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Intraspecific variation in the resistance to flooding and drought in populations of Paspalum dilatatum from different topographic positions

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Abstract

Many studies have analysed plant responses to flooding or drought separately, without addressing the relations between plant resistance to each of these factors. In this paper, we compare the responses to drought and flooding under glasshouse conditions of three populations of Paspalum dilatatum, a perennial C4 grass dominant at different positions along a topographic gradient in the flooding pampa of Argentina. Our results showed that flooding effects on yield were negative on an upland, null on an intermediate, and positive on a lowland population, whereas drought reduced yield equally across populations, showing that resistance to flooding was not related to resistance to drought at a population level. Drought decreased height and aerenchyma, and increased the proportion of roots, while flooding had opposite effects on these traits. The responses of the single clones that made up each population showed a positive relation between the resistances to both factors: along the ecocline formed by 58 clones, those more resistant to drought were also more resistant to flooding. In addition, the combined resistance of each clone to both factors was negatively related to yield at field capacity, (i.e. the most resistant clones were less productive) and unrelated to the proportion of roots and aerenchyma. This result agrees with predictions of Grime's plant strategy theory and differs from a few previous studies, which showed negative relations between the resistances to flooding and drought among genera and species.

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References

  • Baruch Z (1994) Responses to drought and flooding in tropical forage grasses. 1. Biomass allocation, leaf growth and mineral nutrients. Plant Soil 164:87–96

    Google Scholar 

  • Bertness MD, Wikler K, Chatkupt T (1992) Flood tolerance and the distribution of Iva frutescens across New England salt marshes. Oecologia 91:171–178

    Google Scholar 

  • Blom CWPM, Boegemann GM, Laan P, Sman AJM van der, Steeg HM van der, Voesenek LACJ (1990) Adaptations to flooding in plants from river areas. Aquat Bot 38:29–47

    Google Scholar 

  • Bradshaw AD (1965) Evolutionary significance of phenotypic plasticity in plants. Adv Genet 13:115–155

    Google Scholar 

  • Burkart SE, León RJC, Movia CP (1990) Inventario fitosociológico del pastizal de la Depresión del Salado (Prov. Bs. As.) en un área representativa de sus principales ambientes. Darwiniana 30:27–69

    Google Scholar 

  • Chaneton EJ (1995) Vegetation heterogeneity at different spatial scales: the influence of habitat conditions and grazing in a Flooding Pampa grassland. Msc. Thesis, University of Buenos Aires, Buenos Aires

  • Chapin FS, Bloom AJ, Field CB, Waring RH (1987) Plant responses to multiple environmental factors. Bioscience 37: 49–57

    Google Scholar 

  • Coley PD, Bryant JP, Chapin FS (1985) Resource availability and plant antiherbivore defense. Science 230:895–899

    Google Scholar 

  • Coughenour MB (1985) Graminoid responses to grazing by large herbivores: adaptations, exaptations, and interacting processes. Ann Mo Bot Gard 72:852–863

    Google Scholar 

  • Davies LJ, Cohen D (1992) Phenotypic variation in somaclones of Paspalum dilatatum and their seedling offspring. Can J Plant Sci 72:773–784

    Google Scholar 

  • Davy AJ, Noble SM, Oliver RP (1990) Genetic variation and adaptation to flooding in plants. Aquat Bot 38:91–108

    Google Scholar 

  • Ehleringer JR (1988) Comparative ecophysiology of Encelia farinosa and Encelia frutescens I. Energy balance considerations. Oecologia 76:553–561

    Google Scholar 

  • Grime JP (1979) Plant strategies and vegetation processes. Wiley, Chichester

    Google Scholar 

  • Heathcote CA, Davies MS, Etherington JR (1987) Phenotipic flexibility of Carex flacca. Tolerance of soil flooding by populations from contrasting habitats. New Phytol 105:381–391

    Google Scholar 

  • Hillel D (1971) Soil and water: physical principles and processes. Academic Press, New York

    Google Scholar 

  • Hurlbert SH (1984) Pseudoreplication and the design of ecological field experiments. Ecol Monogr 54:187–211

    Google Scholar 

  • Jackson MB, Drew MC (1984) Effects of flooding on growth and metabolism of herbaceous plants. In: Kozlowski TT (ed) Flooding and plant growth. Academic Press, Orlando

