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Mycorrhizae and forest ecosystems

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Summary

Mycorrhizae play an important role in regulating patterns of energy and nutrient flux in terrestrial ecosystems. To conceptualize this role I develop the theory behind a simple index of the efficiency of soil resource acquisition by plant root systems (E). The morphological, physiological and demographic characteristics of mycorrhizae that define E appear to vary with environment and with plant community composition. This theory is elaborated with examples drawn from forest ecology literature. Some inconsistencies among observations of fine root dynamics are particularly revealing: (1) belowground carbon allocation vs soil fertility; (2) causes of root mortality; (3) root longevity vs decomposition rates. A comprehensive theory of mycorrhizal and ecosystem dynamics must await resolution of these inconsistencies and better quantitative information on mycorrhizal features affecting E.

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References

  • Aber JD, Melillo JM, Nadelhoffer KJ, McClaughery CA, Pastor J (1985) Fine root turnover in forest ecosystems in relation to quality and form of nitrogen availability: a comparison of two methods. Oecologia 66:317–321

    Google Scholar 

  • Alexander IJ (1983) The significance of ectomycorrhizas in the nitrogen cycle. In: Lee JA, McNeil S, Rorison IH (eds) Nitrogen as an ecological factor. Blackwell, Oxford, pp 69–93

    Google Scholar 

  • Ausmus BS, Ferris JM, Reichle DE, Williams EC (1977) The role of belowground herbivores in mesic forest root dynamics. Pedobiologia 18:289–295

    Google Scholar 

  • Bowling DJF (1976) Uptake of ions by plant roots. Chapman & Hall, London

    Google Scholar 

  • Caldwell MM (1979) Root structure: the considerable cost of below-ground function. In: Solbrig OT, Jain S, Johnson GB, Raven PH (eds) Topics in plant population biology. Columbia University Press, New York, pp 408–427

    Google Scholar 

  • Chapin FS III (1980) The mineral nutrition of wild plants. Annu Rev Ecol Syst 13:229–259

    Google Scholar 

  • Chung HH, Kramer PJ (1975) Absorption of water and 32P through suberized and unsuberized roots of loblolly pine. Can J For Res 5:229–235

    Google Scholar 

  • Crick JC, Grime JP (1987) Morphological plasticity and mineral nutrient capture in two herbaceous species of contrasted ecology. New Phytol 107:403–414

    Google Scholar 

  • Dighton J, Harrison AF (1983) Phosphorus nutrition of lodgepole pine and sitka spruce stands as indicated by a root bioassay. Forestry 56:33–43

    Google Scholar 

  • Drew MC (1975) Comparison of the effects of a localized supply of phosphate, nitrate, ammonium and potassium on the growth of the seminal root system, and the shoot, in barley. New Phytol 75:479–490

    Google Scholar 

  • Fahey TJ, Yavitt JB, Knight DH, Pearson JA (1985) The nitrogen cycle in lodgepole pine ecosystems, southeastern Wyoming, USA. Biogeochemistry 1:257–275

    Google Scholar 

  • Fahey TJ, Hughes JW, Mou P, Arthur MA (1988) Root decomposition and nutrient flux following whole-tree harvest of a northern hardwood forest. For Sci 34:744–768

    Google Scholar 

  • Finlay RD (1985) Interactions between soil micro-arthropods and endomycorrhizal associations of higher plants. In: Fitter AH, Atkinson D, Read DJ, Usher MB (eds) Ecological interactions in soil. Blackwell, Oxford, pp 319–332

    Google Scholar 

  • Fitter AH (1989) The role and ecological significance of vesiculararbuscular mycorrhizas in temperate ecosystems. Agric Ecosyst Environ 29:137–151

    Google Scholar 

  • Ford ED, Deans JD (1977) Growth of sitka spruce plantation: spatial distribution and seasonal fluctuations of length, weights and carbohydrate concentrations of fine roots. Plant Soil 47:463–485

