Effect of sodium amendments on the home-field advantage of litter decomposition in a subtropical forest of China

Forest Ecology and Management - Tập 468 - Trang 118148 - 2020
Yanli Ji1, Qiang Li1, Kai Tian2, Junbo Yang1, Haijing Hu1, Liuhuan Yuan1, Wenshuo Lu1, Bei Yao1, Xingjun Tian1,3
1School of Life Sciences, Nanjing University, Nanjing 210023, People’s Republic of China
2Key Laboratory of Ecological Security for Water Source Region of Mid-line Project of South-to-North Diversion Project of Henan Province, College of Agricultural Engineering, Nanyang Normal University, Nanyang 473061, People's Republic of China
3College of Eco-Environmental Engineering, Qinghai University, Xining 810016, People’s Republic of China

Tài liệu tham khảo

A'Bear, 2014, Size matters: What have we learnt from microcosm studies of decomposer fungus-invertebrate interactions?, Soil Biol. Biochem., 78, 274, 10.1016/j.soilbio.2014.08.009 Aerts, 1997, Climate, leaf litter chemistry and leaf litter decomposition in terrestrial ecosystems: a triangular relationship, Oikos, 79, 439, 10.2307/3546886 Austin, 2014, There's no place like home? An exploration of the mechanisms behind plant litter- decomposer affinity in terrestrial ecosystems, New Phytol., 204, 307, 10.1111/nph.12959 Ayres, 2006, Do plant species encourage soil biota that specialise in the rapid decomposition of their litter?, Soil Biol. Biochem., 38, 183, 10.1016/j.soilbio.2005.04.018 Ayres, 2009, Soil biota accelerate decomposition in high-elevation forests by specializing in the breakdown of litter produced by the plant species above them, J. Ecol., 97, 901, 10.1111/j.1365-2745.2009.01539.x Ayres, 2009, Home-field advantage accelerates leaf litter decomposition in forests, Soil Biol. Biochem., 41, 606, 10.1016/j.soilbio.2008.12.022 Bachega, 2016, Decomposition of Eucalyptus grandis and Acacia mangium leaves and fine roots in tropical conditions did not meet the Home Field Advantage hypothesis, Forest Ecol. Manage., 359, 33, 10.1016/j.foreco.2015.09.026 Bailey, 2002, Relationships between soil microbial biomass determined by chloroform fumigation-extraction, substrate-induced respiration, and phospholipid fatty acid analysis, Soil Biol. Biochem., 34, 1385, 10.1016/S0038-0717(02)00070-6 Caporaso, 2010, QIIME allows analysis of high-throughput community sequencing data, Nat. Methods, 7, 335, 10.1038/nmeth.f.303 Chomel, 2015, Home field advantage of litter decomposition in pure and mixed plantations under boreal climate, Ecosystems, 18, 1014, 10.1007/s10021-015-9880-y Clay, 2014, Short-term sodium inputs attract microbi-detritivores and their predators, Soil Biol. Biochem., 75, 248, 10.1016/j.soilbio.2014.04.021 Couteaux, 1995, Litter decomposition, climate and litter quality, Trends Ecol. Evol., 10, 63, 10.1016/S0169-5347(00)88978-8 Crossley, 1991, A high-efficiency, ‘low-technology’ Tullgren-type extractor for soil microarthropods, Agric. Ecosyst. Environ., 34, 187, 10.1016/0167-8809(91)90104-6 Crowther, 2012, Impacts of grazing soil fauna on decomposer fungi are species-specific and density-dependent, Fungal Ecol., 5, 277, 10.1016/j.funeco.2011.07.006 Crowther, 2011, Species-specific effects of soil fauna on fungal foraging and decomposition, Oecologia, 167, 535, 10.1007/s00442-011-2005-1 DeSantis, 2006, Greengenes, a chimera-checked 16S rRNA gene database and workbench compatible with ARB, Appl. Environ. Microb., 72, 5069, 10.1128/AEM.03006-05 Dick, 2000, Soil acid and alkaline phosphatase activity as pH adjustment indicators, Soil Biol. Biochem., 32, 1915, 10.1016/S0038-0717(00)00166-8 Edgar, 2013, UPARSE: highly accurate OTU sequences from microbial amplicon reads, Nat. Methods, 10, 996, 10.1038/nmeth.2604 Faber, 1991, Functional classification of soil fauna – a new approach, Oikos, 62, 110, 10.2307/3545458 Fanin, 2016, Functional breadth and home-field advantage generate functional differences among soil microbial decomposers, Ecology, 97, 1023, 10.1890/15-1263.1 