[1] 国家林业和草原局. 中国林业产业监测报告: 2018[M]. 北京: 中国林业出版社, 2019.

National Forestry and Grassland Administration. MonitoringReport of China Forestry Iindustry: 2018 [M]. Beijing: China Forestry Publishing House, 2019.
[2] BROCKERHOFF E G, JACTEL H, PARROTTA J A, et al. Plantation forests and biodiversity: oxymoron or opportunity? [J]. Biodiversity and Conservation, 2008, 17(5): 925−951. DOI: 10.1007/s10531-008-9380-x.
[3] WINGFIELD M, SLIPPERS B, HURLEY B, et al. Eucalypt pests and diseases: growing threats to plantation productivity [J]. Southern Forests: A Journal of Forest Science, 2008, 70(2): 139−144. DOI: 10.2989/SOUTH.FOR.2008.70.2.9.537.
[4] 何佩云, 丁贵杰, 谌红辉. 连栽马尾松人工林土壤肥力比较研究[J]. 林业科学研究, 2011, 24(3): 357−362.

HE Peiyun, DING Guijie, CHEN Honghui. Comparison on soil fertilities of masson pine plantations of different generations [J]. Forest Research, 2011, 24(3): 357−362. DOI: 10.13275/j.cnki.lykxyj.2011.03.018.
[5] 黄华蓉. 广东韶关市公益林乔木层碳密度和碳储量研究[J]. 亚热带植物科学, 2022, 51(4): 282−287.

HUANG Huarong. Carbon storage and carbon density of public welfare forest tree layers in Shaoguan, Guangdong [J]. Subtropical Plant Science, 2022, 51(4): 282−287. DOI:10.3969/j.issn.1009-7791.2022.04.006.
[6] 董辉, 严朝东, 苏纯兰, 等. 东莞5种生态公益林枯落物及土壤水文效应[J]. 水土保持学报, 2021, 35(5): 144−149, 160.

DONG Hui, YAN Chaodong, SU Chunlan, et al. Litter and soil hydrological effects of five no-commercial forests in Dongguan [J]. Journal of Soil Water Conservation, 2021, 35(5): 144−149, 160. DOI:10.13870/j.cnki.stbcxb.2021.05.021.
[7] 庞世龙, 黄小荣, 欧芷阳, 等. 桂南不同植被模式公益林植物多样性与土壤因子的关系[J]. 中南林业科技大学学报, 2015, 35(5): 109−113.

PANG Shilong, HUANG Xiaorong, OU Zhiyang, et al. Relationship between plant diversity and edaphic factors in non-commercial forests in southern Guangxi [J]. Journal of Central South University of Forestry & Technology, 2015, 35(5): 109−113. DOI:10.14067/j.cnki.1673-923x.2015.05.019.
[8] van der HEIJDEN M G, BARDGETT R D, van STRAALEN N M. The unseen majority: soil microbes as drivers of plant diversity and productivity in terrestrial ecosystems [J]. Ecology Letters, 2008, 11(3): 296−310. DOI: 10.1111/j.1461-0248.2007.01139.x.
[9] 陈保冬, 赵方杰, 张莘, 等. 土壤生物与土壤污染研究前沿与展望[J]. 生态学报, 2015, 35(20): 6604−6613.

CHEN Baodong, ZHAO Fangjie, ZHANG Xin, et al. Soil pollution and soil organisms: an overview of research progress and perspectives [J]. Acta Ecologica Sinica, 2015, 35(20): 6604−6613. DOI: 10.5846/stxb201506231259.
[10] XU Yuxing, DU Apeng, WANG Zhichao, et al. Effects of different rotation periods of Eucalyptus plantations on soil physiochemical properties, enzyme activities, microbial biomass and microbial community structure and diversity[J]. Forest Ecology and Management, 2020, 456: 117683. DOI: 10.1016/j.foreco.2019.117683.
[11] 谭宏伟, 杨尚东, 吴俊, 等. 红壤区桉树人工林与不同林分土壤微生物活性及细菌多样性的比较[J]. 土壤学报, 2014, 51(3): 575−584.

