[1] LI C,LI Q,ZHAO L,et al. Land-use effects on organic and inorganic carbon patterns in the topsoil around Qinghai Lake basin,Qinghai-Tibetan Plateau[J]. Catena,2016,147:345-355 [2] CHENG G,ZHU M,ZHANG X,et al. Northeastern China shelterbelt-farmland glomalin differences depend on geo-climates,soil depth,and microbial interaction:Carbon sequestration,nutrient retention and implication[J]. Applied Soil Ecology,2023,191:105068 [3] 万欣,张帅文,张润琴,等. 青藏高原不同土地利用方式土壤团聚体组成及稳定性特征[J]. 水土保持研究,2023,31(1):53-60 [4] HAO T X,LIU X J,ZHU Q C,et al. Quantifying drivers of soil acidification in three Chinese cropping systems[J]. Soil & Tillage Research,2022(215):105230 [5] YU Y,SHI Y,LI M,et al. Land-use type strongly affects soil microbial community assembly process and inter-kingdom co-occurrence pattern in a floodplain ecosystem[J]. Applied Soil Ecology,2022,179:104574 [6] ZHANG C,LIU G,XUE S,et al. Soil bacterial community dynamics reflect changes in plant community and soil properties during the secondary succession of abandoned farmland in the Loess Plateau[J]. Soil Biology & Biochemistry,2016,97:40-49 [7] 姚宝辉,王缠,郭怀亮,等. 人工草地建设对甘南草原土壤理化特性和微生物数量特征的影响[J]. 水土保持学报,2019,33(1):192-199 [8] 王亚妮,胡宜刚,王增如,等. 人工植被重建对沙化高寒草地土壤真菌群落特征的影响[J]. 土壤学报,2023,60(1):280-291 [9] YUAN J Y,OUYANG Z Y,ZHENG H,et al. Effects of different grassland restoration approaches on soil properties in the southeastern Horqin sandy land,northern China[J]. Applied Soil Ecology,2012,61:34-39 [10] GVLSER C. Effect of forage cropping treatments on soil structure and relationships with fractal dimensions[J]. Geoderma,2006,131(1):33-44 [11] 贾倩民,陈彦云,陈科元,等. 若干牧草在宁夏盐池干旱风沙区的引种试验[J]. 干旱区资源与环境,2014,28(12):154-158 [12] 古琛,贾志清,杜波波,等. 中国退化草地生态修复措施综述与展望[J]. 生态环境学报,2022,31(7):1465-1475 [13] 南志标,王锁民,王彦荣,等. 我国北方草地6种乡土植物抗逆机理与应用[J]. 科学通报,2016,61(2):239-249 [14] 王江山. 辽西北地区气候与生态环境的相互影响[J]. 安徽农业科学,2009,37(31):15376-15378 [15] 鲍士旦. 土壤农化分析[M]. 北京:中国农业出版社,2000:495 [16] BOLYEN E,RIDEOUT J R,DILLON M R,et al. Reproducible,interactive,scalable and extensible microbiome data science using QIIME 2[J]. Nature Biotechnology,2019,37(8):852-857 [17] CALLAHAN B J,MCMURDIE P J,ROSEN M J,et al. DADA2:High-resolution sample inference from Illumina amplicon data[J]. Nature Methods,2016,13(7):581 [18] SMITH P,HOUSE J I,BUSTAMANTE M,et al. Global change pressures on soils from land use and management[J]. Global Change Biology,2016,22(3):1008-1028 [19] PRVLIE R,PATRICHE C,BORRELLI P,et al. Arable lands under the pressure of multiple land degradation processes. A global perspective[J]. Environmental Research,2021,194:110697 [20] 刘丽,张玉龙,虞娜,等. 基于GIS的辽宁北部地区土壤酸化特征及其原因分析——以昌图县为例[J]. 沈阳农业大学学报,2012,43(2):173-178 [21] SCHRODER J L,ZHANG H L,GIRMA K,et al. Soil acidification from long-term use of nitrogen fertilizers on winter wheat[J]. Soil Science Society of America Journal,2011,75(3):957-964 [22] 任海燕,田磊,朱毅,等. 氮水添加改变内蒙古典型草原两种优势植物的氮吸收偏好[J]. 科学通报,2022,67(13):1459-1468 [23] WELIGAMA C,TANG C,SALE P W G,et al. Localised nitrate and phosphate application enhances root proliferation by wheat and maximises rhizosphere alkalisation in acid subsoil[J]. Plant and Soil,2008,312(1-2):101-115 [24] 郭洋,陈波浪,盛建东,等. 几种一年生盐生植物的吸盐能力[J]. 植物营养与肥料学报,2015,21(1):269-276 [25] 祁通,孙阳讯,黄建,等. 两种盐生植物在南北疆地区的适生性及吸盐能力[J]. 中国土壤与肥料,2017(1):144-148 [26] 范琳杰,李向义,林丽莎,等. 2006—2018年策勒绿洲农田不同施肥量对土壤养分的影响[J]. 水土保持研究,2021,28(5):41-53 [27] SIRI-PRIETO G,BUSTAMANTE M,PICASSO V,et al. Impact of nitrogen and phosphorous on biomass yield,nitrogen efficiency,and nutrient removal of perennial grasses for bioenergy[J]. Biomass and Bioenergy,2020,136:105526 [28] 贾映兰,魏培洁,吴明辉,等. 