Artículo

Estamos trabajando para incorporar este artículo al repositorio
Consulte el artículo en la página del editor
Consulte la política de Acceso Abierto del editor

Abstract:

Changes in the environmental conditions experienced by naturally occurring populations are frequently accompanied by changes in adaptive traits allowing the organism to cope with environmental unpredictability. Phenotypic plasticity is a major aspect of adaptation and it has been involved in population dynamics of interacting species. In this study, phenotypic plasticity (i.e., environmental sensitivity) of morphological adaptive traits were analyzed in the cactophilic species Drosophila buzzatii and Drosophila koepferae (Diptera: Drosophilidae) considering the effect of crowding conditions (low and high density), type of competition (intraspecific and interspecific competition) and cacti hosts (Opuntia and Columnar cacti). All traits (wing length, wing width, thorax length, wing loading and wing aspect) showed significant variation for each environmental factor considered in both Drosophila species. The phenotypic plasticity pattern observed for each trait was different within and between these cactophilic Drosophila species depending on the environmental factor analyzed suggesting that body size-related traits respond almost independently to environmental heterogeneity. The effects of ecological factors analyzed in this study are discussed in order to elucidate the causal factors investigated (type of competition, crowding conditions and alternative host) affecting the election of the breeding site and/or the range of distribution of these cactophilic species. © 2016 Institute of Zoology, Chinese Academy of Sciences

Registro:

Documento: Artículo
Título:Phenotypic plasticity in Drosophila cactophilic species: the effect of competition, density, and breeding sites
Autor:Fanara, J.J.; Werenkraut, V.
Filiación:Departamento de Ecologia, Genetica y Evolucion, Instituto de Ecologia Genetica y Evolucion de Buenos Aires (CONICET-UBA), Facultad de Ciencias Exactas y Naturales, Ciudad Universitaria, Pabellon II, Universidad de Buenos Aires, Buenos Aires, Argentina
Laboratorio Ecotono, Centro Regional Universitario Bariloche, Universidad Nacional del Comahue/INIBIOMA-CONICET, Quintral 1250, Bariloche, Rio Negro, Argentina
Palabras clave:adaptation; body size; colonization; Drosophila cactophilic species; wing aspect; wing loading; adaptation; anatomy and histology; animal; body size; Cactaceae; comparative study; competitive behavior; Drosophila; ecosystem; female; growth, development and aging; larva; male; phenotype; population density; wing; Adaptation, Biological; Animals; Body Size; Cactaceae; Competitive Behavior; Drosophila; Ecosystem; Female; Larva; Male; Phenotype; Population Density; Wings, Animal
Año:2017
Volumen:24
Número:4
Página de inicio:675
Página de fin:683
DOI: http://dx.doi.org/10.1111/1744-7917.12345
Título revista:Insect Science
Título revista abreviado:Insect Sci.
ISSN:16729609
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_16729609_v24_n4_p675_Fanara

Referencias:

  • Arribas, P., Velasco, J., Abellán, P., Sánchez-Fernández, D., Andújar, C., Calosi, P., Millan, A., Bilton, D.T., Dispersal ability rather than ecological tolerance drives differences in range size between lentic and lotic water beetles (Coleoptera: Hydrophilidae) (2012) Journal of Biogeography, 39, pp. 984-994
  • Barker, J.S.F., Genetic history of a colonizing population: Drosophila buzzatii (Diptera: Drosophilidae) in Australia (2013) Biological Journal of the Linnean Society, 109, pp. 682-698
  • Berwaerts, K., van Dyck, H., Aerts, P., Does flight morphology relate to flight performance? An experimental test with the butterfly Pararge aegeria (2002) Functional Ecology, 16, pp. 484-491
  • Betts, C.R., Wootton, R.J., Wing shape and flight behaviour in butterflies (Lepidoptera: Papilionoidea and Hesperioidea): a preliminary analysis (1988) Journal of Experimental Biology, 138, pp. 271-288
  • Carreira, V.P., Imberti, M., Mensch, J., Fanara, J.J., Gene-by-temperature interactions and candidate plasticity genes for morphological traits in Drosophila melanogaster (2013) PLoS ONE, 8 (7)
  • Carreira, V.P., Soto, I.M., Hasson, E., Fanara, J.J., Patterns of variation in wing morphology in the cactophilic Drosophila buzzatii and its sibling D. koepferae (2006) Journal of Evolutionary Biology, 19, pp. 1275-1282
  • Chevin, L.M., Collins, S., Lefèvre, F., Phenotypic plasticity and evolutionary demographic responses to climate change: taking theory out to the field (2013) Functional Ecology, 27, pp. 967-979
  • Chevin, L.M., Lande, R., Adaptation to marginal habitats by evolution of increased phenotypic plasticity (2011) Journal of Evolutionary Biology, 24, pp. 1462-1476
  • Corio, C., Soto, I.M., Carreira, V.P., Padró, J., Betti, M.I.L., Hasson, E., An alkaloid fraction extracted from the cactus Trichocereus terschekii affects fitness components in the cactophilic fly Drosophila buzzatii (2013) Biological Journal of the Linnean Society London, 109, pp. 342-353
  • David, J., A new medium for rearing Drosophila in axenic conditions (1962) Drosophila Information Service, 36, p. 128
  • Debat, V., David, P., Mapping phenotypes: canalization, plasticity and developmental stability (2001) Trends Ecology and Evolution, 16, pp. 555-561
  • Fallis, L.C., Fanara, J.J., Morgan, T.J., Genetic variation in heat-stress tolerance among South American Drosophila populations (2011) Genetica, 139, pp. 1331-1337
  • Fanara, J.J., Folguera, G., Fernandez Iriarte, P., Mensch, J., Hasson, E., Genotype by environment interactions in viability and developmental time in populations of cactophilic Drosophila (2006) Journal of Evolutionary Biology, 19, pp. 900-906
  • Fanara, J.J., Fontdevila, A., Hasson, E., Oviposition preference and life history traits in the cactophilic sibling species Drosophila koepferae and Drosophila buzzatii in association to their natural host (1999) Evolutionary Ecology, 13, pp. 173-190
  • Fanara, J.J., Hasson, E., Oviposition acceptance and fecundity schedule in cactophilic Drosophila buzzatii and D. koepferae on their natural hosts (2001) Evolution, 55, pp. 2615-2619
  • Fanara, J.J., Hasson, E., Rodriguez, C., Vilardi, J.C., Influence of chromosome two arrangements on viability and developmental time of Drosophila buzzatii (1995) Brazilian Journal of Genetics, 18, pp. 17-21
  • Fanara, J.J., Mensch, J., Folguera, G., Hasson, E., Developmental time and thorax length differences between the cactophilic species Drosophila buzzatii and D. koepferae reared in different natural hosts (2004) Evolutionary Ecology, 18, pp. 203-214
  • Fernandez Iriarte, P., Norry, F.M., Hasson, E.R., Chromosomal inversions effect body size and shape in different breeding resources in Drosophila buzzatii (2003) Heredity, 91, pp. 51-59
  • Fitzpatrick, B.M., Underappreciated consequences of phenotypic plasticity for ecological speciation (2012) International Journal of Ecology, 2012, p. 256017
  • Fogleman, J.C., Danielson, P.B., Chemical interactions in the Cactus-Microorganism–Drosophila Model System of the Sonoran Desert (2001) American Zoologist, 41, pp. 877-889
