Chinese Journal of Applied Ecology ›› 2024, Vol. 35 ›› Issue (9): 2401-2412.doi: 10.13287/j.1001-9332.202409.028
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JIANG Chuan1,2, ZENG Xiaoling1,2, JIN Yanqiang1, FENG Defeng3, LIN Fangmei2,4, CHEN Yuanyang1,5, TANG Jianwei1, LIU Chenggang1*
Received:
2023-12-04
Accepted:
2024-05-08
Online:
2024-09-18
Published:
2025-03-18
JIANG Chuan, ZENG Xiaoling, JIN Yanqiang, FENG Defeng, LIN Fangmei, CHEN Yuanyang, TANG Jianwei, LIU Chenggang. Process and mechanism of termite impact on soil and plant[J]. Chinese Journal of Applied Ecology, 2024, 35(9): 2401-2412.
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URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202409.028
[1] Liu SJ, Xia SW, Wu DH, et al. Understanding global and regional patterns of termite diversity and regional functional traits. iScience, 2022, 25: 105538 [2] Ashton LA, Griffiths HM, Parr CL, et al. Termites mitigate the effects of drought in tropical rainforest. Science, 2019, 363: 174-177 [3] 程冬保, 阮冠华, 宋晓钢. 中国白蚁种类调查研究进展. 中华卫生杀虫药械, 2014, 20(2): 186-190 [4] 林小兵, 刘胜杰, 肖海峰, 等. 橡胶林种植对白蚁群落结构和多样性的影响. 生态学杂志, 2017, 36(10): 2847-2854 [5] Wu DH, Seibold S, Ellwood MF, et al. Differential effects of vegetation and climate on termite diversity and damage. Journal of Applied Ecology, 2022, 59: 2922-2935 [6] Bignell DE. Termite ecology in the first two decades of the 21st century: A review of reviews. Insects, 2019, 10: 60 [7] Jouquet P, Ranjard L, Lepage M, et al. Incidence of fungus-growing termites (Isoptera, Macrotermitinae) on the structure of soil microbial communities. Soil Biology and Biochemistry, 2005, 37: 1852-1859 [8] Jouquet P, Barre P, Lepage M, et al. The impact of termites on soil sheeting properties is better explained by environmental factors than by their feeding and building strategies. Geoderma, 2022, 412: 115706 [9] Jouquet P, Harit A, Bottinelli N, et al. Termite bioturbation: Fungal versus non-fungal building strategies lead to different soil sheeting stability. Soil Biology and Biochemistry, 2023, 176: 108868 [10] Paul BK, Vanlauwe B, Hoogmoed M, et al. Exclusion of soil macrofauna did not affect soil quality but increased crop yields in a sub-humid tropical maize-based system. Agriculture, Ecosystems & Environment, 2015, 208: 75-85 [11] Jouquet P, Chaudhary E, Kumar ARV. Sustainable use of termite activity in agro-ecosystems with reference to earthworms. A review. Agronomy for Sustainable Deve-lopment, 2018, 38: 3 [12] Van Thuyne J, Verrecchia EP. Impacts of fungus-growing termites on surficial geology parameters: A review. Earth-Science Reviews, 2021, 223: 103862 [13] López-Hernández D. Termite mound as nutrient hot-spots in savannah with emphasis in P cycling and the potential use of mounds as soil amendment. Pedobiologia, 2023, 99-100: 150888 [14] Fox-Dobbs K, Witkowski ETF. Termites create spatial structure and govern ecosystem function by affecting N2 fixation in an East African savanna. Ecology, 2010, 91: 1296-1307 [15] 李志强, 柯云玲, 班大雄, 等. 白蚁生物多样性及其对生态环境变化的指示作用. 生态学杂志, 2015, 34(2): 557-561 [16] 李德成, 李忠佩, 张桃林, 等. 白蚁活动与土壤环境之间的相互作用. 土壤, 2003, 35(2): 98-102 [17] Pennisi E. Africa's soil engineers Termites. Science, 2015, 347: 596-597 [18] Sako A, Mills AJ, Roychoudhury AN. Rare earth and trace element geochemistry of termite mounds in central and northeastern Namibia: Mechanisms for micro-nutrient accumulation. Geoderma, 2009, 153: 217-230 [19] Ackerman IL, Teixeira WG, Riha SJ, et al. The impact of mound-building termites on surface soil properties in a secondary forest of Central Amazonia. Applied Soil Eco-logy, 2007, 37: 267-276 [20] Brossard M, López-Hernández D, Lepage M, et al. Nutrient storage in soils and nests of mound-building Trinervitermes termites in