Spatial Variation in Body Size and Wing Dimorphism Correlates with Environmental Conditions in the Grasshopper Dichroplus vittatus (Orthoptera: Acrididae)

Wing dimorphism occurs widely in insects and involves discontinuous variation in a wide variety of traits involved in fight and reproduction. In the current study, we analyzed the spatial pattern of wing dimorphism and intraspecific morphometric variation in nine natural populations of the grasshopp...

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Autor principal: Rosetti, N.
Otros Autores: Remis, M.I
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: Entomological Society of America 2018
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100 1 |a Rosetti, N. 
245 1 0 |a Spatial Variation in Body Size and Wing Dimorphism Correlates with Environmental Conditions in the Grasshopper Dichroplus vittatus (Orthoptera: Acrididae) 
260 |b Entomological Society of America  |c 2018 
270 1 0 |m Remis, M.I.; Departamento de Ecología, Genética y Evolución, Facultad de Ciencias Exactas y Naturales, University of Buenos AiresArgentina; email: mariar@ege.fcen.uba.ar 
506 |2 openaire  |e Política editorial 
504 |a Bidau, C.J., Marti, D.A., Dichroplus vittatus (Orthoptera: Acrididae) follows the converse to Bergmann's rule although male morphological variability increases with latitude (2007) Bulletin Ent. Res., 97, pp. 69-79 
504 |a Bidau, C.J., Martí, D.A., Contrasting patterns of sexual size dimorphism in thevgrasshoppers Dichroplus vittatus and D pratensis (Acrididae, Melanoplinae) (2008) J. Orthoptera Res., 17, pp. 201-211 
504 |a Byers, J.W., Evolution of wing reduction in crane flies Diptera (Tipulidae) (1969) Evolution., 23, pp. 346-354 
504 |a Cigliano, M.M., Otte, D., Revision of the Dichroplus maculipennis species group (Orthoptera, Acridoidea, Melanoplinae) (2003) Trans. Am. Entomol. Soc., 129, pp. 133-162 
504 |a Colombo, P.C., Pensel, S., Isabel, R.M., Chromosomal polymorphism, morphometric traits and mating success in Leptysma Argentina (Orthoptera) (2004) Genetica., 121, pp. 25-31 
504 |a Crnokrak, P., Roff, D.A., Fitness differences associated with calling behaviour in the two wing morphs of male sand crickets, Gryllus firmus (1995) Animal Behav., 50, pp. 1475-1481 
504 |a Denno, R.F., The evolution of dispersal polymorphisms in insects: The infuence of habitats, host plants and mates (1994) Res. Popul. Ecol., 36, pp. 127-135 
504 |a Denno, R.F., Roderick, G.K., Olmstead, K.L., Dobel, H.G., Densityrelated migration in planthoppers (Homoptera: Delphacidae): The role of habitat persistence (1991) Am. Nat., 138, pp. 1513-1541 
504 |a Denno, R.E., Roderick, G.K., Peterson, M.A., Huberty, A.F., Dobel, H.G., Eubanks, M.D., Losey, J.E., Langellotto, G.A., Habitat persistence underlies intraspecific variation in the dispersal strategies of planthoppers (1996) Ecol. Monogr., 66, pp. 389-408 
504 |a Dingle, H., Ecology and the evolution of migration (1980) Animal Migration, Orientation and Navigation, pp. 1-101. , In S. A. Gauthreaux, (ed.), Academic Press, New York, NY 
504 |a Dingle, H., Migration (1985) Comprehensive Insect Physiology, Biochemistry and Pharmacology, 9, pp. 375-415. , In G. A. Kerkut and L. I. Gilbert (eds.), Behaviour. Pergamon, New York 
504 |a Feng, B., Zhao, Q., Xu, J., Qin, J., Yang, Z.L., Drainage isolation and climate change-driven population expansion shape the genetic structures of Tuber indicum complex in the Hengduan Mountains region (2016) Sci. Rep., 6, pp. 1-10 
504 |a Fox, C.W., Czesak, M.E., Evolutionary ecology of progeny size in arthropods (2000) Annu. Rev. Entomol., 45, pp. 341-369 
504 |a Guerra, P.A., Evaluating the life-history trade-off between dispersal capability and reproduction in wing dimorphic insects: A meta-analysis (2011) Biol. Rev. Camb. Philos. Soc., 86, pp. 813-835 
504 |a Guerra, P.A., Pollack, G.S., A life history trade-off between flight ability and reproductive behavior in male field crickets (Gryllus texensis) (2007) J. Insect Behav., 20, pp. 377-387 
