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PeerJ  2015 

Leaf litter decomposition rates increase with rising mean annual temperature in Hawaiian tropical montane wet forests

DOI: 10.7717/peerj.685

Keywords: Decomposition,Hawaii,Tropical wet forest,Climate change,Elevation gradient,Nitrogen cycling,Metrosideros polymorpha,Mean annual temperature (MAT),Leaf litter

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Abstract:

Decomposing litter in forest ecosystems supplies nutrients to plants, carbon to heterotrophic soil microorganisms and is a large source of CO2 to the atmosphere. Despite its essential role in carbon and nutrient cycling, the temperature sensitivity of leaf litter decay in tropical forest ecosystems remains poorly resolved, especially in tropical montane wet forests where the warming trend may be amplified compared to tropical wet forests at lower elevations. We quantified leaf litter decomposition rates along a highly constrained 5.2 °C mean annual temperature (MAT) gradient in tropical montane wet forests on the Island of Hawaii. Dominant vegetation, substrate type and age, soil moisture, and disturbance history are all nearly constant across this gradient, allowing us to isolate the effect of rising MAT on leaf litter decomposition and nutrient release. Leaf litter decomposition rates were a positive linear function of MAT, causing the residence time of leaf litter on the forest floor to decline by ~31 days for each 1 °C increase in MAT. Our estimate of the Q10 temperature coefficient for leaf litter decomposition was 2.17, within the commonly reported range for heterotrophic organic matter decomposition (1.5–2.5) across a broad range of ecosystems. The percentage of leaf litter nitrogen (N) remaining after six months declined linearly with increasing MAT from ~88% of initial N at the coolest site to ~74% at the warmest site. The lack of net N immobilization during all three litter collection periods at all MAT plots indicates that N was not limiting to leaf litter decomposition, regardless of temperature. These results suggest that leaf litter decay in tropical montane wet forests may be more sensitive to rising MAT than in tropical lowland wet forests, and that increased rates of N release from decomposing litter could delay or prevent progressive N limitation to net primary productivity with climate warming.