    Google Scholar 

  • Gerdemann JW (1974) Mycorrhizae. In: Carlson EW (ed) The plant root and its environment. University Press of Virginia, Charlottesville, pp 205–217

    Google Scholar 

  • Gower ST, Vogt KA, Grier CC (1992) Above- and belowground carbon dynamics of Rocky Mountain Douglas-fir: influence of water and nutrient availability. Ecol Monogr (in press)

  • Grier CC, Lee KM, Archibald RM (1985) Effects of urea fertilization on allometric relations in young Douglas fir trees. Can J For Res 15:900–904

    Google Scholar 

  • Grime JP (1977) Evidence for the existence of three primary strategies in plants and its relevance to ecological and evolutionary theory. Am Nat 111:1169–1194

    Google Scholar 

  • Harley JL (1937) Ecological observations on the mycorrhiza of beech (preliminary note). J Ecol 25:421–423

    Google Scholar 

  • Harley JL, Smith SE (1983) Mycorrhizal symbiosis. Academic Press, London

    Google Scholar 

  • Heal OW, Dighton J (1985) Resource quality and trophic structure in the soil system. In: Fitter AH, Atkinson D, Read DJ, Usher MB (eds) Ecological interactions in soil. Blackwell, Oxford, pp 339–354

    Google Scholar 

  • Hogberg P (1986) Soil nutrient availability, root symbiosis and tree species composition in tropical Africa: a review. J Trop Ecol 2:359–372

    Google Scholar 

  • Jackson RB, Manwaring JH, Caldwell MM (1990) Rapid physiological adjustment of roots to localized soil enrichment. Nature 344:58–60

    Google Scholar 

  • Keyes MR, Grier CC (1981) Above- and belowground net productivity in 40-year-old Douglas-fir on low and high productivity sites. Can J For Res 11:599–605

    Google Scholar 

  • Lindeberg G (1948) On the occurrence of polyphenol oxidases in soil-inhabiting Basidiomycetes. Physiol Plant 1:196–205

    Google Scholar 

  • McClaugherty CA, Aber JD, Melillo JM (1984) Decomposition dynamics of fine roots in forested ecosystems. Oikos 42:378–386

    Google Scholar 

  • McKay H, Coutts MP (1989) Limitations placed on forestry production by the root system. Aspects Appl Biol 22:245–254

    Google Scholar 

  • Miller RM, Jastrow JD (1990) Hierarchy of root and mycorrhizal fungal interactions with soil aggregation. Soil Biol Biochem 22:579–584

    Google Scholar 

  • Mooney HA, Gulman SL (1982) Constraints on leaf structure and function in reference to herbivory. BioScience 32:198–206

    Google Scholar 

  • Mosse B, Stribley DP, LeTacon F (1981) Ecology of mycorrhizae and mycorrhizal fungi. In: Alexander M (ed) Advances in microbial ecology. Plenum Press, New York, pp 137–210

    Google Scholar 

  • Nadelhoffer KJ, Aber JD, Melillo JM (1985) Fine roots, net primary production, and soil nitrogen availability: a new hypothesis. Ecology 66:1377–1390

    Google Scholar 

  • Nambiar EKS (1987) Do nutrients retranslocate from fine roots? Can J For Res 17:913–918

    Google Scholar 

  • Nantel P, Neumann P (1992) Ecology of ectomycorrhizal basidiomycete communities in a local vegetation gradient. Ecology (in press)

  • Newman EI (1985) The rhizosphere: carbon sources and microbial populations. In: Fitter AH, Atkinson D, Read DJ, Usher MB (eds) Ecological interactions in soil. Blackwell, Oxford, pp 107–122

    Google Scholar 

  • Nye PH, Tinker PB (1977) Solute movement in the soil-root system. University of California Press, Berkeley

    Google Scholar 

  • Orians GH, Solbrig OT (1977) A cost-income model of leaves and roots with special reference to arid and semi-arid areas. Am Nat 111:677–690

