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Why do Tree Species Affect Soils? The Warp and Woof of Tree-soil Interactions

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Abstract

Many ideas have been advanced regarding how trees affect soils. Enough evidence is now available to evaluate the strength of these ideas and to consider interactions between tree species and soils in an evolutionary context. Forest floor mass commonly differs by about 20% for different species growing on the same site; differences of up to 5-fold have been reported. Litterfall mass and N content commonly differ by 20 to 30%, but larger differences are also common (especially with N-fixing species). The net mineralization of soil N typically differs by 50% or more among species, indicating very strong feedback possibilities. We evaluate the evolutionary context of tree effects on soils by considering 3 degrees of coupling of trees to soils: tightly woven connections where the fitness of the tree is enhanced by its effect on soils; loosely woven interactions where selection for tree fitness unrelated to soil properties leads to indirect effects on soils (either enhancing or impairing fitness); and frayed interactions where the effects of trees on soil derive from features of the ecosystem that do not involve direct selection for tree fitness. Evidence supports each of these degrees of interaction for at least some cases, and no single context explains all the interactions between trees and soils. Important areas for further work include: next-generation assessments of the effects of trees on soil suitability for the same (and different) species, and the role of soil organisms in developing and modifying the effects of trees on soils.

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References

  • Bergkvist B & Folkeson L (1995) The influence of tree species on acid deposition, proton budgets and element fluxes in south Swedish forest ecosystems. Ecol. Bull. 44: 90-99

    Google Scholar 

  • Betancourt JL (1990) Late quaternary biogeography of the Colorado Plateau. In: Betancourt JL, Van Devender TR & Martin PS (Eds) Packrat Middens: The Last 40,000 Years of Biotic Change (pp 259-294). University of Arizona Press

  • Binkley D (1986) Forest Nutrition Management. Wiley, New York

    Google Scholar 

  • Binkley D (1992) Mixtures of nitrogen-fixing and non-nitrogen-fixing tree species. In: Cannell MGR, Malcolm DC & Robertson PA (Eds) The Ecology of Mixed-Species Stands of Trees (pp 99-123). Blackwell Scientific, Oxford

    Google Scholar 

  • Binkley D (1996a) The influence of tree species on forest soils: Processes and patterns. In: Mead DJ & Cornforth IS (Eds) Proceedings of the Trees and Soils Workshop (pp 1-33). Agronomy Society of New Zealand Special Publication #10, Canterbury

  • Binkley D (1996b) Bioassays of the influence of Eucalyptus salignaand Albizia facaltariaon soil nutrient supply and limitation. For. Ecol. Manage. 91: 229-234

    Google Scholar 

  • Binkley D & Valentine D (1991) Fifty-year biogeochemical effects of green ash, white pine, and Norway spruce in a replicated experiment. For. Ecol. Manage. 40: 13-25

    Google Scholar 

  • Binkley D & Giardina C (1997) Biological nitrogen fixation in plantations. Chapter 9 In: Nambiar EKS & Brown A (Eds) Management of Soil, Water and Nutrients in Tropical Plantation Forests (pp 297-337). CSIRO/CIFOR

  • Binkley D, Valentine D, Wells C & Valentine U (1989) Nitrogen mineralization in high elevation forests of the Appalachians. I. Regional patterns in spruce-fir forests. Biogeochemistry 7: 131-145

    Google Scholar 

  • Brozek S (1990) Effect of soil changes caused by red alder (Alnus rubra) on biomass and nutrient status of Douglas-fir (Pseudotsuga menziesii) seedlings. Can, J. For. Res. 20: 1320-1325

    Google Scholar 

  • Bryant JP, Chapin III FS & Klein DR (1983) Carbon/nutrient balance of boreal plants in relation to vertebrate herbivory. Oikos 40: 357-368

    Google Scholar 

  • Chapin III FS, Walker LR, Fastie CL & Sharman LC (1994) Mechanisms of primary succession following deglaciation at Galacier Bay, Alaska. Ecol. Monogr. 64: 149-175

    Google Scholar 

  • Chapman K (1986) Interaction Between Tree Species Decomposition and Nutrient Release from Litters. PhD thesis, University of Lancaster, UK

    Google Scholar 

  • Cortina J & Vallejo VR (1994) Effects of clearfelling on forest floor accumulation and litter decomposition in a radiata pine plantation. For. Ecol. Manage. 70: 299-310

    Google Scholar 

  • Davis MB, Sugita S, Calcote RR & Frelich L (1992) Effects of invasion by Tsuga canadensison a North American forest ecosystem. In: Teller A, Mathy P & Jeffers JNR (Eds) Responses of Forest Ecosystems to Environmental Changes (pp 34-44). Elsevier, London

    Google Scholar 

  • Eriksson HM & Rosén K (1994) Nutrient distribution in a Swedish tree species experiment. Plant Soil 164: 51-59

    Google Scholar 

  • Frelich LE, Calcote RR, Davis MB & Pastor J (1993) Patch formation and maintenance in an old-growth hemlock-hardwood forest. Ecology 74: 513-527

