; N-methylacetoacetamide is transformed to N-methyl-4-oxo-pentanamide, which was subsequently converted to 5-(methylamino)-5-oxo-pentanoic acid, and 5-(methylamino)-5-oxo-pentanoic acid is cleaved to glutaric acid and methylamine. These findings provide new insights into the microbial metabolism of MCP. To the best of our knowledge, this is the first report on the degradation of MCP by Starkeya bacteria.

摘要

从稻田土壤中分离出一株能够利用久效磷(MCP)作为唯一碳源和氮源生长的细菌菌株YW6,并鉴定为新鞘氨醇菌(Starkeya novella)。菌株YW6在36小时内完全降解了0.2 mM的MCP,且没有任何延迟期。添加碳源会导致MCP初始降解速率减慢,而更有利的氮源的存在则会增强MCP的降解。除了降解MCP外,菌株YW6还能够降解多种含有P-O-C键的有机磷农药(OPs),但不能降解含有P-S-C键的乐果。根据代谢产物的产生模式和代谢产物的鉴定,提出了一条MCP降解途径。MCP在P-O-C键处水解形成N-甲基乙酰乙酰胺和磷酸二甲酯;N-甲基乙酰乙酰胺转化为N-甲基-4-氧代戊酰胺,随后转化为5-(甲氨基)-5-氧代戊酸,5-(甲氨基)-5-氧代戊酸裂解为戊二酸和甲胺。这些发现为MCP的微生物代谢提供了新的见解。据我们所知,这是关于新鞘氨醇菌对MCP降解的首次报道。

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