[1] 德科加,周青平,刘文辉,等. 施氮量对青藏高原燕麦产量和品质的影响[J]. 中国草地学报,2007,29(5):43-48 [2] 杜忠. 燕麦在中国的利用现状综述[J]. 安徽农学通报,2018,24(20):54-57 [3] 梁国玲,刘文辉,秦燕,等. 不同燕麦资源生物量构成和茎秆特征与倒伏间的相关性研究[J]. 草地学报,2019,27(5):1339-1346 [4] 张美俊,杨武德,王超,等. 燕麦β-葡聚糖含量及其检测方法研究进展[J]. 山西农业科学,2019,47(04):690-694 [5] Bell T,Newman J A,Silverman B W,et al. The contribution of species richness and composition to bacterial services[J]. Nature,2005,436(7054):1157-1160 [6] Fierer N,Jackson R B. The Diversity and biogeography of soil bacterial communities[J]. Proceedings of the National Academy of Sciences of the United States of America,2006,103(3):626-631 [7] 李琦,姚拓,阿不满,等. 根际促生菌微胶囊剂研发及对苜蓿、燕麦促生效果评价[J]. 草地学报,2019,27(5):1392-1399 [8] Zhang X,Zhao X,Zhang M. Functional diversity changes of microbial communities along a soil aquifer for reclaimed water recharge[J]. Fems Microbiology Ecology,2012,80(1):9-18 [9] 林先贵,胡君利. 土壤微生物多样性的科学内涵及其生态服务功能[J]. 土壤学报,2008,45(5):892-900 [10] 陈蕤坤,吴鹏飞,何青霞,等. 珙桐花药诱导愈伤组织的初步研究[J]. 四川大学学报(自然科学版),2012,49(5):1137-1142 [11] 邓玉峰,田善义,成艳红,等. 模拟氮沉降下施石灰对休耕红壤优势植物根际土壤微生物群落的影响[J]. 土壤学报,2016,6(3):1-11 [12] 李增强,赵炳梓,张佳宝. 玉米品种对根际微生物利用光合碳的影响[J]. 土壤学报,2016,53(5):1286-1295 [13] 李淑芬,尹娜,田影,等. 不同种植密度对玉米根际微生物群落结构的影响[J]. 吉林农业,2011(5):110-111 [14] 覃潇敏,郑毅,汤利,等.玉米与马铃薯间作对根际微生物群落结构和多样性的影响[J]. 作物学报,2015,41(6):919-928 [15] 戴雅婷,闫志坚,解继红,等. 基于高通量测序的两种植被恢复类型根际土壤细菌多样性研究[J]. 土壤学报,2017,54(3):735-748 [16] Gomez-Alvarez V,Teal T K,Schmidt T M. Systematic artifacts in metagenomes from complex microbial communities[J]. Isme Journal,2009,3(11):1314-1317 [17] Riley D,Barber S A. Bicarbonate accumulation and pH changes at the soybean root-soil interface[J]. Soil Science Society of America Joumal,1969,33(6):905-908 [18] 毕江涛,贺达汗. 植物对土壤微生物多样性的影响研究进展[J]. 中国农学通报,2009,25(9):244-250 [19] Riley D,Barber S A. Salt accumulation at the soybean (Glycinemax (L.)Merr) root-soil interface[J]. SoilScience Society of America Journal,1970,34(1):154-155 [20] 鲍士旦. 土壤农化分析(第三版)[M]. 北京:中国农业出版社,2000,12:25-114 [21] 赵帆,赵密珍,王钰,等.不同连作年限草莓根际细菌和真菌多样性变化[J].微生物学通报,2017,44(6):1377-1386 [22] Magoc T,Salzberg S L. Flash:Fast length adjustment of short reads to improve genome assemblies[J]. Bioinformatics,2011,27(21):2957-2963 [23] Wang Q,Garrity G M,Tiedje J M,et al. Naive bayesian classifier for rapid assignment of rRNA sequences into the new bacterial taxonomy[J]. Applied and Environmental Microbiology,2007,73(16):5261-5267 [24] Quast C,Pruesse E,Yilmaz P,et al. The Silva ribosomal RNA gene database project:Improved data processing and web-based tools[J]. Nucleic Acids Research,2013,41:590-596 [25] Yilmaz P,Parfrey L W,Yarza P,et al. The Silva and “All-species Living Tree Project(LTP)” taxonomic frameworks[J]. Nucleic Acids Research,2014,42:643-648 [26] 贺纪正,王军涛. 土壤微生物群落构建理论与时空演变特征[J]. 生态学报,2015,35(20):6575-6583 [27] 程立君,刘健君,王世敏,等. 光叶珙桐内生真菌的分离及其多样性研究[J]. 现代园艺,2018(1):5-6 [28] 李海云,姚拓,张建贵,等. 东祁连山退化高寒草地土壤细菌群落与土壤环境因子间的相互关系[J]. 应用生态学报,2018,29(11):3793-3801 [29] 李海云,姚拓,马亚春,等.祁连山中段退化高寒草地土壤细菌群落分布特征[J].草业学报,2019,28(8):170-179 [30] 李海云,姚拓,高亚敏,等. 退化高寒草地土壤真菌群落与土壤环境因子间相互关系[J]. 微生物学报,2019,59(4):678-688 [31] Kong H H,Conlan S,Grice E A,et al. Topographical and temporal diversity of the human skin microbiome[J]. Science,2009,324(5931):1190-1192 [32] 汪娅婷,付丽娜,姬广海,等. 基于高通量测序技术研究云南玉米根际微生物群落多样性[J]. 江西农业大学学报,2019(3):491-500 [33] Coleman-derr D,Desgarennes D,Fonseca-garcia C,et al. Plant compartment and biogeography affect micrbiome composition in cultivated and native Afave species[J]. New Phytologist,2016,209(2):798-811 [34] 刘宇. 不同海拔下海南凤仙花可培养根际和根内微生物多样性及其群落季节性变化[D]. 海南大学,2018,5:30-35 [35] 李香真,曲秋皓. 蒙古高原草原土壤微生物量碳氮特征[J]. 土壤学,2002,39(1):97-104 [36] Liu J,Sui Y,Yu Z,et al.Diversity and distribution patterns of acidobacterial communities in the black soil zone of northeast China[J]. Soil Biology and Biochemistry,2016,95:212-222 [37] Romanowicz K J,Freedman Z B,Upchurch R A,et al. Active microorganisms in forest soils differ from the total community yet are shaped by the same environmental factors:the influence of pH and soil moisture[J]. Fems Microbiology Ecology,2016,92(10):10 |