References

[1]  Adair EC, Hobbie SE, Hobbie RK. 2010. Single-pool exponential decomposition models: potential pitfalls in their use in ecological studies. Ecology 91:1225-1236
[2]  Adair EC, Parton WJ, del Grosso SJ, Silver WL, Harmon ME, Hall SA, Burke IC, Hart SC. 2008. Simple three-pool model accurately describes patterns of long-term litter decomposition in diverse climates. Global Change Biology 14:2636-2660
[3]  Aerts R. 1997. Climate, leaf litter chemistry and leaf litter decomposition in terrestrial ecosystems: a triangular relationship. Oikos 79:439-449
[4]  Bradley RS, Keimig FT, Diaz HF. 2004. Projected temperature changes along the American cordillera and the planned GCOS network. Geophysical Research Letters 31:L16210
[5]  Cao G, Giambelluca TW, Stevens DE, Schroeder TA. 2007. Inversion variability in the Hawaiian trade wind regime. Journal of Climate 20:1145-1160
[6]  Cusack DF, Chou WW, Yang WH, Harmon ME, Silver WL, The LIDET Team. 2009. Controls on long-term root and leaf litter decomposition in neotropical forests. Global Change Biology 15:1339-1355
[7]  Gholz HL, Wedin DA, Smitherman SM, Harmon ME, Parton WJ. 2000. Long-term dynamics of pine and hardwood litter in contrasting environments: toward a global model of decomposition. Global Change Biology 6:751-765
[8]  Giambelluca TW, Chen Q, Frazier AG, Price JP, Chen Y-L, Chu P-S, Eischeid JK, Delparte DM. 2013. Online rainfall atlas of Hawai‘i. Bulletin of the American Meteorological Society 94:313-316
[9]  Giambelluca TW, Diaz HF, Luke MSA. 2008. Secular temperature changes in Hawai‘i. Geophysical Research Letters 35:L12702
[10]  Giambelluca TW, Shuai X, Barnes ML, Aliss RJ, Longman RJ, Miura T, Chen Q, Frazier AG, Mudd RG, Cuo L, Businger AD. 2014. Evapotranspiration of Hawai‘i. Final report submitted to the U.S. Army Corps of Engineers—Honolulu District, and the Commission on Water Resource Management, State of Hawaii. Available at http://evapotranspiration.geography.hawaii.edu/
[11]  Giardina CP, Litton CM, Crow SE, Asner GP. 2014. Warming-related increases in soil CO2 efflux are explained by increased below-ground carbon flux. Nature Climate Change 4:822-827
[12]  Hobbie SE, Vitousek PM. 2000. Nutrient limitation of decomposition in Hawaiian forests. Ecology 81:1867-1877
[13]  Hyvnen R, gren GI, Dalias P. 2005. Analysing temperature response of decomposition of organic matter. Global Change Biology 11:770-778
[14]  Iwashita DK, Litton CM, Giardina CP. 2013. Coarse woody debris carbon storage across a mean annual temperature gradient in tropical montane wet forest. Forest Ecology and Management 291:336-343
[15]  Ktterer T, Reichstein M, Andrén O, Lomander A. 1998. Temperature dependence of organic matter decomposition: a critical review using literature data analyzed with different models. Biology and Fertility of Soils 27:258-262
[16]  Litton CM, Giardina CP, Albano JK, Long MS, Asner GP. 2011. The magnitude and variability of soil-surface CO2 efflux increase with mean annual temperature in Hawaiian tropical montane wet forests. Soil Biology and Biochemistry 43:2315-2323
[17]  Luo Y, Su B, Currie WS, Dukes JS, Finzi AC, Hartwig U, Hungate BA, McMurtrie RE, Oren R, Parton WJ, Pataki DE, Shaw R, Zak DR, Field CB. 2004. Progressive nitrogen limitation of ecosystem responses to rising atmospheric carbon dioxide. BioScience 54:731-739
[18]  Malhi Y, Silman M, Salinas N, Bush M, Meir P, Saatchi S. 2010. Introduction: elevation gradients in the tropics: laboratories for ecosystem ecology and global change research. Global Change Biology 16:3171-3175
[19]  Olson JS. 2007. Energy storage and the balance of producers and decomposers in ecological systems. Ecology 44:322-331
[20]  Perry DA, Oren R, Hart SC. 2008. Forest ecosystems (second edition). Baltimore, MD: Johns Hopkins University Press.
[21]  R Core Team. 2014. R: A language and environment for statistical computing. Vienna: R Foundation for Statistical Computing. Available at http://www.R-project.org/
[22]  Reiners WA. 1968. Carbon dioxide evolution from the floor of three Minnesota forests. Ecology 49:471-483
[23]  Rustad LE, Campbell JL, Marion GM, Norby RJ, Mitchell MJ, Hartley AE, Cornelissen JHC, Gurevitch J, GCTE-NEWS. 2001. A meta-analysis of the response of soil respiration, net nitrogen mineralization, and aboveground plant growth to experimental ecosystem warming. Oecologia 126:543-562
[24]  Salinas N, Malhi Y, Meir P, Silman M, Roman Cuesta R, Huaman J, Salinas D, Huaman V, Gibaja A, Mamani M, Farfan F. 2011. The sensitivity of tropical leaf litter decomposition to temperature: results from a large-scale leaf translocation experiment along an elevation gradient in Peruvian forests. New Phytologist 189:967-977
[25]  Schuur EAG. 2001. The effect of water on decomposition dynamics in mesic to wet Hawaiian montane forests. Ecosystems 4:259-273
[26]  Scowcroft P, Turner DR, Vitousek PM. 2008. Decomposition of Metrosideros polymorpha leaf litter along elevational gradients in Hawaii. Global Change Biology 6:73-85
[27]  Selmants PC, Litton CM, Giardina CP, Asner GP. 2014. Ecosystem carbon storage does not vary with mean annual temperature in Hawaiian tropical montane wet forests. Global Change Biology 20:2927-2937
[28]  Waring BG. 2012. A meta-analysis of climatic and chemical controls on leaf litter decay rates in tropical forests. Ecosystems 15:999-1009
[29]  Wieder WR, Cleveland CC, Townsend AR. 2009. Controls over leaf litter decomposition in wet tropical forests. Ecology 90:3333-3341
[30]  Wolfe EW, Morris J. 1996. Geologic map of the Island of Hawaii. Reston, VA: U.S. Geological Survey.
[31]  Wood TE, Cavaleri MA, Reed SC. 2012. Tropical forest carbon balance in a warmer world: a critical review spanning microbial- to ecosystem-scale processes. Biological Reviews 87:912-927
[32]  Zhou T, Shi P, Hui D, Luo Y. 2009. Global pattern of temperature sensitivity of soil heterotrophic respiration (Q 10) and its implications for carbon-climate feedback. Journal of Geophysical Research 114:G02016

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