Soil pH and electrical conductivity are key edaphic factors shaping bacterial communities of greenhouse soils in Korea

被引:132
作者
Kim, Jeong Myeong [1 ]
Roh, An-Sung [2 ]
Choi, Seung-Chul [3 ]
Kim, Eun-Jeong [4 ]
Choi, Moon-Tae [5 ]
Ahn, Byung-Koo [6 ]
Kim, Sun-Kuk [7 ]
Lee, Young-Han [8 ]
Joa, Jae-Ho [9 ]
Kang, Seong-Soo [10 ]
Lee, Shin Ae [1 ]
Ahn, Jae-Hyung [1 ]
Song, Jaekyeong [1 ]
Weon, Hang-Yeon [1 ]
机构
[1] RDA, Natl Inst Agr Sci, Wonju 55365, South Korea
[2] Gyeonggi Do Agr Res & Extens Serv ARES, Hwaseong 18388, South Korea
[3] Gangwon ARES, Chunchon 24226, South Korea
[4] Chungcheongbuk Do ARES, Cheongju 28130, South Korea
[5] Chungcheongnam Do ARES, Yesan 32418, South Korea
[6] Jeollabuk Do ARES, Iksan 54591, South Korea
[7] Jeollanam Do ARES, Naju 58213, South Korea
[8] Gyeongsangnam Do ARES, Jinju 52733, South Korea
[9] Res Inst Climate Change & Agr, Natl Inst Hort & Herbal Sci, RDA, Jeju 63240, South Korea
[10] RDA, NIAS, Soil & Fertilizat Div, Wonju 55365, South Korea
关键词
greenhouse; soil; bacterial community; pH; electrical conductivity; LAND-USE; MICROBIAL DIVERSITY; FUNGAL COMMUNITIES; SALINITY GRADIENT; GLOBAL PATTERNS; BIOGEOGRAPHY; CALCIUM;
D O I
10.1007/s12275-016-6526-5
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Soil microorganisms play an essential role in soil ecosystem processes such as organic matter decomposition, nutrient cycling, and plant nutrient availability. The land use for greenhouse cultivation has been increasing continuously, which involves an intensive input of agricultural materials to enhance productivity; however, relatively little is known about bacterial communities in greenhouse soils. To assess the effects of environmental factors on the soil bacterial diversity and community composition, a total of 187 greenhouse soil samples collected across Korea were subjected to bacterial 16S rRNA gene pyrosequencing analysis. A total of 11,865 operational taxonomic units at a 97% similarity cutoff level were detected from 847,560 sequences. Among nine soil factors evaluated; pH, electrical conductivity (EC), exchangeable cations (Ca2+, Mg2+, Na+, and K+), available P2O5, organic matter, and NO3-N, soil pH was most strongly correlated with bacterial richness (polynomial regression, pH: R-2 = 0.1683, P < 0.001) and diversity (pH: R-2 = 0.1765, P < 0.001). Community dissimilarities (Bray-Curtis distance) were positively correlated with Euclidean distance for pH and EC (Mantel test, pH: r = 0.2672, P < 0.001; EC: r = 0.1473, P < 0.001). Among dominant phyla (> 1%), the relative abundances of Proteobacteria, Gemmatimonadetes, Acidobacteria, Bacteroidetes, Chloroflexi, and Planctomycetes were also more strongly correlated with pH and EC values, compared with other soil cation contents, such as Ca2+, Mg2+, Na+, and K+. Our results suggest that, despite the heterogeneity of various environmental variables, the bacterial communities of the intensively cultivated greenhouse soils were particularly influenced by soil pH and EC. These findings therefore shed light on the soil microbial ecology of greenhouse cultivation, which should be helpful for devising effective management strategies to enhance soil microbial diversity and improving crop productivity.
引用
收藏
页码:838 / 845
页数:8
相关论文
共 55 条
  • [41] Seo H D., 2013, White revolution of agriculture in Korea: The achievement of year-round production and distribution of horticultural crops by the expansion of greenhouse cultivation
  • [42] Soil pH drives the spatial distribution of bacterial communities along elevation on Changbai Mountain
    Shen, Congcong
    Xiong, Jinbo
    Zhang, Huayong
    Feng, Youzhi
    Lin, Xiangui
    Li, Xinyu
    Liang, Wenju
    Chu, Haiyan
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2013, 57 : 204 - 211
  • [43] Effects of various salt-alkaline mixed stresses on Aneurolepidium chinense (Trin.) Kitag.
    Shi, DC
    Wang, DL
    [J]. PLANT AND SOIL, 2005, 271 (1-2) : 15 - 26
  • [44] Vegetable cultivation under greenhouse conditions leads to rapid accumulation of nutrients, acidification and salinity of soils and groundwater contamination in South-Eastern China
    Shi, Wei-Ming
    Yao, Jing
    Yan, Feng
    [J]. NUTRIENT CYCLING IN AGROECOSYSTEMS, 2009, 83 (01) : 73 - 84
  • [45] Singh D, 2013, J MICROBIOL, V51, P439
  • [46] Global change pressures on soils from land use and management
    Smith, Pete
    House, Joanna I.
    Bustamante, Mercedes
    Sobocka, Jaroslava
    Harper, Richard
    Pan, Genxing
    West, Paul C.
    Clark, Joanna M.
    Adhya, Tapan
    Rumpel, Cornelia
    Paustian, Keith
    Kuikman, Peter
    Cotrufo, M. Francesca
    Elliott, Jane A.
    McDowell, Richard
    Griffiths, Robert I.
    Asakawa, Susumu
    Bondeau, Alberte
    Jain, Atul K.
    Meersmans, Jeroen
    Pugh, Thomas A. M.
    [J]. GLOBAL CHANGE BIOLOGY, 2016, 22 (03) : 1008 - 1028
  • [47] Soil bacterial communities of a calcium-supplemented and a reference watershed at the Hubbard Brook Experimental Forest (HBEF), New Hampshire, USA
    Sridevi, Ganapathi
    Minocha, Rakesh
    Turlapati, Swathi A.
    Goldfarb, Katherine C.
    Brodie, Eoin L.
    Tisa, Louis S.
    Minocha, Subhash C.
    [J]. FEMS MICROBIOLOGY ECOLOGY, 2012, 79 (03) : 728 - 740
  • [48] Soil microbial community composition and land use history in cultivated and grassland ecosystems of coastal California
    Steenwerth, KL
    Jackson, LE
    Calderón, FJ
    Stromberg, MR
    Scow, KM
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2002, 34 (11) : 1599 - 1611
  • [49] Properties and Microstructures of Sn-Ag-Cu-X Lead-Free Solder Joints in Electronic Packaging
    Sun, Lei
    Zhang, Liang
    [J]. ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2015, 2015
  • [50] Spatial Scaling Effects on Soil Bacterial Communities in Malaysian Tropical Forests
    Tripathi, Binu M.
    Lee-Cruz, Larisa
    Kim, Mincheol
    Singh, Dharmesh
    Go, Rusea
    Shukor, Noraini A. A.
    Husni, M. H. A.
    Chun, Jongsik
    Adams, Jonathan M.
    [J]. MICROBIAL ECOLOGY, 2014, 68 (02) : 247 - 258