多年冻土区“黑土滩”土壤团聚体对人工建植的响应[J]. 草地学报,2022,30(8):1934-1943 [29] 裴雯,陈清,张洛梓,等. 放牧、水分和氮素对内蒙古草原土壤团聚体的影响[J]. 草地学报,2021,29(7):1499-1506 [30] ZHENG H,LIU W,ZHENG J,et al. Effect of long-term tillage on soil aggregates and aggregate-associated carbon in black soil of Northeast China[J]. Plos One,2018,13(6):e199523 [31] 徐艺萍,饶越悦,孟艳,等. 免耕对农田土壤团聚体的影响研究:Meta分析[J]. 环境科学,2024,45(2):952-960 [32] van ELSAS J D,CHIURAZZI M,MALLON C A,et al. Microbial diversity determines the invasion of soil by a bacterial pathogen[J]. Proceedings of the National Academy of Sciences of the United States of America,2012,109(4):1159-1164 [33] BAUMANN K,DIGNAC M F,RUMPEL C,et al. Soil microbial diversity affects soil organic matter decomposition in a silty grassland soil[J]. Biogeochemistry,2013,114(1-3):201-212 [34] ZHANG F G,ZHANG Q G. Microbial diversity limits soil heterotrophic respiration and mitigates the respiration response to moisture increase[J]. Soil Biology & Biochemistry,2016,98:180-185 [35] 孔亚丽,秦华,朱春权,等. 土壤微生物影响土壤健康的作用机制研究进展[J]. 土壤学报,2023:1-19 [36] LEGRAND F,PICOT A,COBO-DAZ J F,et al. Effect of tillage and static abiotic soil properties on microbial diversity[J]. Applied Soil Ecology,2018,132:135-145 [37] SABIR M S,SHAHZADI F,ALI F,et al. Comparative effect of fertilization practices on soil microbial diversity and activity:an overview[J]. Current Microbiology,2021,78(10):3644-3655 [38] CHANG F,JIA F G,LV R,et al. Soil bacterial communities reflect changes in soil properties during the tillage years of newly created farmland on the Loess Plateau[J]. Applied Soil Ecology,2021,161:103853 [39] GUO J X,LI J S,LIU K S,et al. Analysis of soil microbial dynamics at a cropland-grassland interface in an agro-pastoral zone in a temperate steppe in northern China[J]. Catena,2018,170:257-265 [40] SONG X N,ZHANG J L,PENG C R,et al. Replacing nitrogen fertilizer with nitrogen-fixing cyanobacteria reduced nitrogen leaching in red soil paddy fields[J]. Agriculture Ecosystems & Environment,2021,312:107320 [41] LI C,HUANG H,GU X,et al. Accumulation of heavy metals in rice and the microbial response in a contaminated paddy field[J]. Journal of Soils and Sediments,2024,24:644-656 [42] HURTADO C,MONTANO-CHVEZ Y N,DOMNGUEZ C,et al. Degradation of emerging organic contaminants in an agricultural soil:decoupling biotic and abiotic processes[J]. Water Air and Soil Pollution,2017,228(7):243 [43] HEMKEMEYER M,DOHRMANN A B,CHRISTENSEN B T,et al. Bacterial preferences for specific soil particle size fractions revealed by community analyses[J]. Frontiers in Microbiology,2018,9:149 [44] REEB V,KOLEL A,MCDERMOTT T R,et al. Good to the bone:microbial community thrives within bone cavities of a bison carcass at Yellowstone National Park[J]. Environmental Microbiology,2011,13(9):2403-2415 [45] LIU M,LIU M,LI P,et al. Variations in soil organic carbon decompositions of different land use patterns on the tableland of Loess Plateau[J]. Environmental Science and Pollution Research,2020,27(4):4337-4352 [46] WANG B R,LIU D,YANG J J,et al. Effects of forest floor characteristics on soil labile carbon as varied by topography and vegetation type in the Chinese Loess Plateau[J]. Catena,2021,196:104825 [47] CHANG Y Y,CHEN F,ZHU Y F,et al. Influence of revegetation on soil microbial community and its assembly process in the open-pit mining area of the Loess Plateau,China[J]. Frontiers in Microbiology,2022,13:992816 |