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Growth form distribution and genetic relationships in tree clusters of Pinus flexilis, a bird-dispersed pine

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Abstract

Seed dispersal by the Clark's nutcracker (Nucifraga columbiana Wilson) may markedly influence the growth form and genetic population structure of limber pine (Pinus flexilis James). The nutcracker buries clusters of seeds in subterranean caches; germination of clustered seeds often results in a growth form characterized by two or more genetically distinct trees with fused or contiguous trunks (tree clusters). The occurrence of a morphologically similar form, the multi-trunk tree (a single genet branched near the base), as well as the typical single-trunked tree, complicates the study of limber pine populations. We examined growth form distribution and genetic relationships in tree clusters in limber pine populations at four elevations (from 2585 m to 3460 m) in the Colorado Front Range. At three study areas, relative occurrence of limber pine growth forms, as well as that of associated pines, was examined by a point-centered quarter survey. From the four study areas, we collected foliage from each trunk from a total of 74 “clumps” (combined tree clusters and multi-trunk trees) in order to differentiate the two growth forms using starch gel protein electrophoresis. Tree “clumps” were significantly more common in limber pine than in ponderosa or lodgepole pine (P<0.010). Although single-trunk limber pine was the most common growth form, except at the highest elevation, both multi-trunk trees and tree clusters were present in each stand. Tree clusters were estimated to comprise about 20% of the tree sites in each limber pine stand; the estimated proportion of multi-trunk trees varied by site from 5% to 77%. Trees in clusters were related, on average, as half to full siblings (mean r=0.43), but were unrelated to trees in other clusters (mean r=0.01). Electrophoretic analysis suggests possible genetic differentiation in limber pine that may be the result of different selection pressures on the growth forms.

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References

  • Ayala FJ (1982) Population and evolutionary genetics. Cummings, Menlo Park, California

    Google Scholar 

  • Balda RP (1980) Are caching systems coevolved? In: Proceedings of the XVII Congressus Internationalis Ornithologici, Berlin, pp 1185–1191

  • Bishop YMM, Fienberg SF, Holland PW (1989) Discrete multivariate analysis, theory and practice. MIT Press, Cambridge, Mass

    Google Scholar 

  • Brower JE, Zar JH (1984) Methods for general ecology, 2nd edn. Brown, Dubuque, Iowa

    Google Scholar 

  • Critchfield WB, Little EL Jr (1966) Geographic distribution of the pines of the world. USDA For Serv Misc Publ 991

  • Feldman R (1991) Growth form and reproductive output in limber pine: the cost of mutualism. Master's Thesis, University of Colorado, Denver

  • Furnier GR, Knowles P, Clude MA, Dancik BP (1987) Effects of avian seed dispersal on the genetic structure of whitebark pine populations. Evolution 41:607–612

    Google Scholar 

  • Hanrick JL, Godt MJW (1990) Allozyme diversity in plant species. In: Brown AHD, Clegg MT, Kahler AL, Weir BS (eds) Plant population genetics, breeding, and genetic resources. Sinauer, Sunderland, Mass

    Google Scholar 

  • Herrera-Cody ML (ed) (1985) Habitat-consumer interactions in frugivorous birds. In: Habitat selection in birds. Academic Press, New York

    Google Scholar 

  • Howe HF, Smallwood J (1982) Ecology of seed dispersal. Annu Rev Ecol system 13:201–228

    Google Scholar 

  • Hutchins HE, Lanner RM (1982) The central role of Clark's nutcracker in the dispersal and establishment of whitebark pine. Oecologia 55:192–201

    Google Scholar 

  • King JN, Dancik BP (1983) Inheritance and linkage of isozymes in white spruce (Picea glauca). Can J Genet Cytol 25:430–436

    Google Scholar 

  • Knowles P (1984) Genetic variability among and within closely spaced populations of lodgepole pine. Can J Genet Cytol 26:177–184

    Google Scholar 

  • Lanner RM (1980) Avian seed dispersal as a factor in the ecology and evolution of limber and whitebark pines. In: Sixth North American Forest Biology Workshop, University of Alberta, Edmonton, Alberta, pp 15–48

  • Linhart YB (1989) Interactions between genetic and ecological patchiness in forest trees and their dependent species. In: Bock JE, Linhart YB (eds) Evolutionary ecology of plants. Westview Press, Boulder, Colo, pp 1–31

    Google Scholar 

  • Linhart YB, Tomback DF (1985) Seed dispersal by nutcrackers causes multi-trunk growth form in pines. Oecologia 67:107–110

    Google Scholar 

  • Linhart YB, Mitton JB, Sturgeon KB, Davis ML (1981) Genetic variation in space and time in a population of ponderosa pine. Heredity 46:402–426

