Volume 9 Issue 5
Sep.  2019
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Article Contents
ZHAO Jianguo, ZHAI Xuezheng, GUO Xiang, WANG Yejiao, WANG Jianghua, ZHOU Zimeng, JIANG Tiantian. Bacterial community characteristics and key driving factors of surface sediments in Huailai section of Yongding River in winter[J]. Journal of Environmental Engineering Technology, 2019, 9(5): 544-551. doi: 10.12153/j.issn.1674-991X.2019.03.250
Citation: ZHAO Jianguo, ZHAI Xuezheng, GUO Xiang, WANG Yejiao, WANG Jianghua, ZHOU Zimeng, JIANG Tiantian. Bacterial community characteristics and key driving factors of surface sediments in Huailai section of Yongding River in winter[J]. Journal of Environmental Engineering Technology, 2019, 9(5): 544-551. doi: 10.12153/j.issn.1674-991X.2019.03.250

Bacterial community characteristics and key driving factors of surface sediments in Huailai section of Yongding River in winter

doi: 10.12153/j.issn.1674-991X.2019.03.250
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  • Corresponding author: Tiantian JIANG E-mail: 506482219@qq.com
  • Received Date: 2018-10-21
  • Publish Date: 2019-09-20
  • The water quality indexes of surface sediments and overlying water in Huailai section of the Yongding River in winter were analyzed, the characteristics and diversity of bacterial community in sediments were studied by high-throughput sequencing technology, and the correlation between bacterial species in main sediments and relevant environmental factors was analyzed. The results showed that the average amount of OTUs of surface sediments in Huailai section of the Yongding River in winter was 7 357, the dominant bacterial species in surface sediment phylum level were Proteobacteria, Bacteroidetes, Chloroflexi and Firmicutes etc., and the dominant species in bacterial genus level were not obvious. The Shannon index of sediment bacteria ranged from 8.135 to 10.647, ACE index ranged from 6 060.643 to 7 182.679, Chao1 index ranged from 5 553.562 to 6 967.912, the bacterial species were the most abundant in cattail wetland sediments, while the bacterial species were less in the tributary surface sediments under ice-sealed water body. Organic phosphorus (OP) and $NH^{+}_{4}$-N concentration of surface sediment, TP and $NO^{-}_{2}$-N concentration of overlying water were the main driving factors of bacteria relatively abundance of surface sediments in winter in Huailai section of the Yongding River. Among them, sediment bacteria abundance were negatively correlated with sediment OP and $NH^{+}_{4}$-N concentration, and positively correlated with overlying water TP and $NO^{-}_{2}$-N concentration.

     

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  • [1]
    FINDLAY S . Stream microbial ecology[J]. Journal of the North American Benthological Society, 2010,29(1):170-181.
    [2]
    van DIJK E L, AUGER H, JASZCZYSZYN Y , et al. Ten years of next-generation sequencing technology[J]. Trends in Genetics, 2014,30(9):418-426.
    [3]
    MAHMOUDI N, ROBESON M S, CASTRO H F , et al. Microbial community composition and diversity in Caspian Sea sediments[J]. FEMS Microbiology Ecology, 2015,91(1):1-11.
    [4]
    LIU S, REN H X, SHEN L D , et al. pH levels drive bacterial community structure in sediments of the Qiantang River as determined by 454 pyrosequencing[J]. Frontiers in Microbiology, 2015,6:285.
    [5]
    LU X M, LU P Z . Characterization of bacterial communities in sediments receiving various wastewater effluents with high-throughput sequencing analysis[J]. Microbial Ecology, 2014,67(3):612-623.
    [6]
    BAI Y H, SHI Q, WEN D H , et al. Bacterial communities in the sediments of Dianchi Lake, a partitioned eutrophic waterbody in China[J]. PLoS ONE, 2012,7(5):e37796.
    [7]
    ZHANG J X, YANG Y Y, ZHAO L , et al. Distribution of sediment bacterial and archaeal communities in plateau freshwater lakes[J]. Applied Microbiology and Biotechnology, 2015,99(7):3291-3302.
    [8]
    XUE Y G, JIANG X D, SUN M , et al. Structure and diversity profiles of planktonic and sediment bacteria communities in the Zhushan Bay of Lake Taihu in winter based on high-throughput sequencing[J]. Journal of Ecology and Rural Environment, 2017,33(11):992-1000.
    [9]
    王鹏, 陈波, 张华 . 基于高通量测序的鄱阳湖典型湿地土壤细菌群落特征分析[J]. 生态学报, 2017,37(5):1650-1658.
    doi: 10.5846/stxb201510052000

    WANG P, CHEN B, ZHANG H . High throughput sequencing analysis of bacterial communities in soils of a typical Poyang Lake wetland[J]. Acta Ecologica Sinica, 2017,37(5):1650-1658. doi: 10.5846/stxb201510052000
    [10]
    王江权, 康敉, 郑祥 , 等. 海河流域典型河流粪源性指示微生物的污染特征及其时空分布[J]. 环境科学学报, 2017,37(1):138-145.

    WANG J Q, KANG M, ZHENG X , et al. Occurrence and temporal-spatial distribution of fecal indicator microorganisms in three rivers of the Haihe River Basin[J]. Acta Scientiae Circumstantiae, 2017,37(1):138-145.
    [11]
    李文洁 . 北京市对张家口市开展生态补偿研究[D]. 保定:河北大学, 2010.
    [12]
    杨长明, 吴亚琼, 王育来 , 等. 南淝河表层沉积物细菌群落结构特征及驱动因素[J]. 中国环境科学, 2018,38(9):3552-3561.

