Global patterns in wood carbon concentration across the world’s trees and forests (original) (raw)
References
Pan, Y. D. et al. A large and persistent carbon sink in the world’s forests. Science333, 988–993 (2011). Article Google Scholar
Kohl, M. et al. Changes in forest production, biomass and carbon: results from the 2015 UN FAO Global Forest Resource Assessment. Forest Ecol. Manag.352, 21–34 (2015). Article Google Scholar
Keenan, R. J. et al. Dynamics of global forest area: results from the FAO Global Forest Resources Assessment 2015. Forest Ecol. Manag.352, 9–20 (2015). Article Google Scholar
van der Werf, G. R. et al. CO2 emissions from forest loss. Nat. Geosci.2, 829–829 (2009). Article Google Scholar
Canadell, J. G. & Raupach, M. R. Managing forests for climate change mitigation. Science320, 1456–1457 (2008). Article Google Scholar
Asner, G. P. et al. High-resolution forest carbon stocks and emissions in the Amazon. Proc. Natl Acad. Sci. USA107, 16738–16742 (2010). Article Google Scholar
Asner, G. P. Tropical forest carbon assessment: integrating satellite and airborne mapping approaches. Environ. Res. Lett.4, 034009 (2009). Article Google Scholar
Clark, D. B. & Kellner, J. R. Tropical forest biomass estimation and the fallacy of misplaced concreteness. J. Veg. Sci.23, 1191–1196 (2012). Article Google Scholar
USDA Agriculture and Forestry Greenhouse Gas Inventory: 1990–2008 Tech. Bull. 1930 (USDA, OCE, CCPO, 2011).
Saatchi, S. S. et al. Benchmark map of forest carbon stocks in tropical regions across three continents. Proc. Natl Acad. Sci. USA108, 9899–9904 (2011). Article Google Scholar
Baccini, A. et al. Estimated carbon dioxide emissions from tropical deforestation improved by carbon-density maps. Nat. Clim. Change2, 182–185 (2012). Article Google Scholar
Aalde, U. et al. in IPCC Guidelines for National Greenhouse Gas Inventories Vol. 4 (eds Eggleston, S., Buendia, L., Miwa, K., Ngara, T. & Tanabe, K.) Ch. 4 (IPPC, 2006).
Lamlom, S. H. & Savidge, R. A. A reassessment of carbon content in wood: variation within and between 41 North American species. Biomass Bioenerg. 25, 381–388 (2003). Article Google Scholar
Martin, A. R. & Thomas, S. C. A reassessment of carbon content in tropical trees. PLoS ONE6, e23533 (2011). Article Google Scholar
Thomas, S. C. & Martin, A. R. Carbon content of tree tissues: a synthesis. Forests3, 332–352 (2012). Article Google Scholar
Pettersen, R. C. in The Chemistry of Solid Wood (ed. Rowell, R.) 57–126 (American Chemical Society, Washington, 1984).
Martin, A. R., Thomas, S. C. & Zhao, Y. Size-dependent changes in wood chemical traits: a comparison of neotropical saplings and large trees. AoB Plants5, plt039 (2013). Article Google Scholar
Becker, G. S., Braun, D., Gliniars, R. & Dalitz, H. Relations between wood variables and how they relate to tree size variables of tropical African tree species. Trees Struct. Funct.26, 1101–1112 (2012). Article Google Scholar
Elias, M. & Potvin, C. Assessing inter- and intra-specific variation in trunk carbon concentration for 32 neotropical tree species. Can. J. Forest Res.33, 1039–1045 (2003). Article Google Scholar
Thomas, S. C. & Malczewski, G. Wood carbon content of tree species in Eastern China: interspecific variability and the importance of the volatile fraction. J. Environ. Manag.85, 659–662 (2007). Article Google Scholar
Chave, J. et al. Towards a worldwide wood economics spectrum. Ecol. Lett.12, 351–366 (2009). Article Google Scholar
Martin, A. R., Gezahegn, S. & Thomas, S. C. Variation in carbon and nitrogen concentration among major woody tissue types in temperate trees. Can. J. Forest Res.45, 744–757 (2015). Article Google Scholar
Poorter, L. et al. Biomass resilience of Neotropical secondary forests. Nature530, 211–214 (2016). Article Google Scholar
Boerjan, W., Ralph, J. & Baucher, M. Lignin biosynthesis. Annu. Rev. Plant Biol.54, 519–546 (2003). Article Google Scholar