Central Burkina Faso: Consequences for soil fertility. Biology and Fertility of Soils, 2007, 43: 437-447 [21] Abe T, Bignell DE, Higashi M, et al. Termites: Evolution, Sociality, Symbioses, Scology. Dordrecht, the Nertherland: Kluwer Academic Publishers, 2000 [22] Jouquet P, Bottinelli N, Shanbhag RR, et al. Termites: The neglected soil engineers of tropical soils. Soil Science, 2016, 181: 157-165 [23] Jouquet P, Guilleux N, Chintakunta S, et al. The influence of termites on soil sheeting properties varies depending on the materials on which they feed. European Journal of Soil Biology, 2015, 69: 74-78 [24] Jouquet P, Dauber J, Lagerlof J, et al. Soil invertebrates as ecosystem engineers: Intended and accidental effects on soil and feedback loops. Applied Soil Ecology, 2006, 32: 153-164 [25] Cheik S, Harit A, Bottinelli N, et al. Bioturbation by dung beetles and termites. Do they similarly impact soil and hydraulic properties? Pedobiologia, 2022, 95: 150845 [26] Erens H, Mujinya BB, Mees F, et al. The origin and implications of variations in soil-related properties within Macrotermes falciger mounds. Geoderma, 2015, 249-250: 40-50 [27] Kandasami RK, Borges RM, Murthy TG. Effect of biocementation on the strength and stability of termite mounds. Environmental Geotechnics, 2016, 3: 99-113 [28] Bera D, Bera S, Chatterjee ND. Termite mound soil properties in West Bengal, India. Geoderma Regional, 2020, 22: e00293 [29] King H, Ocko S, Mahadevan L. Termite mounds harness diurnal temperature oscillations for ventilation. Proceedings of the National Academy of Sciences of the United States of America, 2015, 112: 11589-11593 [30] Mills AJ, Medinski T. Ecological effects of clay mining by Macrotermes termites. South African Journal of Science, 2021, 117: Art. #11496 [31] Van Thuyne J, Darini I, Mainga A, et al. Are fungus-growing termites super sediment-sorting insects of subtropical environments? Journal of Arid Environments, 2021, 193: 104566 [32] Jouquet P, Narre P, Lepage M, et al. Impact of subterranean fungus-growing termites (Isoptera, Macrotermitiane) on chosen soil properties in a West African savanna. Biology and Fertility of Soils, 2005, 41: 365-370 [33] Muon R, Ket P, Sebag D, et al. Termite constructions as patches of soil fertility in Cambodian paddy fields. Geoderma Regional, 2023, 33: e00640 [34] Fall S, Nazaret S, Chotte JL, et al. Bacterial density and community structure associated with aggregate size fractions of soil-feeding termite mounds. Microbial Eco-logy, 2004, 48: 191-199 [35] Bottinelli N, Jouquet P, Capowiez Y, et al. Why is the influence of soil macrofauna on soil structure only considered by soil ecologists? Soil and Tillage Research, 2015, 146: 118-124 [36] Fall S, Brauman A, Chotte JL. Comparative distribution of organic matter in particle and aggregate size fractions in the mounds of termites with different feeding habits in Senegal: Cubitermes niokoloensis and Macrotermes bellicosus. Applied Soil Ecology, 2001, 17: 131-140 [37] Harit A, Moger H, Duprey JL, et al. Termites can have greater influence on soil properties through the construction of soil sheetings than the production of above-ground mounds. Insectes Sociaux, 2017, 64: 247-253 [38] Jouquet P, Guilleux N, Caner L, et al. Influence of soil pedological properties on termite mound stability. Geoderma, 2016, 262: 45-51 [39] Jouquet P, Chintakunta S, Bottinelli N, et al. The influence of fungus-growing termites on soil macro and micro-aggregates stability varies with soil type. Applied Soil Ecology, 2016, 101: 117-123 [40] Contour-Ansel D, Garnier-Sillam E, Lachaux M, et al. High performance liquid chromatography studies on the polysaccharides in the walls of the mounds of two species of termite in Senegal, Cubitermes