Indicators of arable soils fatigue Bacterial - families and genera: A metagenomic approach

被引:49
作者
Wolinska, Agnieszka [1 ]
Kuzniar, Agnieszka [1 ]
Zielenkiewicz, Urszula [2 ]
Banach, Artur [1 ]
Blaszczyk, Mieczyslaw [3 ]
机构
[1] John Paul II Catholic Univ Lublin, Dept Biochem & Environm Chem, 1 1 Konstantynow St, PL-20708 Lublin, Poland
[2] Inst Biochem & Biophys PAS, Dept Microbial Biochem, 5a Pawinskiego St, PL-02206 Warsaw, Poland
[3] Warsaw Univ Life Sci, Dept Microbial Biol, 159 Nowoursynowska St, PL-02776 Warsaw, Poland
关键词
Soil fatigue; Arable soils; Next generation sequencing; Biodiversity; Soil indicators; Bacterial families; Bacterial genera; NITROGEN-FIXING BACTERIA; LAND-USE; DEHYDROGENASE-ACTIVITY; COMMUNITY STRUCTURE; CONSERVATION; DIVERSITY; QUALITY; MICROORGANISMS; SENSITIVITY; SYSTEMS;
D O I
10.1016/j.ecolind.2018.05.033
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
The main goal of the study was to determine new metagenomic indicators demonstrating sensitivity to soil fatigue as an effect of long-term agricultural use as well as new metagenomic indicators demonstrating bacterial resistance to human agricultural activity. Thirty-one soil samples (agriculturally exploited soil and wastelands serving as controls) were taken for the study, in the south-eastern part of Poland. For determination of biodiversity, next generation sequencing of the 16S rRNA metagenomic amplicons were used with the Ion Torrent (TM) technology. Bacterial sequences were clustered into operational taxonomic units (OTUs) based on a 99% similarity threshold. The correlation matrix was constructed to assess the relationships between bacterial families and genera and the environmental data. In the studied soils, 118 families and 305 genera were identified. Among them, 10 families were recommended as sensitive indicators of soil fatigue: Sphingomonadaceae > Chitinop hagaceae > Flavobacteriaceae > Oxtdobacteraceae > Acetobacteraceae > Myxococcaceae > Comamonadaceae > Pseudomonadaceae > Burkholderiaceae > Rhodanobacteraceae. Analogically, 8 bacterial genera sensitive to agricultural practices were found: Pelomonas > Ramhbacter > Flavobacterium > Rhizobacter > Steroidobacter > Cellvibrio > Halhangium > Pseudomonas. Their sensitivity was confirmed by a decrease in the number of OTUs in the agricultural soils, in comparison to the wastelands. In contrast, 5 bacterial genera that should be considered as indicators of resistance to agricultural land use were proposed: Nitrosospira > Rhodanobacter > Aquicella > Burkholderia > Mucilaginibacter. Statistical tests demonstrated that the most important factors for the abundances of bacterial families and genera included soil acidity (pH), easily degradable carbon (EDC), total carbon (TC), nitrite nitrogen (N-NO2), magnesium (Mg) and calcium (Ca) content, and soil moisture.
引用
收藏
页码:490 / 500
页数:11
相关论文
共 71 条
  • [1] Aislabie J, 2013, ECOSYSTEM SERVICES IN NEW ZEALAND: CONDITIONS AND TRENDS, P143
  • [2] Numerical Methodology to Minimize Resolution and Sensitivity Effects in P-Wave Measurements
    Amaral, M. F.
    Viana da Fonseca, A.
    Rios, S.
    [J]. GEOTECHNICAL TESTING JOURNAL, 2013, 36 (02): : 178 - 186
  • [3] Biochar induced soil microbial community change: Implications for biogeochemical cycling of carbon, nitrogen and phosphorus
    Anderson, Craig R.
    Condron, Leo M.
    Clough, Tim J.
    Fiers, Mark
    Stewart, Alison
    Hill, Robert A.
    Sherlock, Robert R.
    [J]. PEDOBIOLOGIA, 2011, 54 (5-6) : 309 - 320
  • [4] [Anonymous], 1997, PNR04031 PKN
  • [5] Indices for quantitative evaluation of soil quality under grassland management
    Askari, Mohammad Sadegh
    Holden, Nicholas M.
    [J]. GEODERMA, 2014, 230 : 131 - 142
  • [6] Linking microbial community structure to β-glucosidic function in soil aggregates
    Bailey, Vanessa L.
    Fansler, Sarah J.
    Stegen, James C.
    Mccue, Lee Ann
    [J]. ISME JOURNAL, 2013, 7 (10) : 2044 - 2053
  • [7] An Underground Revolution: Biodiversity and Soil Ecological Engineering for Agricultural Sustainability
    Bender, S. Franz
    Wagg, Cameron
    van der Heijden, Marcel G. A.
    [J]. TRENDS IN ECOLOGY & EVOLUTION, 2016, 31 (06) : 440 - 452
  • [8] Database of Polish arable mineral soils: a review
    Bieganowski, A.
    Witkowska-Walczak, B.
    Glinski, J.
    Sokolowska, Z.
    Slawinski, C.
    Brzezinska, M.
    Wlodarczyk, T.
    [J]. INTERNATIONAL AGROPHYSICS, 2013, 27 (03) : 335 - 350
  • [9] Conservation tillage impacts on soil, crop and the environment
    Busari, Mutiu Abolanle
    Kukal, Surinder Singh
    Kaur, Amanpreet
    Bhatt, Rajan
    Dulazi, Ashura Ally
    [J]. INTERNATIONAL SOIL AND WATER CONSERVATION RESEARCH, 2015, 3 (02) : 119 - 129
  • [10] Metagenome-Wide Association Study and Machine Learning Prediction of Bulk Soil Microbiome and Crop Productivity
    Chang, Hao-Xun
    Haudenshield, James S.
    Bowen, Charles R.
    Hartman, Glen L.
    [J]. FRONTIERS IN MICROBIOLOGY, 2017, 8