  • Fordyce, J.A., The evolutionary consequences of ecological interactions mediated trough phenotypic plasticity (2006) Journal of Experimental Biology, 209, pp. 2377-2383
  • Fragata, I., Balanyà, J., Rego, C., Matos, M., Rezende, E.L., Santos, M., Contrasting patterns of phenotypic variation linked to chromosomal inversions in native and colonizing populations of Drosophila subobscura (2010) Journal of Evolutionary Biology, 23, pp. 112-123
  • Fucso, G., Minelli, A., Phenotypic plasticity in development and evolution: facts and concepts (2010) Philosophical Transactions of the Royal Society B, 365, pp. 547-556
  • Gabriel, W., Luttbeg, B., Sih, A., Tollrian, R., Environmental tolerance, heterogeneity and the evolution of reversible plastic responses (2005) American Naturalist, 166, pp. 339-353
  • Ghalambor, C.K., McKay, J.K., Carroll, S.P., Reznick, D.N., Adaptive versus non-adaptive phenotypic plasticity and the potential for contemporary adaptation in new environments (2007) Functional Ecology, 21, pp. 394-407
  • Gibb, H., Hjältén, J., Ball, J.P., Pettersson, R.B., Landin, J., Alvini, O., Danell, K., Wing loading and habitat selection in forest beetles: are red-listed species poorer dispersers or more habitat-specific than common congeneric? (2006) Biological Conservation, 132, pp. 250-260
  • Gu, H., Barker, J.S.F., Genetic and phenotypic variation for flight ability in the cactophilic Drosophila species, D. aldrichi and D. buzzatti (1995) Entomologia Experimentalis et Applicata, 76, pp. 25-35
  • Hasson, E., Naveira, H., Fontdevila, A., The breeding sites of the Argentinian species of the Drosophila mulleri complex (subgenus Drosophila-repleta group) (1992) Revista Chilena de Historia Natural, 65, pp. 319-326
  • Hasson, E., Soto, I.M., Carreira, V.P., Corio, C., Soto, E.M., Betti, M.I.L., Host plants, fitness and developmental instability in a guild of cactophilic species of the genus Drosophila (2008) Ecotoxicology Research Developments, pp. 89-109. , ed., E.B. Santos, Nova Science Publishers, Hauppauge, Nueva York
  • Hurtado, J.P., Hasson, E., Inter and intraspecific variation in female remating propensity in the cactophilic sibling species Drosophila buzzatii and D. koepferae (2013) Journal of Insect Physiology, 59, pp. 569-576
  • Kawecki, T.J., Lenski, R.E., Ebert, D., Hollis, B., Olivieri, I., Whitlock, M.C., Experimental evolution (2012) Trends in Ecology and Evolution, 27, pp. 547-560
  • Kingsolver, J.G., Huey, R.B., Size, temperature, and fitness: three rules (2008) Evolutionary Ecology Research, 10, pp. 251-268
  • Kovach-Orr, C., Fussmann, G.F., Evolutionary and plastic rescue in multitrophic model communities (2013) Philosophical Transactions of the Royal Society B, 368, p. 20120084. , https://doi.org/10.1098/rstb.2012.0084
  • Kolss, M., Vijendravarma, R.K., Schwaller, G., Kawecki, T.J., Life-History consequence of adaptation to larval nutritional stress in Drosophila (2009) Evolution, 63, pp. 2389-2401
  • Loeschcke, V., Bungaard, J., Barker, J.S.F., Reaction norms across and genetic parameters at different temperatures for thorax and wing size traits in Drosophila aldrichi and D. buzzatii (1999) Journal of Evolutionary Biology, 12, pp. 605-623
  • Moczek, A.P., Sultan, S., Foster, S., Ledón-Rettig, C., Dworkin, I., Nijhout, H.F., Abouheif, E., Pfennig, D.W., The role of developmental plasticity in evolution innovation (2011) Proceedings of the Royal Society B, 278, pp. 2705-2713
  • Nijhout, H.F., Riddiford, L.M., Mirth, C., Shingleton, A.W., Suzuki, Y., Callier, V., The development control of size in insects (2014) WIREs Developmental Biology, 3, pp. 113-134
  • Norry, F.M., Vilardi, J.C., Fanara, J.J., Hasson, E., Courtship success and multivariate analysis of sexual selection on morphometric traits in Drosophila buzzatii (Diptera: Drosophilidae) (1995) Journal of Insect Behavior, 8, pp. 219-229
  • Overgaard, J., Kristensen, T.N., Mitchell, K.A., Hoffmann, A.A., Thermal tolerance in widespread and tropical Drosophila species: does phenotypic plasticity increase with latitude? (2011) The American Naturalist, 178 (S1), pp. S80-S96