oculatus and Macrotermes subhyalinus: Their origin and contribution to structural stability. Biology and Fertility of Soils, 2000, 31: 508-516 [41] Garnier-Sillam E, Harry M. Distribution of humic compounds in mounds of some soil-feeding termite species of tropical rainforests: Its influence on soil structure stabi-lity. Insectes Sociaux, 1995, 42: 167-185 [42] Lin FM, Jin YQ, Liu CG, et al. Termite mounds affect soil aggregate stability and aggregate-associated phosphorus forms in a tropical rubber plantation. Plant and Soil, 2024, 498: 93-109 [43] Chen CF, Wu J, Zhu X, et al. Hydrological characteristics and functions of termite mounds in areas with clear dry and rainy seasons. Agriculture, Ecosystems & Environment, 2019, 277: 25-35 [44] Ocko SA, Heyde A, Mahadevan L. Morphogenesis of termite mounds. Proceedings of the National Academy of Sciences of the United States of America, 2019, 116: 3379-3384 [45] Traoré S, Bottinelli N, Aroui H, et al. Termite mounds impact soil hydrostructural properties in southern Indian tropical forests. Pedobiologia, 2019, 74: 1-6 [46] Marquart A, Goldbach L, Blaum N. Soil-texture affects the influence of termite macropores on soil water infiltration in a semi-arid savanna. Ecohydrology, 2020, 13: e2249 [47] Zachariah N, Murthy TG, Borges RM. Moisture alone is sufficient to impart strength but not weathering resistance to termite mound soil. Royal Society Open Science, 2020, 7: 200485 [48] Turner S, Marais E, Vinte M, et al. Termites, water and soils. Agricola, 2006, 16: 40-45 [49] Mills AJ, Sirami C. Nutrient enrichment of ecosystems by fungus-growing versus non-fungus-growing termites. Journal of Tropical Ecology, 2018, 34: 385-389 [50] Mettrop IS, Cammeraat LH, Verbeeten E. The impact of subterranean termite activity on water infiltration and topsoil properties in Burkina Faso. Ecohydrology, 2012, 6: 324-331 [51] Jacklyn PM. “Magnetic” termite mound surfaces are oriented to suit wind and shade conditions. Oecologia, 1992, 91: 385-395 [52] Vesala R, Arppe L, Rikkinen J. Termite mound architecture regulates nest temperature and correlates with species identities of symbiotic fungi. PeerJ, 2019, 6: e6237 [53] Darlington JPEC. The underground passages and storage pits used in foraging by a nest of the termite Macrotermes michaelseni in Kajiado, Kenya. Journal of Zoology, 1982, 198: 237-247 [54] Lepage M, Morel G, Resplendino C. Discovery of termite galleries reaching deep groundwater in the North of Senegal. Comptes Rendus de l'Académie des Sciences.Série D: Sciences Naturelles, 1974, 278: 1855-1858 [55] Zanne AE, Flores-Moreno H, Powell L, et al. Termite sensitivity to temperature affects global wood decay rates. Science, 2022, 377: 1440-1444 [56] Bignell DE, Eggleton P. Termites in Ecosystems//Abe T, ed. Termites: Evolution, Sociality, Symbioses, Ecology. Dordrecht, the Nertherland: Kluwer Academic Publishers, 2000: 363-387 [57] Juergens N. The biological underpinnings of Namib desert fairy circles. Science, 2013, 339: 1618-1621 [58] Mujinya BB, Mees F, Boeckx P, et al. The origin of carbonates in termite mounds of the Lubumbashi area, D.R. Congo. Geoderma, 2011, 165: 95-105 [59] Mujinya BB, Van Ranst E, Verduudt A, et al. Termite bioturbation effects on electro-chemical properties of Ferralsols in the Upper Katanga (D.R. Congo). Geoderma, 2010, 158: 233-241 [60] Cailleau G, Braissant O, Verrecchia EP. Turning sunlight into stone: The oxalate-carbonate pathway in a tropical tree ecosystem. Biogeosciences, 2011, 8: 1755-1767 [61] Jouquet P, Traore S, Choosai C, et al. Influence of termites on ecosystem functioning. Ecosystem services provided by termites. European Journal of Soil Biology, 2011, 47: 215-222 [62] Griffiths HM, Ashton LA, Evans TA, et al. The