    Google Scholar 

  • Orlov AJ (1968) Development and life duration of pine feeding roots. In: Ghilarov MS, et al (eds) Methods of productivity studies in root systems and rhizosphere organisms. Publishing House, USSR Acad Sci, NAUKA, Leningrad, pp 130–140

    Google Scholar 

  • Perry DA, Amaranthus MP, Borchers JG, Borchers SL, Brainerd RE (1989) Bootstrapping in ecosystems. Bioscience 39:230–237

    Google Scholar 

  • Redfield A (1958) The biological control of chemical factors in the environment. Am Sci 46:205–221

    Google Scholar 

  • Robinson D (1986) Compensatory changes in the partitioning of dry matter in relation to nitrogen uptake and optimal variations in growth. Ann Bot 58:841–848

    Google Scholar 

  • Safford LO (1974) Effect of fertilization on biomass and nutrient content of fine roots in a beech-birch-maple stand. Plant Soil 40:349–363

    Google Scholar 

  • Sanantonio D, Grace JC (1987) Estimating fine root production and turnover from biomass and decomposition data: a compartment flow model. Can J For Res 17:900–908

    Google Scholar 

  • Sibly RM, Grime JP (1986) Strategies of resource capture by plants — evidence for adversity selection. J Theor Biol 119:247–250

    Google Scholar 

  • St John TV, Coleman DC, Reid CPP (1983) Growth and spatial distribution of nutrient absorbing organs: selective exploitation of soil heterogeneity. Plant Soil 71:487–493

    Google Scholar 

  • Sutton RF (1969) Form and development of conifer root systems. (Comm For Bur, Tech Commun, no 7) Alden Press, Oxford

    Google Scholar 

  • Thompson LM, Troeh FR (1978) Soils and soil fertility. McGrawHill, New York

    Google Scholar 

  • Thornley JHM (1972) A balanced quantitative model for root:shoot ratios in vegetative plants. Ann Bot 36:431–441

    PubMed  Google Scholar 

  • Toumey JW (1929) Initial root habit in American trees and its bearing on regeneration. Int Congr Plant Sci Proc 1:713–729

    Google Scholar 

  • Trappe JM, Fogel R (1977) Ecosystematic functions of mycorrhizae. In: Marshall JK (ed) The belowground ecosystem: a synthesis of plant-associated processes. (Range Science Department Science Series, no 26) Colorado State University, Ft Collins, pp 205–214

    Google Scholar 

  • Trojanowski J, Haider K, Hutterman A (1984) Decomposition of 14C-labelled lignin, holocellulose and lignocellulose by mycorrhizal fungi. Arch Microbiol 139:202–206

    Google Scholar 

  • Vitousek PM, Fahey TJ, Johnson DW, Swift M (1987) Interactions of carbon, nitrogen, phosphorus and sulfur in forest ecosystems. Biogeochemistry 3:465–490

    Google Scholar 

  • Vogt KA, Grier CC, Vogt DJ (1986) Production, turnover and nutrient dynamics of above- and belowground detritus of world forests. Adv Ecol Res 15:303–377

    Google Scholar 

  • Waksman SA (1932) Principles of soil microbiology, 2nd edn. Williams & Wilkins, Baltimore

    Google Scholar 

  • Wareing PF, Patrick J (1975) Source-sink relations and the partition of assimilates in the plant. In: Cooper JP (ed) Photosynthesis and productivity in different environments. Cambridge University Press, Cambridge, UK, pp 481–500

    Google Scholar 

  • Werf A van der, Kooijman A, Welschen R, Lambers H (1988) Respiratory energy costs for the maintenance of biomass, for growth and for ion uptake in roots of Carex diandra and Carex acutiformis. Physiol Plant 72:483–491

    Google Scholar 

  • Zak B (1973) Classification of ectomycorrhizae. In: Marks GC, Kozlowski TT (eds) Ectomycorrhizae. Academic Press, New York, pp 43–78

    Google Scholar 

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Fahey, T.J. Mycorrhizae and forest ecosystems. Mycorrhiza 1, 83–89 (1992). https://doi.org/10.1007/BF00206141

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