Frankenberger, 1982, Influence of salinity on soil enzyme-activities, Soil Sci. Soc. Am. J., 46, 1173, 10.2136/sssaj1982.03615995004600060011x Freschet, 2012, Multiple mechanisms for trait effects on litter decomposition: moving beyond home-field advantage with a new hypothesis, J. Ecol., 100, 619, 10.1111/j.1365-2745.2011.01943.x Garcia-Palacios, 2016, Temporal dynamics of biotic and abiotic drivers of litter decomposition, Ecol. Lett., 19, 554, 10.1111/ele.12590 Gholz, 2000, Long-term dynamics of pine and hardwood litter in contrasting environments: toward a global model of decomposition, Global Change Biol., 6, 751, 10.1046/j.1365-2486.2000.00349.x Giesselmann, 2011, Lack of home-field advantage in the decomposition of leaf litter in the Atlantic Rainforest of Brazil, Appl. Soil Ecol., 49, 5, 10.1016/j.apsoil.2011.07.010 Hattenschwiler, 2005, Biodiversity and litter decomposition interrestrial ecosystems, Annu. Rev. Ecol. Evol. S., 36, 191, 10.1146/annurev.ecolsys.36.112904.151932 Jia, 2015, Sodium limits litter decomposition rates in a subtropical forest: additional tests of the sodium ecosystem respiration hypothesis, Appl. Soil Ecol., 93, 98, 10.1016/j.apsoil.2015.04.012 Kaspari, 2014, Sodium fertilization increases termites and enhances decomposition in an Amazonian forest, Ecology, 95, 795, 10.1890/13-1274.1 Kaspari, 2008, On the biogeography of salt limitation: a study of ant communities, Proc. Natl. Acad. Sci. U.S.A., 105, 17848, 10.1073/pnas.0804528105 Kaspari, 2009, Sodium shortage as a constraint on the carbon cycle in an inland tropical rainforest, Proc. Natl. Acad. Sci. U.S.A., 106, 19405, 10.1073/pnas.0906448106 Keiser, 2014, Disentangling the mechanisms underlying functional differences among decomposer communities, J. Ecol., 102, 603, 10.1111/1365-2745.12220 Keiser, 2011, The effect of resource history on the functioning of soil microbial communities is maintained across time, Biogeosciences, 8, 1477, 10.5194/bg-8-1477-2011 Kong, 2011, Btrim: A fast, lightweight adapter and quality trimming program for next-generation sequencing technologies, Genomics, 98, 152, 10.1016/j.ygeno.2011.05.009 Koukol, 2009, Do oribatid mites (Acari: Oribatida) show a higher preference for ubiquitous vs. specialized saprotrophic fungi from pine litter?, Soil Biol. Biochem., 41, 1124, 10.1016/j.soilbio.2009.02.018 Lavelle, 1996, Diversity of soil fauna and ecosystem function, Biology Int., 33, 3 Li, 2019, Effect of soil fauna on home-field advantages of litter mass loss and nutrient release in different temperate broad-leaved forests, Forests, 10, 1033, 10.3390/f10111033 Li, 2017, Home-field advantages of litter decomposition increase with increasing N deposition rates: a litter and soil perspective, Funct. Ecol., 31, 1792, 10.1111/1365-2435.12863 Lin, 2019, Fungi participate in driving home-field advantage of litter decomposition in a subtropical forest, Plant Soil, 434, 467, 10.1007/s11104-018-3865-5 Lin, 2017, Effect of N addition on home-field advantage of litter decomposition in subtropical forests, Forest Ecol. Manage., 398, 216, 10.1016/j.foreco.2017.05.015 Makkonen, 2012, Highly consistent effects of plant litter identity and functional traits on decomposition across a latitudinal gradient, Ecol. Lett., 15, 1033, 10.1111/j.1461-0248.2012.01826.x Meehan, 2014, Herbivore-mediated material fluxes in a northern deciduous forest under elevated carbon dioxide and ozone concentrations, New Phytol., 204, 397, 10.1111/nph.12947 Meier, 2008, Links between plant litter chemistry, species diversity, and below-ground ecosystem function, Proc. Natl. Acad. Sci. U.S.A., 105, 19780, 10.1073/pnas.0805600105 Milcu, 2011, All size classes of soil fauna and litter quality control the acceleration of litter decay in its home environment, Oikos, 120, 1366, 10.1111/j.1600-0706.2010.19418.x Moore, 2005, Modeling trophic pathways, nutrient cycling, and dynamic stability in soils, Pedobiologia, 49, 499, 10.1016/j.pedobi.2005.05.008 