[1] 魏永成, 张 勇, 孟景祥, 等. 不同种源短枝木麻黄对青枯病的生理生化响应及早期选择[J]. 林业科学,2021,57(11):134-141. doi: 10.11707/j.1001-7488.20211113
[2] CHANDARANA H, SENTHIL KUMAR P, SEENUVASAN M, et al. Kinetics, equilibrium and thermodynamic investigations of methylene blue dye removal using Casuarina equisetifolia pines[J]. Chemosphere,2021,285: 131480. doi: 10.1016/j.chemosphere.2021.131480
[3] 左林芝, 黄 蕊, 张雅倩, 等. 海南岛不同林龄短枝木麻黄凋落物内外真菌多样性分析[J]. 生态学报,2020,40(17):6086-6095.
[4] 杨 彬, 郝清玉. 基于天然更新性能筛选海南岛木麻黄海防林混交树种[J]. 植物科学学报,2020,38(02):221-232.
[5] PAPE IBRAHIMA D, NATHALIE D, MARIAMA N, et al. Selection of arbuscular mycorrhizal fungal strains to improve Casuarina equisetifolia L. and Casuarina glauca Sieb. tolerance to salinity[J]. Annals of Forest Science,2018,75(3): 72. doi: 10.1007/s13595-018-0747-1
[6] ZHOU X, WANG Y, Li C Q, et al. Differential expression pattern of pathogenicity-related genes of Ralstonia pseudosolanacearum responding to Tissue Debris of Casuarina equisetifolia[J]. Phytopathology,2021,111(11): 1918-1926. doi: 10.1094/PHYTO-11-20-0490-R
[7] WU Z Y, LI J J, ZHENG J, et al. Soil microbial community structure and catabolic activity are significantly degenerated in successive rotations of Chinese fir plantations[J]. Scientific Reports,2017,7(1): 6691. doi: 10.1038/s41598-017-06768-x
[8] CHEN D Z, YE G F, GAO W, et al. Ecological response of Casuarina equisetifolia to environmental stress in coastal dunes in China[J]. Journal of Forest Research,2018,23(3): 173-182. doi: 10.1080/13416979.2018.1469209
[9] 王玉. 海南岛木麻黄人工海防林天然更新困难的障碍机制[D]. 海南: 海南师范大学, 2020
[10] 叶功富, 张水松, 黄传英, 等. 木麻黄人工林地持续利用问题的探讨[J]. 林业科技开发,1994(04):18-19.
[11] 叶功富, 徐俊森, 林武星, 等. 木麻黄连栽林地土壤肥力动态与地力维持[J]. 防护林科技,1996(S1):49-53 + 89.
[12] KAŠTOVSKÁ E, CÁRDENAS-HERNÁNDEZ J, KUZYAKOV Y. Priming effects in the rhizosphere and root detritusphere of two wet-grassland graminoids[J]. Plant and Soil,2022,472(1-2): 105-126. doi: 10.1007/s11104-021-05191-6
[13] BENITEZ M S, EWING P M, OSBORNE S L, et al. Rhizosphere microbial communities explain positive effects of diverse crop rotations on maize and soybean performance[J]. Soil Biology & Biochemistry,2021,159: 108309.
[14] BAKER B J, DE ANDA V, SEITZ K W, et al. Diversity, ecology and evolution of Archaea[J]. Nature Microbiology,2020,5(7): 887-900. doi: 10.1038/s41564-020-0715-z
[15] 东秀珠, 李 猛, 向 华, 等. 探秘生命的第三种形式——我国古菌研究之回顾与展望[J]. 中国科学:生命科学,2019,49(11):1520-1542.
[16] MOISSL-EICHINGER C, PAUSAN M, TAFFNER J, et al. Archaea are interactive components of complex microbiomes[J]. Trends in Microbiology,2018,26(1): 70-85. doi: 10.1016/j.tim.2017.07.004
[17] AZZIZ G, TRASANTE T, MONZA J, et al. The effect of soil type, rice cultivar and water management on ammonia-oxidizing archaea andbacteria populations[J]. Applied Soil Ecology,2016,100(1): 8-17.
