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Substrate-induced changes in microbial community-level physiological profiles and their application to discriminate soil microbial communities 被引量:10

Substrate-induced changes in microbial community-level physiological profiles and their application to discriminate soil microbial communities
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摘要 The addition of simple substrates could affect the microbial respiration in soils. This substrate-induced respiration is widely used to estimate the soil microbial biomass, but little attention has been paid to its influence on the changes of community-level physiological profiles. In this study, the process of microbial communities responding to the added substrate using sole-carbon-source utilization (BIOLOG) was investigated. BIOLOG is biased toward fast-growing bacteria; this advantage was taken to detect the prompt response of the active microbial communities to the added substrate. Four soil samples from agricultural fields adjacent to heavy metal mines were amended with L-arginine, citric acid, or D-glucose. Substrate amendments could, generally, not only increase the metabolic activity of the microbial communities, but also change the metabolic diverse patterns compared with no-substrate control. By tracking the process, it was found that the variance between substrate-induced treatment and control fluctuated greatly during the incubation course, and the influences of these three substrates were different. In addition, the application of these induced changes to discriminate soil microbial communities was tested. The distance among all samples was greatly increased, which further showed the functional variance among microbial communities in soils. This can be very useful in the discrimination of microbial communities even with high similarity. The addition of simple substrates could affect the microbial respiration in soils. This substrate-induced respiration is widely used to estimate the soil microbial biomass, but little attention has been paid to its influence on the changes of community-level physiological profiles. In this study, the process of microbial communities responding to the added substrate using sole-carbon-source utilization (BIOLOG) was investigated. BIOLOG is biased toward fast-growing bacteria; this advantage was taken to detect the prompt response of the active microbial communities to the added substrate. Four soil samples from agricultural fields adjacent to heavy metal mines were amended with L-arginine, citric acid, or D-glucose. Substrate amendments could, generally, not only increase the metabolic activity of the microbial communities, but also change the metabolic diverse patterns compared with no-substrate control. By tracking the process, it was found that the variance between substrate-induced treatment and control fluctuated greatly during the incubation course, and the influences of these three substrates were different. In addition, the application of these induced changes to discriminate soil microbial communities was tested. The distance among all samples was greatly increased, which further showed the functional variance among microbial communities in soils. This can be very useful in the discrimination of microbial communities even with high similarity.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2008年第6期725-731,共7页 环境科学学报(英文版)
基金 supported by the National Natural Science Foundation of China(No.30470289,30670039).
关键词 substrate-induced respiration (SIR) BIOLOG community-level physiological profiles (CLPPs) substrate-induced respiration (SIR) BIOLOG community-level physiological profiles (CLPPs)
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  • 1Anderson J P E, Domsch K H, 1978. A physiological method for the quantitative measurement of microbial biomass in soils. Soil Biol Biochem, 10: 215-221.
  • 2Bochner B R, Savageau M A, 1977. Generalized indicator plate for genetic, metabolic, and taxonomic studies with microorganisms. Appl Environ Microbiol, 33:434-444.
  • 3Bossio D A, Scow K M, 1995. Impact of carbon and flooding on the metabolic diversity of microbial communities in soils. Appl Environ Microbiol, 61: 4043-4050.
  • 4Campbell C D, Chapman S J, Cameron C M, Davidson M S, Potts J M, 2003. A rapid microtiter plate method to measure carbon dioxide evolved from carbon substrate amendments so as to determine the physiological profiles of soil microbial communities by using whole soil. Appl Environ Microbiol, 69: 3593-3599.
  • 5Campbell C D, Grayston S J, Hirst D J, 1997. Use of rhizosphere carbon sources in sole carbon source tests to discriminate soil microbial communities. J Microbiol Methods, 30: 33- 41.
  • 6Chen J, Zhuang X L, Xie H J, Bai Z H, Qi H Y, Zhang H X, 2007. Associated impact of inorganic fertilizers and pesticides on microbial communities in soils. World J Microb Biot, 23: 23-29.
  • 7Classen A T, Boyle S I, Haskins K E, Overby S T, Hart S C, 2003. Community-level physiological profiles of bacteria and fungi: plate type and incubation temperature influences on contrasting soils. FEMSMicrobiol Ecol, 44: 319-328.
  • 8Degens B P, 1998. Microbial functional diversity can be influenced by the addition of simple organic substrates to soil. Soil Biol Biochem, 30: 1981-1988.
  • 9Degens B P, Harris J A, 1997. Development of a physiological approach to measuring the catabolic diversity of soil microbial communities. Soil Biol Biochem, 29:1309-1320.
  • 10Garland J L, 1997. Analysis and interpretation of communitylevel physiological profiles in microbial ecology. FEMS Microbiol Ecol, 24: 289-300.

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