impact of invertebrate decomposers on plants and soil. New Phytologist, 2021, 231: 2142-2149 [63] Chen CF, Liu WJ, Wu J, et al. Spatio-temporal variations of carbon and nitrogen in biogenic structures of two fungus-growing termites (M. annandalei and O. yunnanensis) in the Xishuangbanna region. Soil Biology and Biochemistry, 2018, 117: 125-134 [64] Tilahun A, Kebede F, Yamoah C, et al. Quantifying the masses of Macrotermes subhyalinus mounds and evaluating their use as a soil amendment. Agriculture, Ecosystems & Environment, 2012, 157: 54-59 [65] López-Hernández D, Brossard M, Fardeau JC, et al. Effect of different termite feeding groups on P sorption and P availability in African and South American savannas. Biology and Fertility of Soils, 2006, 42: 207-214 [66] Schwiede M, Duijnisveld W, Böttcher J. Investigation of processes leading to nitrate enrichment in soils in the Kalahari Region, Botswana. Physics and Chemistry of the Earth, 2005, 30: 712-716 [67] Aanen DK, Eggleton P. Fungus-growing termites originated in African rain forest. Current Biology, 2005, 15: 851-855 [68] Seymour CL, Milewski AV, Mills AJ, et al. Do the large termite mounds of Macrotermes concentrate micronutrients in addition to macronutrients in nutrient-poor African savannas? Soil Biology and Biochemistry, 2014, 68: 95-105 [69] 袁浩. 白蚁蚁巢对热带喀斯特森林土壤养分及植物多样性的影响. 硕士论文. 北京: 中国科学院大学, 2020 [70] Ndiaye D, Lepage M, Elimane C, et al. Nitrogen transformations associated with termite biogenic structures in a dry savanna ecosystem. Plant and Soil, 2004, 265: 189-196 [71] Chen CF, Singh AK, Yang B, et al. Effect of termite mounds on soil microbial communities and microbial processes: Implications for soil carbon and nitrogen cycling. Geoderma, 2023, 431: 116368 [72] Rückamp D, Amelung W, Theisz N, et al. Phosphorus forms in Brazilian termite nests and soils: Relevance of feeding guild and ecosystems. Geoderma, 2010, 155: 269-279 [73] Mamo M, Wortmann C. Phosphorus sorption as affected by soil properties and termite activity in Eastern and Southern Africa. Soil Science Society of America Journal, 2009, 73: 2170-2176 [74] Edosomwan N, Edosomwan E, Oke O. Physical and chemical characteristics of termite mounds and associated soils in tropical forest-savanna transitional area of Southern Nigeria. Indian Journal of Agricultural Research, 2012, 46: 338-343 [75] Rückamp D, Martius C, Bornemann L, et al. Soil genesis and heterogeneity of phosphorus forms and carbon below mounds inhabited by primary and secondary termites. Geoderma, 2012, 170: 239-250 [76] Devau N, Cadre EL, Hinsinger P, et al. Soil pH controls the environmental availability of phosphorus: Experimental and mechanistic modelling approaches. Applied Geochemistry, 2009, 24: 2163-2174 [77] Sarcinelli TS, Schaefer CEGR, Lynch LDS, et al. Chemical, physical and micromorphological properties of termite mounds and adjacent soils along a toposequence in Zona da Mata, Minas Gerais State, Brazil. Catena, 2009, 76: 107-113 [78] Sileshi GW, Arshad MA, Konate S, et al. Termite-induced heterogeneity in African savanna vegetation: Mechanisms and patterns. Journal of Vegetation Science, 2010, 21: 923-937 [79] Jones JA. Termites, soil fertility and carbon cycling in dry tropical Africa: A hypothesis. Journal of Tropical Ecology, 2009, 6: 291-305 [80] Chen QL, Hu HW, Yan ZZ, et al. Termite mounds reduce soil microbial diversity by filtering rare microbial taxa. Environmental Microbiology, 2021, 23: 2659-2668 [81] Chouvenc T, Bardunias P, Efstathion CA, et al. Resource opportunities from the nest of dying subterranean termite (Isoptera: Rhinotermitidae) colonies: A laboratory case of ecological succession. Annals of the Entomological Society of America, 2013, 106: 771-778 [82] Chouvenc T, Su