[18] CHEN X, ZHANG L M, SHEN J P, et al. Soil type determines the abundance and community structure of ammonia-oxidizingbacteria and archaea in flooded paddy soils[J]. Journal of Soils & Sediments,2010,10(8): 1510-1516.
[19] ZHOU L T, LI J J, LUO Y, et al. Variation in soil fungal community structure during successive rotations of Casuarina equisetifolia plantations as determined by high-throughput sequencing analysis[J]. Plant Growth Regulation,2019,87(3): 445-453. doi: 10.1007/s10725-019-00483-5
[20] ZHOU L T, LI J J, POKHREL G R, et al. nifH gene sequencing reveals the effects of successive monoculture on soil diazotrophic microbial community in Casuarina equisetifolia plantations[J]. Frontiers in Plant Science, 2020, 11: 578812
[21] ZHOU L T, LI J J, POKHREL G R, et al. Effects of monoculture regime on the soil nirK- and nosZ-denitrifying bacterial communities of Casuarina equisetifolia[J]. Applied Soil Ecology,2022,171: 104326. doi: 10.1016/j.apsoil.2021.104326
[22] 吴则焰, 赵紫檀, 林文雄, 等. 基于T-RFLP方法的连栽杉木根际土壤细菌群落变化研究[J]. 生态学报,2019,39(19):1-11.
[23] 郭清明. 滨海沙地3种相思生长防护效果及改土能力研究[J]. 安徽农学通报(上半月刊),2010,16(13):202-203.
[24] 王 圳, 张金池, 崔晓晓, 等. VA菌根对喀斯特草本群落植物根际养分影响研究[J]. 生态环境学报,2010,19(7):1574-1577.
[25] LI M J, SHAO D T, ZHOU J C, et al. Signatures within esophageal microbiota with progression of esophageal squamous cell carcinoma[J]. Chinese Journal of Cancer Research,2020,32(6): 755-767. doi: 10.21147/j.issn.1000-9604.2020.06.09
[26] 万 盼, 胡艳波, 张弓乔, 等. 甘肃小陇山油松与柴胡栽培土壤细菌群落特征[J]. 生态学报,2018,38(17):6016-6024.
[27] ANGEL R, SOARES M I, UNGAR E D, et al. Biogeography of soil archaea and bacteria along a steep precipitation gradient[J]. The ISME Journal,2010,4(4): 553-563. doi: 10.1038/ismej.2009.136
[28] WANG H L, BIER R, ZGLESZEWSKI L, et al. Distinct distribution of archaea from soil to freshwater to estuary: implications of archaeal composition and function in different environments[J]. Frontiers in Microbiology,2020,11: 576661. doi: 10.3389/fmicb.2020.576661
[29] 李曙光, 皮昀丹, Zhang Chuan-lun. 古菌研究及其展望[J]. 中国科学技术大学学报,2007,37(08):830-838.
[30] 郭佳欢. 杉木人工林土壤肥力及微生物群落结构和功能研究[D]. 南京林业大学, 2022
[31] 陈雯雯, 王淑真, 姜宇杰, 等. 杉木连栽氨氧化古菌群落结构与硝态氮含量的关系[J]. 林业科学研究,2023,36(02):79-90.
[32] 唐楚珺, 高李文, 彭紫薇, 等. 连栽杉木人工林土壤氮循环功能基因丰度变化[J]. 应用与环境生物学报,2023,29(1):154-161.
[33] 朱启良, 刘洪凯, 陈 旭, 等. 杨树人工林根际古菌群落随细根生长的演变[J]. 应用生态学报,2019,30(03):849-856.
[34] 张 伟, 杜 钰. 棉花长期连作对新疆农田土壤古菌群落演替的影响[J]. 生态环境学报,2019,28(4):769-775.