    YANG C M, WU Y Q, WANG Y L , et al. Microbial community structure characteristics and its key driving factors in surface sediments along Nanfei River[J]. China Environmental Science, 2018,38(9):3552-3561.
    [13]
    赵建国, 李洪波, 刘存歧 , 等. 永定河怀来段水体富营养化评价[J]. 环境工程技术学报, 2018,8(3):248-256.

    ZHAO J G, LI H B, LIU C Q , et al. Evaluation of eutrophication of water body in Huailai section of Yongding River[J]. Journal of Environmental Engineering Technology, 2018,8(3):248-256.
    [14]
    DENIS L, GRENZ C . Spatial variability in oxygen and nutrient fluxes at the sediment-water interface on the continental shelf in the Gulf of Lions (NW Mediterranean)[J]. Oceanologica Acta, 2003,26(4):373-389.
    [15]
    de CASABIANCA M L, LAUGIER T, MARINHO-SORIANO E . Seasonal changes of nutrients in water and sediment in a Mediterranean lagoon with shellfish farming activity (Thau Lagoon,France)[J]. ICES Journal of Marine Science, 1997,54(5):905-916.
    [16]
    寇文伯, 黄正云, 张杰 , 等. 鄱阳湖湖泊细菌群落组成及结构:以松门山为例[J]. 生态学报, 2015,35(23):7608-7614.
    doi: 10.5846/stxb201405030873

    KOU W B, HUANG Z Y, ZHANG J , et al. Bacterial community structure and composition in Lake Poyang:a case study in the Songmenshan Region[J]. China Acta Ecologica Sinica, 2015,35(23):7608-7614. doi: 10.5846/stxb201405030873
    [17]
    赵晓伟, 丁君, 窦妍 , 等. 基于MiSeq测序技术分析红鳍东方鲀养殖环境菌群多样性[J]. 生态学杂志, 2015,34(10):2965-2970.

    ZHAO X W, DING J, DOU Y , et al. Bacterial diversity in the breeding environment of Takifugu rubripes revealed by MiSeq sequencing[J]. Chinese Journal of Ecology, 2015,34(10):2965-2970.
    [18]
    DANIEL L M C, POZZI E, FORESTI E , et al. Removal of ammonium via simultaneous nitrification-denitrification nitrite-shortcut in a single packed-bed batch reactor[J]. Bioresource Technology, 2009,100(3):1100-1107.
    [19]
    GOFFREDI S K, ORPHAN V J . Bacterial community shifts in taxa and diversity in response to localized organic loading in the deep sea[J].Environmental Microbiology,2010(12):344-363.
    [20]
    COSTA M C M S, CARVALHO L, LEAL C D , et al. Impact of inocula and operating conditions on the microbial community structure of two anammox reactors[J]. Environmental Technology, 2014,35(14):1811-1822.
    [21]
    SHAO K Q, GAO G, QIN B Q , et al. Comparing sediment bacterial communities in the macrophyte-dominated and algae-dominated areas of eutrophic Lake Taihu, China[J] Canadian Journal of Microbiology, 2011,57(4):263-272.
    [22]
    SINKKO H, LUKKARI K, SIHVONEN L M , et al. Bacteria contribute to sediment nutrient release and reflect progressed eutrophication-driven hypoxia in an organic-rich continental sea[J]. PLoS ONE, 2013,8(6):e67061.
    [23]
    辛明秀, 马延和 . 嗜冷菌和耐冷菌[J]. 微生物学通报, 1999,26(2):155.

    XIN M X, MA Y H . Chilling bacteria and chilling tolerant bacteria[J]. Microbiology China, 1999,26(2):155.
    [24]
    杨浩, 张国珍, 杨晓妮 , 等. 16S rRNA高通量测序研究集雨窖水中微生物群落结构及多样性[J]. 环境科学, 2017,38(4):1704-1716.

    YANG H, ZHANG G Z, YANG X N , et al. Microbial community structure and diversity in cellar water by 16S rRNA high-throughput sequencing[J]. Environmental Science, 2017,38(4):1704-1716.
    [25]
    张建美, 李思远, 高绣纺 , 等. 16S rDNA克隆文库法分析地下水生物反硝化系统细菌种[J]. 科学技术与工程, 2014,14(30):283-288.

    ZHANG J M, LI S Y, GAO X F , et al. Bacteria diversity in a denitrification-based groundwater remediation system by 16S rDNA[J]. Science Technology and Engineering, 2014,14(30):283-288.
    [26]
    毛跃建 . 废水处理系统中重要功能类群Thauera属种群结构与功能的研究[D]. 上海:上海交通大学, 2009.
    [27]
    姚源, 竺建荣, 唐敏 , 等. 好氧颗粒污泥技术处理乡镇污水应用[J]. 环境科学研究, 2018,31(2):379-388.

    YAO Y, ZHU J R, TANG M , et al. Application of aerobic granular sludge technology on treatment of villages and towns sewage[J]. Research of Environmental Science, 2018,31(2):379-388.
    [28]
    MEYER-REIL L A, KÖSTER M . Eutrophication of marine waters:effects on benthic microbial communities[J]. Marine Pollution Bulletin, 2000,41(1/2/3/4/5/6):255-263.
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