NY, Robert A. Inhibition of Metarhizium anisopliae in the alimentary tract of the eastern subterranean termite Reticulitermes flavipes. Journal of Invertebrate Pathology, 2009, 101: 130-136 [83] Aguero CM, Eyer PA, Crippen TL, et al. Reduced environmental microbial diversity on the cuticle and in the galleries of a subterranean termite compared to surrounding soil. Microbial Ecology, 2021, 81: 1054-1063 [84] Chen QL, Hu HW, Yan ZZ, et al. Deterministic selection dominates microbial community assembly in termite mounds. Soil Biology and Biochemistry, 2021, 152: 108073 [85] Baker CCM, Vardaro JAC, Doak DF, et al. Spatial patterning of soil microbial communities created by fungus-farming termites. Molecular Ecology, 2020, 29: 4487-4501 [86] Kumar PP, Tilak M, Sivakumar K, et al. Studies on the assessment of major nutrients and microbial population of termite mound soil. International Journal of Forestry and Crop Improvement, 2018, 1: 13-17 [87] Enagbonma BJ, Ajilogba CF, Babalola OO. Metagenomic profiling of bacterial diversity and community structure in termite mounds and surrounding soils. Archives of Microbiology, 2020, 202: 2697-2709 [88] Ndiaye D, Lensi R, Lepage M, et al. The effect of the soil-feeding termite Cubitermes niokoloensis on soil microbial activity in a semi-arid savanna in West Africa. Plant and Soil, 2004, 259: 277-286 [89] Marynowska M, Goux X, Sillam-Dusses D, et al. Compositional and functional characterisation of biomass-degrading microbial communities in guts of plant fibre- and soil-feeding higher termites. Microbiome, 2020, 8: 96 [90] Enagbonma BJ, Babalola OO. Unveiling plant-beneficial function as seen in bacteria genes from termite mound soil. Journal of Soil Science and Plant Nutrition, 2020, 20: 421-430 [91] Faoro H, Alves AC, Souza EM, et al. Influence of soil characteristics on the diversity of bacteria in the Southern Brazilian Atlantic Forest. Applied and Environmental Microbiology, 2010, 76: 4744-4749 [92] Yan ZZ, Chen QL, Li CY, et al. Termite mound formation reduces the abundance and diversity of soil resistomes. Environmental Microbiology, 2021, 23: 7661-7670 [93] Roose-Amsaleg C, Brygoo Y, Harry M. Ascomycete diversity in soil-feeding termite nests and soils from a tropical rainforest. Environmental Microbiology, 2004, 6: 462-469 [94] Petipas RH, Brody AK. Termites and ungulates affect arbuscular mycorrhizal richness and infectivity in a semiarid savanna. Botany, 2014, 92: 233-240 [95] Nobre T, Aanen DK. Fungiculture or termite husbandry? The ruminant hypothesis. Insects, 2012, 3: 307-323 [96] Visser AA, Nobre T, Currie CR, et al. Exploring the potential for actinobacteria as defensive symbionts in fungus-growing termites. Microbial Ecology, 2012, 63: 975-985 [97] Murphy R, Benndorf R, Beer ZW, et al. Comparative genomics reveals prophylactic and catabolic capabilities of Actinobacteria within the fungus-farming termite symbiosis. mSphere, 2021, 6: e01233-20 [98] Menichetti L, Landi L, Nannpien P, et al. Chemical properties and biochemical activity of colonized and abandoned litter-feeding termite (Macrotermes spp.) mounds in chromic cambisol area on the Borana Plateau, Ethiopia. Pedosphere, 2014, 24: 399-407 [99] López-Hernández D, Fardeau J, Nino M, et al. Phosphatase activity in Nasutitermes ephratae termite nests. Biology and Fertility of Soils, 1989, 7: 134-137 [100] Roose-Amsaleg C, Mora P, Harry M. Physical, chemical and phosphatase activities characteristics in soil-feeding termite nests and tropical rainforest soils. Soil Biology and Biochemistry, 2005, 37: 1910-1917 [101] Yang T, Mo J, Cheng J. Purification and some properties of cellulase from Odontotermes formosanus (Isoptera: Termitidae). Insect Science, 2004, 11: 1-10 [102] Enagbonma BJ, Babalola