    Google Scholar 

  • Garcia-Montiel D & Binkley D (1998) Effect of Eucalyptus salignaand Albizia facaltariaon soil processes and nitrogen supply in Hawaii. Oecologia (in press)

  • Gillespie A & Pope PE (1990) Rhizosphere acidification increases phosphorus recovery of black locust: I. Induced acidification and soil response. Soil Sci. Soc. Am. J. 54: 533-537

    Google Scholar 

  • Gower ST & Son Y (1992) Differences in soil and leaf litterfall nitrogen dynamics for five forest plantations. Soil Sci. Soc. Am. J. 56: 1959-1966

    Google Scholar 

  • Graham RC & Wood HB (1991) Morphologic development and clay redistribution in lysimeter soils under chaparral and pine. Soil Sci. Soc. Am. J. 55: 1638-1646

    Google Scholar 

  • Harding RJ, Neal C & Whitehead PG (1992) Hydrological effects of plantation forestry in north-western Europe. In: Teller A, Mathy P & Jeffers JNR (Eds) Responses of Forest Ecosystems to Environmental Changes (pp 445-455). Elsevier, London

    Google Scholar 

  • Helvey J & Patric J (1988) Research on interception losses and soil moisture relationships. In: Swank W & Crossley DA (Eds) Forest Hydrology and Ecology at Coweeta (pp 129-140). Springer-Verlag, New York

    Google Scholar 

  • Hibbs D, DeBell D & Tarrant R (Eds) (1994) The Biology and Management of Red Alder. Oregon State University Press, Corvallis

    Google Scholar 

  • Hobbie SE (1992) Effects of plant species on nutrient cycling. Trends Ecol. Evol. 7: 336-339

    Google Scholar 

  • Hook P, Burke I & Lauenroth W (1991) Heterogeneity of soils and plant N and C associated with plants and openings in North American shortgrass steppe. Plant Soil 138: 256

    Google Scholar 

  • Horner JD, Gosz JR & Cates RG (1988) The role of carbon-based plant secondary metabolites in decomposition in terrestrial ecosystems. Am. Nat. 6: 869-883

    Google Scholar 

  • Hungerford R (1980) Microenvironmental response to harvesting and residue management. In: Environmental Consequences of Timber Harvesting in Rocky Mountain Coniferous Forests. USDA For. Ser. Gen. Tech. Rep. INT-90 (pp 37-74). Ogden, UT

  • Ineson P & McTiernan K (1992) Decomposition of foliar litter mixtures: A microcosm experiment. In: Teller A, Mathy P & Jeffers JNR (Eds) Responses of Forest Ecosystems to Environmental Changes (pp 703-706). Elsevier, London

    Google Scholar 

  • Kellman M (1984) Synergistic relationships between fire and low soil fertility in Neotropical savannas: A hypothesis. Biotropica 16: 158-160

    Google Scholar 

  • Kienzler M, Alban DH & Perala DA (1986) Soil Invertebrate and Microbial Populations under 3 Tree Species on the Same Soil Type. USDA For. Ser. Res. Note NC-337, St. Paul, Minnesota

    Google Scholar 

  • Loehle C (1988) Tree life history strategies: The role of defenses. Can. J. For. Res. 18: 209-222

    Google Scholar 

  • Lovett G (1992) Atmospheric deposition and canopy interactions of nitrogen. In: Johnson D & Lindberg S (Eds) Atmospheric Deposition and Forest Nutrient Cycling (pp 152-165). Springer-Verlag, New York

    Google Scholar 

  • MacDicken KG (1994) Selection and Management of Nitrogen-Fixing Trees. Winrock International Institute for Agricultural Development, Morrilton, Arkansas, USA and UNFAO, Bangkok, Thailand

    Google Scholar 

  • Mutch R (1970) Wildland fires and ecosystems: A hypothesis. Ecology 41: 1046-1051

    Google Scholar 

  • Nadelhoffer K, Aber JD & Melillo JM (1983) Leaf-litter production and soil organic matter dynamics along a nitrogen-availability gradient in Southern Wisconsin (U.S.A.). Can. J. For. Res. 13: 12-21

    Google Scholar 

  • Nihlgård B (1971) Pedological influences of spruce planted on former beech forest soils in Scania, South Sweden. Oikos 22: 302-314

    Google Scholar 

  • Paré D & Bernier B (1989a) Origin of phosphorus deficiency observed in declining sugar maple stands in the Quebec Appalachians. Can. J. For. Res. 19: 24-34

    Google Scholar 

  • Paré D & Bernier B (1989b) Phosphorus-fixing potential of Ah and H horizons subjected to acidification. Can. J. For. Res. 19: 132-134

    Google Scholar 

  • Pastor J & Broschart M (1990) The spatial pattern of a northern conifer-hardwood landscape. Landscape Ecol. 4: 55-68