TAN Hongwei, YANG Shangdong, WU Jun, et al. Comparison of Eucalyptus plantation with and other forests in soil microbial activity and bacterial diversity in red soil region, China [J]. Acta Pedologica Sinica, 2014, 51(3): 575−584. DOI: 10.11766/trxb201309170421
[12] LAN Guoyu, LI Yuwu, WU Zhixiang, et al. Soil bacterial diversity impacted by conversion of secondary forest to rubber or Eucalyptus plantations: a case study of Hainan Island, South China [J]. Forest Science, 2017, 63(1): 87−93. DOI: 10.5849/forsci.16-012.
[13] ZHU Lingyue, WANG Xiuhai, CHEN Fangfang, et al. Effects of the successive planting of Eucalyptus urophylla on soil bacterial and fungal community structure, diversity, microbial biomass, and enzyme activity [J]. Land Degradation & Development, 2019, 30(6): 636−646. DOI: 10.1002/ldr.3249.
[14] 李述万. 广西雅长林场国家级自然保护区维管束植物物种多样性研究[D]. 桂林: 广西师范大学, 2017.

LI Shuwan. Studies on Species Diversity of Vascular Plants in Yachang Orchid National Nature Reserve of Guangxi [D]. Guilin: Guangxi Normal University, 2017.
[15] 鲍士旦. 土壤农化分析[M]. 3版. 北京: 中国农业出版社, 2000: 14−111.

BAO Shidan. Soil and Agricultural Chemistry Analysis[M]. 3rd ed. Beijing: China Agriculture Press, 2000: 14−111.
[16] 张荣, 李婷婷, 金锁. 等. 人为干扰对蒙顶山木荷次生林物种多样性及土壤理化性质的影响[J]. 浙江农林大学学报, 2020, 37(5): 867−875.

ZHANG Rong, LI Tingting, JIN Suo, et al. Effects of human disturbance on species diversity and soil physiochemical properties of Schima superba community in Mengding Mountain [J]. Journal of Zhejiang A&F University, 2020, 37(5): 867−875. DOI: 10.11833/j.issn.2095-0756.20190554.
[17] ZHOU Zhenghu, WANG Chuankuan, LUO Yiqi. Response of soil microbial communities to altered precipitation: a global synthesis [J]. Global Ecology and Biogeography, 2018, 27(9): 1121−1136. DOI: 10.1111/geb.12761.
[18] 何永彬, 张信宝, 文安邦. 西南喀斯特山地的土壤侵蚀研究探讨[J]. 生态环境学报, 2009, 18(6): 2393−2398.

HE Yongbin, ZHANG Xinbao, WEN Anbang. Discussion on karst soil erosion mechanism in karst mountain area in southwest China [J]. Ecology and Environmental Sciences, 2009, 18(6): 2393−2398. DOI: 10.16258/j.cnki.1674-5906.2009.06.046.
[19] GRÜTER D, SCHMID B, BRANDL H. Influence of plant diversity and elevated atmospheric carbon dioxide levels on belowground bacterial diversity[J]. BMC Microbiology, 2006, 6: 68. DOI: 10.1186/1471-2180-6-68.
[20] PRADA-SALCEDO L D, WAMBSGANSS J, BAUHUS J, et al. Low root functional dispersion enhances functionality of plant growth by influencing bacterial activities in European forest soils [J]. Environmental Microbiology, 2021, 23(4): 1889−1906. DOI: 10.1111/1462-2920.15244.
[21] LAUBER C L, HAMADY M, KNIGHT R, et al. Pyrosequencing-based assessment of soil pH as a predictor of soil bacterial community structure at the continental scale [J]. Applied and Environmental Microbiology, 2009, 75(15): 5111−5120. DOI: 10.1128/AEM.00335-09.
[22] ROUSK J, BÅÅTH E, BROOKES P C, et al. Soil bacterial and fungal communities across a pH gradient in an arable soil [J]. The ISME Journal, 2010, 4(10): 1340−1351. DOI: 10.1038/ismej.2010.58.
[23] JIANG Shuai, XING Yajuan, LIU Guancheng, et al. Changes in soil bacterial and fungal community composition and functional groups during the succession of boreal forests[J]. Soil Biology and Biochemistry, 2021, 161: 108393. DOI: 10.1016/j.soilbio.2021.108393.
[24] FIERER N, BRADFORD M A, JACKSON R B. Toward an ecological classification of soil bacteria [J]. Ecology, 2007, 88(6): 1354−1364. DOI: 10.1890/05-1839.
[25] BREWER T E, ARONSON E L, AROGYASWAMY K, et al. Ecological and genomic attributes of novel bacterial taxa that thrive in subsurface soil horizons[J]. mBio, 2019, 10(5): e01318-19. DOI: 10.1128/mBio.01318-19.
[26] LIU Lan, ZHU Kai, WURZBURGER N, et al. Relationships between plant diversity and soil microbial diversity vary across taxonomic groups and spatial scales[J]. Ecosphere, 2020, 11(1): e02999. DOI: 10.1002/ecs2.2999.
[27] REN Chengjie, LIU Weichao, ZHAO Fazhu, et al. Soil bacterial and fungal diversity and compositions respond differently to forest development[J]. CATENA, 2019, 181: 104071. DOI: 10.1016/j.catena.2019.104071.
[28] MA Luwen, LIU Lan, LU Yaoshun, et al. When microclimates meet soil microbes: temperature controls soil microbial diversity along an elevational gradient in subtropical forests[J]. Soil Biology and Biochemistry, 2022, 166: 108566. DOI: 10.1016/j.soilbio.2022.108566.
[29] CHO S J, KIM M H, LEE Y O. Effect of pH on soil bacterial diversity[J]. Journal of Ecology and Environment, 2016, 40(1): 10. DOI: 10.1186/s41610-016-0004-1.
[30] 汪众. 桉树混交林土壤养分和微生物群落结构特征研究[D]. 长沙: 中南林业科技大学, 2022.

