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Effects of metsulfuron-methyl on the microbial population and enzyme activities in wheat rhizosphere soil
Yong Hua He1, Dong Sheng Shen, Cheng Ran Fang
1Department of Environmental Engineering, Huajiachi Campus, Zhejiang University, Hangzhou, Zhejiang, PR China.
Abstract:
The effects of metsulfuron-methyl, a sulfonylurea herbicide, on the wheat soil microorganisms were evaluated by the methods of microbial inoculation culture, and the activities of three enzymes were measured using the colorimetric method. The tolerant microorganisms that can resist 500 microg x g(-1) metsulfuron-methyl in the counting culture medium were studied specially. Metsulfuron-methyl distinctly inhibited the common aerobic heterotriphic bacteria, but the effects on common fungi and common actinomycete were not evident. In the meantime, the number of tolerant fungi increased greatly in the rhizosphere after the application of metsulfuron-methyl in contrast to the significant decrease of the amount of tolerant actinomycete. It indicates that fungi might turn into the dominant microbial type and actinomycete is the sensitive factor in the soil polluted by sulfonylurea residues. The population of aromatic compounds-decomposing bacteria, aerobic azotobacter, and nitrite bacteria all increased in the earlier period, but the aerobic azotobacter decreased rapidly in number 30 days later, and the amount of nitrite bacteria also showed a temporary decrease with time 15 days later. However, the denitrifying bacteria just began to increase significantly after the crops had grown for 50 days. The amount of sulfur-oxidizing bacteria gradually decreased with the growth of crops, and so were the sulfate-reducing bacteria after metsulfuron-methyl application. To all types of microorganisms, there were more microbes in rhizosphere samples than those in nonrhizosphere except aerobic azotobacter. It means the growth of wheat root system can stimulate the growth of most microorganisms. The activities of hydrogen peroxidase and polyphenol oxidase in soil samples after metsulfuron-methyl application were notably lower than those in the control, and the difference of the activities between the samples of rhizosphere and nonrhizosphere was evident. On the contrary, the activity of dehydrogenase was not inhibited by the application of metsulfuron-methyl, and the rhizosphere effect was not obvious either.
Insights
Metsulfuron-methyl herbicide impacts wheat soil microbes, inhibiting bacteria but favoring fungi. Soil enzyme activities and microbial populations shift, with fungi becoming dominant and actinomycetes sensitive to sulfonylurea residues.
Area of Science:
- Agricultural Science
- Environmental Science
- Microbiology
Background:
- Sulfonylurea herbicides, like metsulfuron-methyl, are widely used in agriculture.
- Understanding their impact on soil microbial communities is crucial for soil health and ecosystem function.
Purpose of the Study:
- To evaluate the effects of metsulfuron-methyl on wheat soil microorganisms and soil enzyme activities.
- To identify tolerant and sensitive microbial groups and their population dynamics in response to herbicide application.
Main Methods:
- Microbial inoculation culture and colorimetric methods were used to assess microbial populations and enzyme activities.
- Tolerant microorganisms capable of resisting high concentrations of metsulfuron-methyl were specifically studied.
- Soil samples from rhizosphere and non-rhizosphere environments were analyzed.
Main Results:
- Metsulfuron-methyl significantly inhibited common aerobic heterotrophic bacteria but had less effect on fungi and actinomycetes.
- Fungi populations increased, particularly in the rhizosphere, while actinomycete populations decreased.
- Populations of aromatic compound-decomposing bacteria, aerobic azotobacter, and nitrite bacteria initially increased but later showed decreases.
- Denitrifying bacteria increased later in the crop growth cycle, while sulfur-oxidizing and sulfate-reducing bacteria decreased.
- Soil enzyme activities of hydrogen peroxidase and polyphenol oxidase were reduced, while dehydrogenase activity remained unaffected.
Conclusions:
- Metsulfuron-methyl alters soil microbial community structure, potentially leading to a dominance of fungi and sensitivity of actinomycetes.
- The herbicide affects various functional microbial groups, with varied responses over time and in different soil zones (rhizosphere vs. non-rhizosphere).
- Soil enzyme activities are impacted, indicating functional changes in the soil ecosystem due to metsulfuron-methyl application.
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