    Google Scholar 

  • Pastor J & Post WM (1986) Influence of climate, soil moisture, and succession on forest soil carbon and nutrient cycles. Biogeochemistry 2: 3-27

    Google Scholar 

  • Pastor J, Aber JD, McClaugherty CA & Melillo JM (1984) Aboveground production and N and P cycling along a nitrogen mineralization gradient on Blackhawk Island, Wisconsin. Ecology 65: 256-268

    Google Scholar 

  • Perala D & Alban D (1982) Biomass, nutrient distribution and litterfall in Populus, Pinusand Piceastands on two different soils in Minnesota. Plant Soil 64: 177-192

    Google Scholar 

  • Ranger J & Nys C (1992) Effects of spruce plantation (Picea abiesKarst.) On the soil function of a previous broad-leaved ecosystem: Analytical and experimental investigations. In: Teller A, Mathy P & Jeffers JNR (Eds) Responses of Forest Ecosystems to Environmental Changes (pp 784-785). Elsevier, London

    Google Scholar 

  • Richter DD, Markewitz D, Wells CG, Allen HL, April R, Heine PR & Urrego B (1994) Soil chemical changes during three decades in an old-field loblolly pine (Pinus taedaL.) ecosystem. Ecology 75: 1463-1473

    Google Scholar 

  • Riha S, James B, Senesac G & Pallent E (1986) Spatial variability of soil pH and organic matter in forest plantations. Soil Sci. Soc. Am. J. 50: 1347-1352

    Google Scholar 

  • Rhoades C (1997) Single-tree influence on soil properties in agroforestry systems: Lessons from natural and savanna ecosystems. Agrofor. Syst. 35: 71-94

    Google Scholar 

  • Rosenthal GA & Janzen DH (Eds) (1979) Herbivores: Their Interaction with Secondary Plant Metabolites. Academic Press, New York

    Google Scholar 

  • Schaetzel RJ (1986) Complete soil profile inversion by tree uprooting. Phys. Geogr. 7: 181-188

    Google Scholar 

  • Schlesinger W, Reynolds J, Cunningham G, Huenneke L, Jarrel W, Virginia R & Whitford W (1990) Biological feedbacks in global desertification. Science 247: 1043-1047

    Google Scholar 

  • Scott N & Binkley D (1997) Litter quality and annual net N mineralization: comparisons across sites and species. Oecologia 111: 151-159

    Google Scholar 

  • Son Y & Im-Kyun L (1997) Soil nitrogen mineralization in adjacent stands of larch, pine, and oak in central Korea. Ann. Sci. For. (in press)

  • Stone EL (1975) Windthrow influences on spatial heterogeneity in a forest soil. Mitt. Eidg. Anst. Forstl. Versw. 51: 77-87

    Google Scholar 

  • Stuanes A, Van Miegroet H, Cole DW & Abrahamson G (1992) Recovery from acidification. In: Johnson D & Lindberg S (Eds) Atmospheric Deposition and Forest Nutrient Cycling (pp 467-494). Springer-Verlag, New York

    Google Scholar 

  • Tilman D (1988) Plant Strategies and the Dynamics and Structure of plant Communities. Princeton University Press, Princeton

    Google Scholar 

  • Tuomi J (1992) Toward integration of plant defence theories. Trends Ecol. Evol. 7: 365-367

    Google Scholar 

  • Ulrich B (1983) Interaction of forest canopies with atmospheric constituents. In: Ulrich B & Pankrath J (Eds) Effects of Accumulation of Air Pollutants in Forest Ecosystems (pp 33-45). D Reidel, Boston

    Google Scholar 

  • Van Breemen N (1995) Nutrient cycling strategies. Plant Soil 168–169: 321-326

    Google Scholar 

  • Van Breemen N (1993) Soils as biotic constructs favouring net primary production. Geoderma 57: 183-211

    Google Scholar 

  • Walker LR, Zasada JC & Chapin III FS (1986) The role of life history processes in primary succession on an Alaskan floodplain. Ecology 67: 1243-1253

    Google Scholar 

  • Wedin DA (1995) Species, nitrogen, and grassland dynamics: The constraints of stuff. In: Jones CG & Lawton JH (Eds) Linking Species and Ecosystems (pp 253-262). Chapman and Hall, New York

    Google Scholar 

  • Zinke P (1962) The pattern of influence of individual forest trees on soil properties. Ecology 43: 130-133

    Google Scholar 

  • Zou X (1993) Species effects on earthworm density in tropical tree plantations in Hawaii. Biol. Fertil. Soils 15: 35-38

    Google Scholar 

  • Zou X, Binkley D & Caldwell B (1995) Effects of dinitrogen-fixing trees on phosphorus biogeochemical cycling in contrasting forests. Soil Sci. Soc. Am. J. 59: 1452-1458

    Google Scholar 

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Binkley, D., Giardina, C. Why do Tree Species Affect Soils? The Warp and Woof of Tree-soil Interactions. Biogeochemistry 42, 89–106 (1998). https://doi.org/10.1023/A:1005948126251

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