Olson, 1963, Energy-storage and balance of producers and decomposers in ecological-systems, Ecology, 44, 322, 10.2307/1932179 Osono, 2002, Comparison of litter decomposing ability among diverse fungi in a cool temperate deciduous forest in Japan, Mycologia, 94, 421, 10.1080/15572536.2003.11833207 Perez, 2013, Home-field advantage: A matter of interaction between litter biochemistry and decomposer biota, Soil Biol. Biochem., 67, 245, 10.1016/j.soilbio.2013.09.004 Quast, 2013, The SILVA ribosomal RNA gene database project: improved data processing and web-based tools, Nucleic Acids Res., 41, D590, 10.1093/nar/gks1219 Rath, 2015, Salt effects on the soil microbial decomposer community and their role in organic carbon cycling: a review, Soil Biol. Biochem., 81, 108, 10.1016/j.soilbio.2014.11.001 Scharnagl, 2017, Nature's potato chip: The role of salty fungi in a changing world, Am. J. Bot., 104, 641, 10.3732/ajb.1700034 Scheu, 2002, The soil food web: structure and perspectives, Eur. J. Soil. Biol., 38, 11, 10.1016/S1164-5563(01)01117-7 Schneider, 2005, Oribatid mite (Acari, Oribatida) feeding on ectomycorrhizal fungi, Mycorrhiza, 16, 67, 10.1007/s00572-005-0015-8 Schowalter, 1981, Community structure and nutrient content of canopy arthropods in clear-cut and uncut forest ecosystems, Ecology, 62, 1010, 10.2307/1937000 St John, 2011, No 'home' versus 'away' effects of decomposition found in a grassland-forest reciprocal litter transplant study, Soil Biol. Biochem., 43, 1482, 10.1016/j.soilbio.2011.03.022 Strickland, 2009, Testing the functional significance of microbial community composition, Ecology, 90, 441, 10.1890/08-0296.1 Strickland, 2009, Litter quality is in the eye of the beholder: initial decomposition rates as a function of inoculum characteristics, Funct. Ecol., 23, 627, 10.1111/j.1365-2435.2008.01515.x Veen, 2015, Litter quality and environmental controls of home-field advantage effects on litter decomposition, Oikos, 124, 187, 10.1111/oik.01374 Veen, 2018, Variation in home-field advantage and ability in leaf litter decomposition across successional gradients, Funct. Ecol., 32, 1563, 10.1111/1365-2435.13107 Verhoef, 1990, Decomposition and nitrogen mineralization in natural and agroecosystems – the contribution of soil animals, Biogeochemistry, 11, 175, 10.1007/BF00004496 Vivanco, 2008, Tree species identity alters forest litter decomposition through long-term plant and soil interactions in Patagonia, Argentina, J. Ecol., 96, 727, 10.1111/j.1365-2745.2008.01393.x Wallenstein, 2013, Litter chemistry changes more rapidly when decomposed at home but converges during decomposition-transformation, Soil Biol. Biochem., 57, 311, 10.1016/j.soilbio.2012.09.027 Wang, 2018, Mixed-species plantation with Pinus massoniana and Castanopsis hystrix accelerates C loss in recalcitrant coniferous litter but slows C loss in labile broadleaf litter in southern China, Forest Ecol. Manage., 422, 207, 10.1016/j.foreco.2018.04.024 Wang, 2007, Naive Bayesian classifier for rapid assignment of rRNA sequences into the new bacterial taxonomy, Appl. Environ. Microb., 73, 5261, 10.1128/AEM.00062-07 Wang, 2013, Home-field advantage of litter decomposition and nitrogen release in forest ecosystems, Biol. Fert. Soils, 49, 427, 10.1007/s00374-012-0741-y Wu, 2019, Home-field advantage of CWD decomposition in subtropical forests varied by field sites, Forest Ecol. Manage., 444, 127, 10.1016/j.foreco.2019.04.051 Yeung, 2019, Stronger effects of litter origin on the processing of conifer than broadleaf leaves: A test of home-field advantage of stream litter breakdown, Freshwater Biol., 64, 1755, 10.1111/fwb.13367 Yu, 2015, Nitrogen addition enhances home-field advantage during litter decomposition in subtropical forest plantations, Soil Biol. Biochem., 90, 188, 10.1016/j.soilbio.2015.07.026 Zeng, 2002, Available microelements in soils under different stands in northern subtropics of China, Acta Ecol. Sinica, 22, 2141