    Google Scholar 

  • Marr JW (1961) Ecosystems of the east slope of the Front Range in Colorado. (University of Colorado studies, no 8) University of Colorado Press, Boulder, Colo

    Google Scholar 

  • McCaughey WW, Schmidt WC, Shearer RC (1986) Seed-dispersal characteristics of conifers in the Inland Mountain West. In: Shearer RC (compiler) Proceedings — Conifer tree seed in the Inland Mountain West symposium. USDA For Serv Intermountain Research station, Ogden, Utah, INT 203:50–62

    Google Scholar 

  • Mitton JB, Linhart YB, Sturgeon KB, Hamrick JL (1979) Allozyme polymorphisms detected in mature needle tissue of ponderosa pine. J Hered 70:86–89

    Google Scholar 

  • Mueller-Dombois D, Ellenberg H (1974) Aims and methods of vegetation ecology. Wiley, New York

    Google Scholar 

  • Mutel CF (1976) From grassland to glacier. Johnson, Boulder, Colo

    Google Scholar 

  • Poulik MD (1957) Starch gel electrophoresis in a discontinuous system of buffers. Nature 180:1477–1479

    Google Scholar 

  • Queller DC, Goodnight KF (1989) Estimating relatedness using genetic markers. Evolution 43:258–275

    Google Scholar 

  • Renner S (1987) Seed dispersal. In: Behnke HD, Esser K, Kubitzki K, Runge M, Ziegler H (eds) Progress in botany, vol 49. Springer, Berlin Heidelberg New York, pp 413–432

    Google Scholar 

  • Schuster W, Mitton JB (1991) Relatedness within clusters of a bird-dispersed pine and the potential for kin interactions. Heredity 67:41–48

    Google Scholar 

  • Schuster WSF, Alles DL, Mitton JB (1989) Gene flow in limber pine: evidence from pollination phenology and genetic differentiation along an elevational transect. Am J Bot 76:1395–1403

    Google Scholar 

  • Selander RK, Smith MH, Yang SY, Gentry JB (1971) Biochemical systematics in the genus Peromyscus. I. Variation in the old-field mouse. Stud Genet VI. Univ Texas Publ 7103:49–90

    Google Scholar 

  • Shaw CR, Prasad R (1970) Starch gel electrophoresis of enzymes—a compilation of recipes. Biochem Genet 4:297–320

    Google Scholar 

  • Sokal RR, Rohlf FJ (1969) Biometry. Freeman, New York

    Google Scholar 

  • Tomback DF (1978) Foraging strategies of Clark's nutcracker. Living Bird 16:123–161

    Google Scholar 

  • Tomback DF (1982) Dispersal of whitebark pine seeds by Clark's nutcracker: a mutualism hypothesis. J Anim Ecol 51:451–467

    Google Scholar 

  • Tomback DF (1988) Nutcracker-pine mutualisms: multi-trunk trees and seed size. In: Ouellet H (ed) Acta XIX Congressus Internationalis Ornithologici, vol 1. University of Ottawa Press, Ottawa, pp 518–527

    Google Scholar 

  • Tomback DF, Linhart YB (1990) The evolution of bird-dispersed pines. Evol Ecol 4:185–219

    Google Scholar 

  • Tomback DF, Hoffmann LA, Sund SK (1990) Coevolution of whitebark pine and nutcrackers: implications for forest regencration. In: Schmidt WC, McDonald KJ (compiler) Proceedings — Symposium on whithebark pine ecosystems: Ecology and management of a high-mountain resource. USDA For Serv Intermountain Research Station, Ogden, Utah; INT 270:118–129

    Google Scholar 

  • Tomback DE, Holtmeier F-K, Mattes H, Carsey KS, Powell ML (1993) Trec clusters and growth form distribution in Pinus cembra, a bird-dispersed pine. Arct Alp Res 25:374–381

    Google Scholar 

  • Vander Wall SB, Balda RP (1977) Coadaptations of Clark's nutcracker and the piñon pine for efficient seed harvest and dispersal. Ecol Monogr 47:89–111

    Google Scholar 

  • Weaver T, Jacobs J (1990) Occurrence of multiple stems in white-bark pine. INT 270:156–159

    Google Scholar 

  • Webb ED (ed) (1984) Enzyme nomenclature. Recommendations of the (1984) Nomenclature Committee of the International Union of Biochemistry. Academic Press, New York

    Google Scholar 

  • Woodmansee RG (1977) Clusters of limber pine trees: a hypothesis of plant-animal coaction. Southwest Nat 21:511–517

    Google Scholar 

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Carsey, K.S., Tomback, D.F. Growth form distribution and genetic relationships in tree clusters of Pinus flexilis, a bird-dispersed pine. Oecologia 98, 402–411 (1994). https://doi.org/10.1007/BF00324230

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