[1] 李小华,石淑芹.河北省耕地面积变化及其驱动力分析[J].东南大学学报:哲学社会科学版,2016,18(S):45-47.
[2] 史静,张乃明,包立.我国设施农业土壤质量退化特征与调控研究进展[J].中国生态农业学报,2013,21(7):787-794.
[3] Tikhonov V P,Tsvetkov V D,Litvinova E G,et al. Generation of negative air Ions by plants upon pulsed electrical stimulation applied to soil[J]. Russian Journal of Plant Physiology,2004,51(3):414-419.
[4] 曾路生,高岩,李俊良,等.寿光大棚菜地酸化与土壤养分变化关系研究[J].水土保持学报,2010,24(4):157-161.
[5] 葛菁萍.大棚土壤的理化性状[J].土壤通报,1998,29(1):89-90.
[6] Taylor M D. Accumulation of cadmium derived from fertilisers in New Zealand soils[J]. The Science of the Total Environment,1997,208(1/2):123-126.
[7] 黄江涛.洛阳市温棚蔬菜病害调查及综合防治研究[D]. 杨凌:西北农林科技大学,2006.
[8] 张洪霞,谭周进,张祺玲,等.土壤微生物多样性研究的DGGE/TGGE技术进展[J].核农学报,2009,23(4):721-727.
[9] Liu J J,Sui Y E,Yu Z H,et al. High throughput sequencing analysis of biogeographical distribution of bacterial communities in the black soils of Northeast China[J]. Soil Biology & Biochemistry,2014,70(2):113-122.
[10] 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):83-94.
[11] Xu Y,Fang Z,Lu X,et al. Effects of starane on maize soil bacterial diversity analyzed by high-throughput sequencing technology[J]. Acta Microbiologica Sinica,2017,57(7):985-993.
[12] Young J M,Weyrich L S,Cooper A. Forensic soil DNA analysis using high-throughput sequencing:a comparison of four molecular markers[J]. Forensic Science International-Genetics,2014,13(8):176-184.
[13] Liu L Z,Lyu D,Li J Y,et al. Illumina high-throughput sequencing and comparative analysis of bacterial communities in cherry orchard soil[J]. Toxicological and Environmental Chemistry,2016,98(3/4):462-478.
[14] Huhe S F,Chen X,Hou F,et al. Bacterial and fungal community structures in loess plateau grasslands with different grazing intensities[J]. Frontiers in Microbiology,2017,8:606.
[15] Amato K R,Yeoman C J,Kent A,et al. Habitat degradation impacts black howler monkey( Alouatta pigra)gastrointestinal microbiomes[J]. The ISME Journal,2013,7(7):1344-1353.
[16] Wang Y,Sheng H F,He Y,et al. Comparison of the levels of bacterial diversity in freshwater,intertidal wetland,and Marine sediments by using millions of illumina tags[J]. Applied and Environmental Microbiology,2012,78(23):8264-8271.
[17] Clarke K R. Non-parametric multivariate analyses of changes in community structure[J]. Austral Ecology,1993,18(1):117-143.
[18] 龙海,李一农,李芳荣,等.植物病原菌黄单胞菌的分类研究进展[J].植物保护,2010,36(5):11-16.
[19] 姬广海.溶杆菌属及其在植物病害防治中的研究进展[J].云南农业大学学报,2011,26(1):124-130.
[20] 巫亮,李荣鹏,訾小利,等.厌氧及好氧条件下盐度对海杆菌NY-9生长及反硝化能力的影响[J].湖北农业科学,2014,53(23):5705-5708.
[21] 孙向楠,胡晓珂,王慧.海洋沉积物细菌群落结构对芘和苯甲酸钠胁迫的响应[J].海洋与湖沼,2015,46(6):1304-1311.
[22] 于莉芳,杜倩倩,傅学焘,等.城市污水中硝化菌群落结构与性能分析[J].环境科学,2016,37(11):4366-4371.
[23] 李贺,林学政,何培青,等.南极抗细菌活性菌株的筛选及系统发育分析[J].微生物学通报,2011,38(2):264-269.
[24] 黄颖,赵晨,杨博磊,等.刺糖多孢菌高产菌株和野生型菌株多杀菌素生物合成基因簇(spn)在发酵过程中的表达分析[J].农业生物技术学报,2014,22(11):1337-1346.
[25] 邓振山.苦马豆根瘤中内生细菌遗传多样性分析[J].草业科学,2016,33(10):1951-1962.
[26] 戴燕燕.含羞草根瘤菌的数值分类及种群鉴定[D].保定:河北大学,2010.
[27] 张汉波,任维敏,邵启雍,等.重金属污染环境中的节杆菌群体遗传结构分化[J].生态学报,2005,25(10):2569-2573.
[28] Schloss P D,Gevers D,Westcott S L. Reducing the effects of PCR amplification and sequencing artifacts on 16S rRNA-based studies[J]. PLoS One,2011,6(12):e27310.
[29] Wang J,Mclenachan P A,Biggs P J,et al. Environmental bio-monitoring with high-throughput sequencing[J]. Briefings in Bioinformatics,2013,14(5):575-588.
[30] 王晓雯,洪振瀚,刘安瑞,等.基于荧光定量PCR和高通量测序技术的葡萄园土壤细菌群落结构多样性分析[J].酿酒科技,2016(11):28-33,36.
[31] Harris J A. Measurements of the soil microbial community for estimating the success of restoration[J]. European Journal of Soil Science,2003,54(4):801-808. |