WANG Zhong. Soil Nutrient Characteristics of Eucalyptus Mixed Plantation and Their Effect on Microbial Community Structure [D]. Changsha: Central South University of Forestry and Technology, 2022. DOI: 10.27662/d.cnki.gznlc.2022.000434.
[31] CHEN Yun, XI Jingjing, XIAO Man, et al. Soil fungal communities show more specificity than bacteria for plant species composition in a temperate forest in China[J]. BMC Microbiology, 2022, 22(1): 208. DOI: 10.1186/s12866-022-02591-1.
[32] DIEZ-HERMANO S, POVEDA J, BENITO Á, et al. Soil mycobiome and forest endophytic fungi: is there a relationship between them?[J]. Forest Ecology and Management, 2024, 562: 121924. DOI: 10.1016/j.foreco.2024.121924.
[33] COSTA D, TAVARES R M, BAPTISTA P, et al. The influence of bioclimate on soil microbial communities of cork oak[J]. BMC Microbiology, 2022, 22(1): 163. DOI: 10.1186/s12866-022-02574-2.
[34] TANG Xinghao, YANG Juanjuan, LIN Danhua, et al. Community assembly of ectomycorrhizal fungal communities in pure and mixed Pinus massoniana forests[J]. Journal of Environmental Management, 2024, 362: 121312. DOI: 10.1016/j.jenvman.2024.121312.
[35] SANTOLAMAZZA-CARBONE S, DURÁN-OTERO M, CALVIÑO-CANCELA M. Context dependency, co-introductions, novel mutualisms, and host shifts shaped the ectomycorrhizal fungal communities of the alien tree Eucalyptus globulus[J]. Scientific Reports, 2019, 9(1): 7121. DOI: 10.1038/s41598-019-42550-x.
[36] WANG Miao, SHI Shuai, LIN Fei, et al. Response of the soil fungal community to multi-factor environmental changes in a temperate forest [J]. Applied Soil Ecology, 2014, 81: 45−56. DOI: 10.1016/j.apsoil.2014.04.008.
[37] CASTAÑO C, LINDAHL B D, ALDAY J G, et al. Soil microclimate changes affect soil fungal communities in a Mediterranean pine forest [J]. New Phytologist, 2018, 220(4): 1211−1221. DOI: 10.1111/nph.15205.
[38] REN Y L, CAO Q B, LU M, et al. Differentiated contributions of plant diversity and soil parameters to shifts in fungal taxonomic composition across three altitudinal transects [J]. Microbiology, 2024, 93(5): 640−653. DOI: 10.1134/S0026261723600404.
[39] TOMAO A, ANTONIO BONET J, CASTAÑO C, et al. How does forest management affect fungal diversity and community composition? Current knowledge and future perspectives for the conservation of forest fungi[J]. Forest Ecology and Management, 2020, 457: 117678. DOI: 10.1016/j.foreco.2019.117678.
[40] WU Linfang, ZHOU Luhong, ZOU Bingzhang, et al. Soil fungal diversity and functionality changes associated with multispecies restoration of Pinus massoniana plantation in subtropical China[J]. Forests, 2022, 13(12): 2075. DOI: 10.3390/f13122075.
[41] 文翕, 党鹏. 亚热带4种林分土壤真菌群落结构及功能[J]. 福建农林大学学报(自然科学版), 2024, 53(2): 267−275.

WEN Xi, DANG Peng. Structural and functional characteristics of soil fungal communities under 4 subtropical forest stands [J]. Journal of Fujian Agriculture and Forestry University (Natural Science Edition), 2024, 53(2): 267−275. DOI: 10.13323/j.cnki.j.fafu(nat.sci.).202303009.