[35] NICOL G W, GLOVER L A, PROSSER J I. Spatial analysis of archaeal community structure in grassland soil[J]. Applied and Environmental Microbiology,2003,69(12): 7420-7429. doi: 10.1128/AEM.69.12.7420-7429.2003
[36] NICOL G W, TSCHERKO D, EMBLEY TM, et al. Primary succession of soil Crenarchaeota across a receding glacier foreland[J]. Environmental Microbiology,2005,7: 337-347. doi: 10.1111/j.1462-2920.2005.00698.x
[37] TSANG K S W, CHEUNG M K, LAM R Y C, et al. A preliminary examination of the bacterial, archaeal, and fungal rhizosphere microbiome in healthy and Phellinus noxius-infected trees[J]. Microbiologyopen,2020,9(10): e1115. doi: 10.1002/mbo3.1115
[38] 戴瑞卿, 林明辉, 赖宝春, 等. 辣椒健康植株与患枯萎病植株根际土壤古菌群落多样性的比较研究[J]. 福建热作科技,2019,44(04):10-14. doi: 10.3969/j.issn.1006-2327.2019.04.004
[39] 闫慧贞, 徐邹洋, 陈文杰, 等. 环梅山岛海域春季浮游古菌群落空间分布特征研究[J]. 微生物学报,2021,61(9):2709-2725.
[40] DE CHAVES M G, MERLOTI L F, DE SOUZA L F, et al. Ecological co-occurrence and soil physicochemical factors drive the archaeal community in Amazonian soils[J]. Archives of Microbiology,2022,205(1): 31.
[41] ISODA R, HARA S, TAHVANAINEN T, et al. Comparison of archaeal communities in mineral soils at a boreal forest in Finland and a cold-temperate forest in Japan[J]. Microbes and Environments,2017,32(4): 390-393. doi: 10.1264/jsme2.ME17100
[42] SHI Y, ADAMS J M, NI Y Y, et al. The biogeography of soil archaeal communities on the eastern Tibetan Plateau[J]. Scientific Reports,2016,6: 38893. doi: 10.1038/srep38893
[43] MIKKONEN A, SANTALAHTI M, LAPPI K, et al. Bacterial and archaeal communities in long-term contaminated surface and subsurface soil evaluated through coextracted RNA and DNA[J]. FEMS Microbiology Ecology,2014,90(1): 103-114. doi: 10.1111/1574-6941.12376
[44] PEDRINHO A, MENDES L W, MERLOTI L F, et al. Forest-to-pasture conversion and recovery based on assessment of microbial communities in Eastern Amazon rainforest[J]. FEMS Microbiology Ecology,2019,95(3): fiy236.
[45] 殷萌清, 冯建祥, 黄小芳, 等. 天然及人工红树林土壤微生物群落结构分析[J]. 生态科学,2017,36(5):1-10.
[46] 刘建利, 王英娜, 未 丽, 等. 荒漠孑遗植物四合木对土壤古菌群落的影响[J]. 生态学报,2021,41(9):3548-3563.
[47] 刘会芳, 韩宏伟, 王 强, 等. 不同蔬菜与番茄轮作对设施土壤微生物多样性、酶活性及土壤理化性质的影响[J]. 微生物学报,2021,61(01):167-182.
[48] 李 娟, 赵秉强, 李秀英, 等. 长期不同施肥制度下几种土壤微生物学特征变化[J]. 植物生态学报,2008,32(4):891-899.
[49] ZHANG M J, CHAI L W, HUANG M K, et al. Deciphering the archaeal communities in tree rhizosphere of the Qinghai-Tibetan plateau[J]. BMC Microbiology,2020,20(1): 235. doi: 10.1186/s12866-020-01913-5
[50] ZHOU Z C, MENG H, LIU Y, et al. Stratified bacterial and archaeal community in mangrove and intertidal wetland mudflats revealed by high throughput 16S rRNA gene sequencing[J]. Frontiers in Microbiology,2017,8: 2148. doi: 10.3389/fmicb.2017.02148
[51] 牛晓燕. 大兴安岭天然林演替和人工林生长对于土壤微生物多样性动态的影响[D]. 内蒙古农业大学, 2018
[52] LIU J J, YU Z H, YAO Q, et al. Biogeographic distribution patterns of the archaeal communities across the black soil zone of northeast China[J]. Frontiers in Microbiology,2019,10: 23. doi: 10.3389/fmicb.2019.00023
[53] WEI Z W, HU X L, LI X H, et al. The rhizospheric microbial community structure and diversity of deciduous and evergreen forests in Taihu Lake area, China[J]. PloS One,2017,12(4): e0174411. doi: 10.1371/journal.pone.0174411