    Google Scholar 

  • Justin SHF, Armstrong W (1987) The anatomical characteristics of roots and plant response to soil flooding. New Phytol 106: 465–495

    Google Scholar 

  • Knapp AK, Fahnestock JT, Hamburg SP, Statland LB, Schimel DS (1993) Landscape patterns in soil-plant water relations and primary production in tallgrass prairie. Ecology 74:549–560

    Google Scholar 

  • Kozlowski TT (1984) Plant responses to flooding of soil. Bioscience 34:162–167

    Google Scholar 

  • Laan P, Blom CWPM (1990) Growth and survival responses of Rumex species to flooded and submerged conditions: The importance of shoot elongation, underwater photosynthesis and reserve carbohydrates. J Exp Bot 228:775–783

    Google Scholar 

  • Loreti J, Oesterheld M, León RJC (1994) Efectos de la interacción del pastoreo y la inundación sobre Paspalum dilatatum, un pasto nativo de la Pampa Deprimida. Ecol Aust 4:49–58

    Google Scholar 

  • McNaughton SJ (1983) Serengeti grassland ecology: the role of composite environmental factors and contingency in community organization. Ecol Monogr 53:291–320

    Google Scholar 

  • Medina E, Motta N (1990) Metabolism and distribution of grasses in tropical flooded savannas in Venezuela. J Trop Ecol 6:77–89

    Google Scholar 

  • Milchunas DG, Sala OE, Lauenroth WK (1988) A generalized model of the effects of grazing by large herbivores on grassland community structure. Am Nat 132:87–106

    Google Scholar 

  • Naidoo G, Naidoo S (1992) Waterlogging responses of Sporobolus virginicus (L.) Kunth. Oecologia 90:445–450

    Google Scholar 

  • Oesterheld M, McNaughton SJ (1991) Interactive effect of flooding and grazing on the growth of Serengeti grasses. Oecologia 88:153–157

    Google Scholar 

  • Pezeshki SR (1994) Plant response to flooding. In: Wilkinson RE (ed) Plant-environment interactions. Marcel Dekker, New York, pp 289–321

    Google Scholar 

  • Potvin MA (1993) Establishment of native grass seedlings along a topographic/moisture gradient in the Nebraska Sandhills. Am Midl Nat 130:248–261

    Google Scholar 

  • Prairie YT, Bird DF (1989) Some misconceptions about the spurious correlation problem in the ecological literature. Oecologia 81:285–288

    Google Scholar 

  • Pugnaire FI, Endolz LS, Pardos J (1993) Constraints by water stress on plant growth. In: Pessarakli M (ed). Handbook of plant and crop stress. Marcel Dekker, New York, pp 247–259

    Google Scholar 

  • Rubio G, Casasola G, Lavado RS (1995) Adaptations and biomass production of two grasses in response to waterlogging and soil nutrient enrichment. Oecologia 102:103–105

    Google Scholar 

  • Sojka RE (1988) Measurement of root porosity (volume of root air space). Environ Exp Bot 28:275–280

    Google Scholar 

  • Soriano A (1982) La adaptación de las plantas a la sequía. Anal Acad Nac Cs Ex Fís Nat 34:95–109

    Google Scholar 

  • Stearns SC (1992) The evolution of life histories. Oxford University Press, New York

    Google Scholar 

  • Steege H ter (1994) Flooding and drought tolerance in seeds and seedlings of two Mora species segregated along a soil hydrological gradient in the tropical rain forest of Guyana. Oecologia 100:356–367

    Google Scholar 

  • Sultan SE, Bazzaz FA (1993) Phenotypic plasticity in Polygonum persicaria. 2. Norms of reaction to soil moisture and the maintenance of genetic diversity. Evolution 47:1032–1049

    Google Scholar 

  • Tilman D (1988) Plant strategies and the dynamics and structure of plant communities. Princeton University Press, Princeton

    Google Scholar 

  • Turner IM (1994) Sclerophylly: primarily protective? Funct Ecol 8:669–675

    Google Scholar 

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Loreti, J., Oesterheld, M. Intraspecific variation in the resistance to flooding and drought in populations of Paspalum dilatatum from different topographic positions. Oecologia 108, 279–284 (1996). https://doi.org/10.1007/BF00334652

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  • DOI: https://doi.org/10.1007/BF00334652

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