504 |a Hammer, U.T., Harper, D., Ryan, P., PAST: Paleontological statistics software package for education and data analysis (2001) Palaeontol. Electron., 4, p. 9 
504 |a Harrison, R.G., Dispersal polymorphisms in insects (1980) Annu. Rev. Ecol. Syst., 11, pp. 95-118 
504 |a Ikeda, H., Sota, T., Macroscale evolutionary patterns of flight muscle dimorphism in the carrion beetle Necrophila japonica (2011) Ecol. Evol., 1, pp. 97-105 
504 |a (2008) Grupo InfoStat, , InfoStat Versión. FCA, Universidad Nacional de Cordoba, Cordoba, Argentina 
504 |a Ingrisch, S., Köhler, G., (1998) Die Heuschrecken Mitteleuropas, Vol, , 629. Die Neue Brehm-Bucherei, Westarp Wissenschaften, Magdeburg 
504 |a Javinen, O., Vepsalainen, K., Wing dimorphism as an adaptive strategy in water-striders (Gerris) (1976) Hereditas., 84, pp. 61-68 
504 |a Johansson, F., Stoks, R., Rowe, L., Block, M.D., Life history plasticity in a damselfy: Effects of combined time and biotic constraints (2001) Ecology., 82, pp. 1857-1869 
504 |a Johnson, C.G., (1969) Migration and Dispersal of Insects by Fight, , Methuen &Co. Ltd., London, United Kingdom 
504 |a Jonsson, M., Colonisation ability of the threatened tenebrionid beetle Oplocephala haemorrhoidalis and its common relative Bolitophagus reticulates (2003) Ecol. Entomol., 28, pp. 159-167 
504 |a Kalmus, H., Correlations between flight and vision, and particularly between wings and ocelli, in insects (1945) Proc. R. Entomol. Soc. Lond., A20, pp. 84-96 
504 |a Karr, J.R., James, F.C., (1975) Ecology and Evolution of Communities, , Cambridge, MA: Harvard University Press 
504 |a Kawada, K., Forms and morphs of aphids (1987) Aphids, Their Biology, Natural Enemies and Control, 2 (A), pp. 255-266. , In P. Harrewijn (ed.), Elsevier, Amsterdam, The Netherlands 
504 |a Kring, J.B., Structure of the eyes of the pea aphid, Acyrthosiphon pisum (1977) Ann. Entomol. Soc. Am., 70, pp. 855-860 
504 |a Mackay, P.A., Wellington, W.G., A comparison of the reproductive patterns of apterous and alate virginoparous Acyrthosiphon pisum (Homoptera: Aphididae) (1975) Can Entomol., 107, pp. 1161-1166 
504 |a Masaki, S., Climatic adaptation and photoperiodic response in the band-legged ground cricket (1972) Evolution., 26, pp. 587-600 
504 |a Nardi, C., Fernandes, P.M., Bento, J.M.S., Wing polymorphism and dispersal of Scaptocoris carvalhoi (Hemiptera: Cydnidae) (2008) Ann. Entomol. Soc. Am., 101, pp. 551-557 
504 |a Pener, M.P., Simpson, S.J., Locust phase polyphenism: An update (2009) Adv. Insect Physiol., 36, pp. 1-286 
504 |a Poniatowski, D., Fartmann, T., Experimental evidence for density-determined wing dimorphism in two bush-crickets (Ensifera: Tettigoniidae) (2009) Eur J Entomol., 106, pp. 599-605 
504 |a Rikiya, S., Fusao, N., Kenji, F., Environmental factors determining wing form in the lygaeid bug, dimorphopterus japonicus Heteroptera Lygaeidae (2002) Appl. Entomol. Zool., 372, pp. 329-333 
504 |a Roff, D.A., The cost of being able to fly: A study of wing polymorphism in two species of crickets (1984) Oecologia., 63, pp. 30-37 
504 |a Roff, D.A., The evolution of wing dimorphism in insects (1986) Evolution., 40, pp. 1009-1020 
504 |a Roff, D.A., The evolution of flightlessness in insects (1990) Ecol. Monogr., 60, pp. 389-421 
504 |a Roff, D.A., Bradford, M.J., Quantitative genetics of the trade-off between fecundity and wing dimorphism in the cricket Allonemobius socius (1996) Heredity., 76, pp. 178-185 
504 |a Roff, D.A., Fairbairn, D.J., Wing dimorphisms and the evolution of migratory polymorphisms among the Insecta (1991) Am. Zool., 31, pp. 243-251 
504 |a Roff, D.A., Fairbairn, D.J., Laboratory evolution of the migratory polymorphism in the sand cricket: Combining physiology with quantitative genetics (2007) Physiol. Biochem. Zool., 80, pp. 358-369 
504 |a Sakaluk, S.K., Cryptic female choice predicated on wing dimorphism in decorated crickets (1997) Behav Ecol., 8, pp. 326-331 
504 |a Simpson, S.J., Sword, G.A., Lo, N., Polyphenism in insects (2011) Curr Biol., 21 (18), pp. R738-R749 