OO. Potentials of termite mound soil bacteria in ecosystem engineering for sustainable agriculture. Annals of Microbiology, 2019, 69: 211-219 [103] Schmidt AM, Jacklyn P, Korb J. ‘Magnetic' termite mounds: Is their unique shape an adaptation to facilitate gas exchange and improve food storage? Insectes Sociaux, 2014, 61: 41-49 [104] Cosarinsky MI. The nest growth of the Neotropical mound-building termite, Cornitermes cumulans: A micromorphological analysis. Journal of Insect Science, 2011, 11: 122 [105] Ocko SA, King H, Andreen D, et al. Solar-powered ventilation of African termite mounds. Journal of Experimental Biology, 2017, 220: 3260-3269 [106] Zhou Y, Staver AC, Davies AB. Species-level termite methane production rates. Ecology, 2023, 104: e3905 [107] Kirschke S, Bousquet P, Ciais P, et al. Three decades of global methane sources and sinks. Nature Geoscience, 2013, 6: 813-823 [108] Quevedo HD, Brandani CB, Bento CB, et al. Greenhouse gas emissions from termite mounds in a transition area between the Cerrado Savanna and the Atlantic Forest in Brazil. Acta Oecologica, 2021, 110: 103690 [109] Nauer PA, Hutley LB, Arndt SK. Termite mounds mitigate half of termite methane emissions. Proceedings of the National Academy of Sciences of the United States of America, 2018, 115: 13306-13311 [110] Chiri E, Greening C, Lappan R, et al. Termite mounds contain soil-derived methanotroph communities kinetically adapted to elevated methane concentrations. The ISME Journal, 2020, 14: 2715-2731 [111] Ho A, Erens H, Mujinya BB, et al. Termites facilitate methane oxidation and shape the methanotrophic community. Applied and Environmental Microbiology, 2013, 79: 7234-7240 [112] Majeed MZ, Miambi E, Robert A, et al. Xylophagous termites: A potential sink for atmospheric nitrous oxide. European Journal of Soil Biology, 2012, 53: 121-125 [113] Brümmer C, Papen H, Wassmann R, et al. Fluxes of CH4 and CO2 from soil and termite mounds in south Sudanian savanna of Burkina Faso (West Africa). Global Biogeochemical Cycles, 2009, 23: GB1001 [114] Brauman A, Majeed MZ, Buatois B, et al. Nitrous oxide (N2O) emissions by termites: Does the feeding guild matter? PLoS One, 2015, 10(12): e0144340 [115] 刘夏末. 白蚁堆对树种分布和温室气体排放影响的研究. 硕士论文. 北京: 中国科学院大学, 2012 [116] Jamali H, Livesley SJ, Dawes TZ, et al. Diurnal and seasonal variations in CH4 flux from termite mounds in tropical savannas of the Northern Territory, Australia. Agricultural and Forest Meteorology, 2011, 151: 1471-1479 [117] Muvengwi J, Ndagurwa HGT, Nyenda T, et al. Nutrient dynamics and plant assemblages of Macrotermes falciger mounds in a savanna ecosystem. Acta Oecologica, 2016, 76: 13-21 [118] Loveridge JP, Moe SR. Termitaria as browsing hotspots for African megaherbivores in miombo woodland. Journal of Tropical Ecology, 2004, 20: 337-343 [119] Bloesch U. Thicket clumps: A characteristic feature of the Kagera savanna landscape, East Africa. Journal of Vegetation Science, 2008, 19: 31-44 [120] Moe SR, Mobæk R, Narmo AK. Mound building termites contribute to savanna vegetation heterogeneity. Plant Ecology, 2009, 202: 31-40 [121] Traoré S, Tigabu M, Jouquet P, et al. Long-term effects of macrotermes termites, herbivores and annual early fire on woody undergrowth community in Sudanian woodland, Burkina Faso. Flora-Morphology, Distribution, Functional Ecology of Plants, 2015, 211: 40-50 [122] Moeslund JE, Arge L, Bocher PK, et al. Topography as a driver of local terrestrial vascular plant diversity patterns. Nordic Journal of Botany, 2013, 31: 129-144 [123] Traoré S, Tigabu M, Ouedraogo SJ, et al. Macrotermes mounds as sites for tree regeneration in a Sudanian woodland (Burkina Faso). Plant Ecology, 2008, 198: 285-295 |
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