Martin, A. R., Erickson, D. L., Kress, W. J. & Thomas, S. C. Wood nitrogen concentrations in tropical trees: phylogenetic patterns and ecological correlates. New Phytol.204, 484–495 (2014). Article Google Scholar
Myers, J. A. & Kitajima, K. Carbohydrate storage enhances seedling shade and stress tolerance in a neotropical forest. J. Ecol.95, 383–395 (2007). Article Google Scholar
Diaz, S. et al. The global spectrum of plant form and function. Nature529, 167–171 (2016). Article Google Scholar
Vance, C. P., Kirk, T. K. & Sherwood, R. T. Lignification as a mechanism of disease resistance. Annu. Rev. Phytopathol.18, 259–288 (1980). Article Google Scholar
Kattge, J. et al. TRY—a global database of plant traits. Global Change Biol.17, 2905–2935 (2011). Article Google Scholar
Harmon, M. E., Fasth, B., Woodall, C. W. & Sexton, J. Carbon concentration of standing and downed woody detritus: effects of tree taxa, decay class, position, and tissue type. Forest Ecol. Manag.291, 259–267 (2013). Article Google Scholar
Gao, B. L., Taylor, A. R., Chen, H. Y. H. & Wang, J. Variation in total and volatile carbon concentration among the major tree species of the boreal forest. Forest Ecol. Manag.375, 191–199 (2016). Article Google Scholar
Jones, D. A. & O’Hara, K. L. The influence of preparation method on measured carbon fractions in tree tissues. Tree Physiol.36, 1177–1189 (2016). Article Google Scholar
Pompa-Garcia, M., Sigala-Rodriguez, J. A., Jurado, E. & Flores, J. Tissue carbon concentration of 175 Mexican forest species. iForest10, 754–758 (2017). Article Google Scholar
Delignette-Muller, M. L. & Dutang, C. fitdistrplus: an R package for fitting distributions. J. Stat. Softw.64, 1–34 (2015). Article Google Scholar
Pinheiro, J et al. nlme:Linear and Nonlinear Mixed Effects Models (CRAN-R, 2016).
Lenth, R. V. Least-squares means: the R package lsmeans. J. Stat. Softw.69, 1–33 (2016). Article Google Scholar
Paradis, E., Claude, J. & Strimmer, K. APE: analyses of phylogenetics and evolution in R language. Bioinformatics20, 289–290 (2004). Article Google Scholar
Webb, C. O. & Donoghue, M. J. Phylomatic: tree assembly for applied phylogenetics. Mol. Ecol. Notes5, 181–183 (2005). Article Google Scholar
Webb, C. O., Ackerly, D. D. & Kembel, S. W. Phylocom: software for the analysis of phylogenetic community structure and trait evolution. Bioinformatics24, 2098–2100 (2008). Article Google Scholar
Wikstrom, N., Savolainen, V. & Chase, M. W. Evolution of the angiosperms: calibrating the family tree. Proc. R. Soc B268, 2211–2220 (2001). Article Google Scholar
Gastauer, M. & Meira-Neto, J. A. A. An enhanced calibration of a recently released megatree for the analysis of phylogenetic diversity. Braz. J. Biol.76, 619–628 (2016). Article Google Scholar
Blomberg, S. P., Garland, T. & Ives, A. R. Testing for phylogenetic signal in comparative data: behavioral traits are more labile. Evolution57, 717–745 (2003). Article Google Scholar
Kembel, S. W. et al. Picante: R tools for integrating phylogenies and ecology. Bioinformatics26, 1463–1464 (2010). Article Google Scholar
Chave, J. et al. Regional and phylogenetic variation of wood density across 2456 neotropical tree species. Ecol. Appl.16, 2356–2367 (2006). Article Google Scholar
Lefcheck, J. S. piecewiseSEM: Piecewise structural equation modeling in R for ecology, evolution, and systematics. Methods Ecol. Evol.7, 573–579 (2016). Article Google Scholar
Felsenstein, J. Phylogenies and the comparative method. Am. Nat.125, 1–15 (1985). Article Google Scholar
Garland, T., Harvey, P. H. & Ives, A. R. Procedures for the analysis of comparative data using phylogenetically independent contrasts. Syst. Biol.41, 18–32 (1992). Article Google Scholar
Thomas, S. C., Martin, A. R. & Mycroft, E. E. Tropical trees in a wind-exposed island ecosystem: height–diameter allometry and size at onset of maturity. J. Ecol.103, 594–605 (2015). Article Google Scholar