  • Peck, L.S., Maddrell, S.H.P., Limitation of size by hypoxia in the fruit fly Drosophila melanogaster (2005) Journal of Experimental Zoology Part A: Comparative Experimental Biology, 303A, pp. 968-975
  • Richards, C.L., Bossdorf, O., Muth, N.Z., Gurevitch, J., Pigliucci, M., Jack of all trades, master of some? On the role of phenotypic plasticity in plant invasions (2006) Ecology Letters, 9, pp. 981-993
  • Richards, C.L., Pennings, S.C., Donovan, L.A., Habitat range and phenotypic variation in salt marsh plants (2005) Plant Ecology, 176, pp. 263-273
  • Ruiz, A., Wasserman, M., Evolutionary cytogenetics of the Drosophila buzzatii species complex (1993) Heredity, 70, pp. 582-596
  • Sexton, J.P., McIntyre, P.J., Angert, A.L., Rice, K.J., Evolution and ecology of species range limits (2009) Annual Review of Ecology, Evolution, and Systematics, 40, pp. 415-436
  • Shingleton, A.W., The regulation and evolution of growth and body size (2011) Mechanisms of Life History Evolution: The Genetics and Physiology of Life History Traits and Trade-offs, pp. 43-55. , eds., T. Flatt, &, A. Heyland, Oxford University Press, New York
  • Shingleton, A.W., Estep, C.M., Driscoll, M.V., Dworkin, I., Many ways to be small: different environmental regulators of size generate different scaling relationships in Drosophila melanogaster (2009) Proceedings of the Royal Society, London, Series B, 276, pp. 2625-2633
  • Soto, E.M., Goenaga, J., Hurtado, J., Hasson, E., Oviposition and performance in natural hosts in cactophilic Drosophila (2012) Evolutionary Ecology, 26, pp. 975-990
  • Soto, I.M., Carreira, V.P., Corio, C., Padró, J., Soto, E.M., Hasson, E., Differences in tolerance to host Cactus alkaloids in Drosophila koepferae and D. buzzatii (2014) PLoS ONE, 9
  • Soto, I.M., Carreira, V.P., Fanara, J.J., Hasson, E., Evolution of male genitalia: environmental and genetic factors affect genital morphology in two Drosophila sibling species and their hybrids (2007) BMC Evolutionary Biology, 7, p. 77. , 10.1186/1471-2148-7-77
  • Soto, I.M., Carreira, V.P., Soto, E.M., Hasson, E., Wing morphology and fluctuating asymmetry depend on the host plant in cactophilic Drosophila (2008) Journal of Evolutionary Biology, 21, pp. 598-609
  • Sultan, S.E., Phenotypic plasticity and plant adaptation (1995) Acta Botanica Neerlandica, 44, pp. 363-383
  • Valladares, F., Sanchez-Gomez, D., Zavala, M.A., Quantitative estimation of phenotypic plasticity: bridging the gap between the evolution concept and its ecological applications (2006) Journal of Ecology, 94, pp. 1103-1116
  • Werenkraut, V., Hasson, E., Oklander, L., Fanara, J.J., A comparative study of competitive ability between two cactophilic species in their natural hosts (2008) Austral Ecology, 33, pp. 663-671
  • Whitman, D.W., Ananthakrishnan, T.N., (2009) Phenotypic Plasticity of Insects: Mechanisms and Consequences, , Science Publishers, New Hampshire
  • Wootton, R.J., Functional morphology of insect wings (1992) Annual Review of Entomology, 37, pp. 113-140

Citas:

---------- APA ----------
Fanara, J.J. & Werenkraut, V. (2017) . Phenotypic plasticity in Drosophila cactophilic species: the effect of competition, density, and breeding sites. Insect Science, 24(4), 675-683.
http://dx.doi.org/10.1111/1744-7917.12345
---------- CHICAGO ----------
Fanara, J.J., Werenkraut, V. "Phenotypic plasticity in Drosophila cactophilic species: the effect of competition, density, and breeding sites" . Insect Science 24, no. 4 (2017) : 675-683.
http://dx.doi.org/10.1111/1744-7917.12345
---------- MLA ----------
Fanara, J.J., Werenkraut, V. "Phenotypic plasticity in Drosophila cactophilic species: the effect of competition, density, and breeding sites" . Insect Science, vol. 24, no. 4, 2017, pp. 675-683.
http://dx.doi.org/10.1111/1744-7917.12345
---------- VANCOUVER ----------
Fanara, J.J., Werenkraut, V. Phenotypic plasticity in Drosophila cactophilic species: the effect of competition, density, and breeding sites. Insect Sci. 2017;24(4):675-683.
http://dx.doi.org/10.1111/1744-7917.12345