Variation in microbial biomass and enzymatic activities in metal contaminated soils during storage at low temperature (4°C)

被引:0
|
作者
Moy, Alistar [1 ]
Nkongolo, Kabwe [1 ,2 ]
机构
[1] Laurentian Univ, Dept Biol, Sudbury, ON, Canada
[2] Laurentian Univ, Biomol Sci Program, Sudbury, ON P3E 2C6, Canada
关键词
Enzymatic activities; microbial biomass; low temperature; phospholipid fatty acid analysis; soil liming; storage; PHOSPHOLIPID FATTY-ACID; COMMUNITIES; SAMPLES; PH;
D O I
10.1080/02757540.2023.2253222
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Microbial response to soil storage at low temperature in limed and unlimed samples has not been investigated. For this study, soil samples were kept at 4 & DEG;C for six weeks. Soil microbial biomass was determined using phospholipid fatty acid analysis (PLFA). Nine enzymes were targeted including & beta;-glucosidase (BG), cellobiohydrolase (CBH), & beta;-N-acetylglucosaminidase (NAGase), aryl sulfatase (AS), acid phosphatase (AP), alkaline phosphatase (AlP), glycine aminopeptidase (GAP), leucine aminopeptidase (LAP), and peroxidase (PER). PLFA results revealed a significant increase in total microbial biomass in limed area compared to unlimed soil samples. Microbial biomass decreased during the first two weeks of storage and remained unchanged thereafter for both limed and unlimed samples. Analysis of microbial activities revealed that most enzymes inconsistently decreased over time during storage at 4 & DEG;C. Activities of BG, CBH, NAGase, AlP, AS, GAP, LAP were significantly higher in limed compared to the unlimed samples. Overall, the levels of activities of most enzymes in limed soils decreased significantly after the second week of storage and remained unchanged thereafter. The reduction of enzyme activity in the unlimed soil samples varied over time, with some enzymes such as LAP increasing on the sixth week. PER activity decreased after two weeks and increased thereafter.
引用
收藏
页码:688 / 709
页数:22
相关论文
共 50 条
  • [21] Seasonal temperature variation and microbial heat generation at a JP4-contaminated site
    Glascoe, LG
    Chen, YM
    Barcelona, M
    Drummond, C
    Abriola, LM
    NATURAL ATTENUATION OF CHLORINATED SOLVENTS, PETROLEUM HYDROCARBONS, AND OTHER ORGANIC COMPOUNDS, 1999, : 201 - 206
  • [22] Seasonal variation in the abundance, biomass and biodiversity of earthworms in soils contaminated with metal emissions from a primary smelting works
    Spurgeon, DJ
    Hopkin, SP
    JOURNAL OF APPLIED ECOLOGY, 1999, 36 (01) : 173 - 183
  • [23] EVALUATION OF RESPIRATION-BASED METHODS FOR MEASURING MICROBIAL BIOMASS IN METAL-CONTAMINATED ACIDIC MINERAL AND ORGANIC SOILS
    DUMONTET, S
    MATHUR, SP
    SOIL BIOLOGY & BIOCHEMISTRY, 1989, 21 (03): : 431 - 436
  • [24] Effect of untreated sewage effluent irrigation on heavy metal content, microbial population and enzymatic activities of soils in Aligarh
    Bansal, O. P.
    Singh, Gajraj
    Katiyar, Pragati
    JOURNAL OF ENVIRONMENTAL BIOLOGY, 2014, 35 (04): : 641 - 647
  • [25] Impact of electrokinetic-assisted phytoremediation of heavy metal contaminated soil on its physicochemical properties, enzymatic and microbial activities
    Cang, Long
    Zhou, Dong-Mei
    Wang, Quan-Ying
    Fan, Guang-Ping
    ELECTROCHIMICA ACTA, 2012, 86 : 41 - 48
  • [26] Interaction effects of elevated CO2 and temperature on microbial biomass and enzyme activities in tropical rice soils
    Das, Suvendu
    Bhattacharyya, P.
    Adhya, T. K.
    ENVIRONMENTAL MONITORING AND ASSESSMENT, 2011, 182 (1-4) : 555 - 569
  • [27] Interaction effects of elevated CO2 and temperature on microbial biomass and enzyme activities in tropical rice soils
    Suvendu Das
    P. Bhattacharyya
    T. K. Adhya
    Environmental Monitoring and Assessment, 2011, 182 : 555 - 569
  • [28] Can the low microbial biomass C-to-organic-C ratio in an acid and a metal contaminated soil be explained by differences in the substrate utilization efficiency and maintenance requirements?
    Dahlin, S
    Witter, E
    SOIL BIOLOGY & BIOCHEMISTRY, 1998, 30 (05): : 633 - 641
  • [29] Soil microbial activities and heavy metal mobility in long-term contaminated soils after addition of EDTA and EDDS
    Muehlbachova, G.
    ECOLOGICAL ENGINEERING, 2011, 37 (07) : 1064 - 1071
  • [30] Effect of di-(2-ethylhexyl) phthalate (DEHP) on microbial biomass C and enzymatic activities in soil
    Wang, Xinhong
    Yuan, Xing
    Hou, Zhiguang
    Miao, Jing
    Zhu, Hui
    Song, Chuantao
    EUROPEAN JOURNAL OF SOIL BIOLOGY, 2009, 45 (04) : 370 - 376