504 |a (1996) Statistica 5 for Windows (Computer Program Manual), , Statistica Statsoft Inc. Statistica, Tulsa, OK 
504 |a Steenman, A., Lehmann, A.W., Lehmann, G.U.C., Morphological variation and sex-biased frequency of wing dimorphism in the pygmy grasshopper Tetrix subulata (Orthoptera: Tetrigidae) (2013) Eur. J. Entomol., 110, pp. 535-540 
504 |a Steenmann, A., Lehmann, A., Lehmann, G., Life-history trade-off between macroptery and reproduction in the wing-dimorphic pygmy grasshopper Tetrix subulata (Orthoptera Tetrigidae) (2015) Ethol Ecol Evol., 27, pp. 93-100 
504 |a Southwood, T.R.E., Migration of terrestrial arthropods in relation to habitat (1962) Biol. Rev. Camb. Philos. Soc., 37, pp. 171-214 
504 |a Tanaka, S., Suzuki, Y., Physiological trade-offs between reproduction, flight capability and longevity in a wing-dimorphic cricket, Modicogryllus confirmatus (1998) J. Insect Physiol., 44, pp. 121-129 
504 |a Tsuji, H., Kawada, K., Development and degeneration of wing buds and indirect flight muscles in the pea aphid (Acyrthosiphon pisum (Harris)) (1987) Jpn. J. Appl. Entomol. Zool., 31, pp. 247-252 
504 |a Turk, S.Z., Barrera, M., Acridios del NOA III Estudio bio-ecologico sobre siete especies del genero Dichroplus Stal (Orthoptera, Acrididae) (1979) Acta Zoologica Lilloana., 35, pp. 785-805 
504 |a Van Dyck, H., Matthysen, E., Habitat fragmentation and insect flight: A changing 'design' in a changing landscape? Trends Ecol (1999) Evol., 14, pp. 172-174 
504 |a Zeng, Y., Zhu, D.H., Trade-off between flight capability and reproduction in male Velarifictorus asperses crickets (2012) Ecol. Entomol., 37, pp. 244-251 
504 |a Zeng, Y., Zhu, D.H., Geographical variation in body size, development time, and wing dimorphism in the cricket Velarifictorus micado (Orthoptera: Gryllidae) (2014) Ann. Entomol. Soc. Am., 107 (6), pp. 1066-1071 
504 |a Zera, A.J., Differences in survivorship, development rate and fertility between the longwinged and wingless morphs of the waterstrider, Limnoporus canaliculatus (1984) Evolution., 38, pp. 1023-1032 
504 |a Zera, A.J., Wing polymorphism in Gryllus (Orthoptera: Gryllidae): Proximate endocrine, energetic and biochemical mechanisms underlying morph specialization for flight vs reproduction (2009) Phenotypic Plasticity of Insects: Mechanism and Consequences, pp. 609-653. , In D. W. Whitman &T. N. Ananthakrishnan (eds.), Science Publishers, Enfield, NH 
504 |a Zera, A.J., Juvenile Hormone and the endocrine regulation of wing polymorphism in insects: New insights from circadian and functional-genomic studies in Gryllus crickets (2016) Physiol. Entomol., 41, pp. 313-326 
504 |a Zera, A.J., Brisson, J.A., Induction and function of polyphenic morphs: Proximate regulatory mechanisms and evolutionary implications (2015) Integrative Organismal Biology, pp. 71-90. , In L. B. Martin, C. K. Ghalambor, and H. A. Woods (eds.), John Wiley &Sons, Hoboken, NJ 
504 |a Zera, A.J., Denno, R.F., Physiology and ecology of dispersal polymorphism in insects (1997) Annu. Rev. Entomol., 42, pp. 207-230 
504 |a Zera, A.J., Sall, J., Grudzinski, K., Flight-muscle polymorphism in the cricket Gryllus firmus: Muscle characteristics and their influence on the evolution of flightlessness (1997) Physiol. Zool., 70, pp. 519-529 
520 3 |a Wing dimorphism occurs widely in insects and involves discontinuous variation in a wide variety of traits involved in fight and reproduction. In the current study, we analyzed the spatial pattern of wing dimorphism and intraspecific morphometric variation in nine natural populations of the grasshopper Dichroplus vittatus (Bruner; Orthoptera: Acrididae) in Argentina. Considerable body size differences among populations, between sexes and wing morphs were detected. As a general trend, females were larger than males and macropterous individuals showed increased thorax length over brachypterous which can be explained by the morphological requirements for the development of flight muscles in the thoracic cavity favoring dispersal. Moreover, when comparing wing morphs, a higher phenotypic variability was detected in macropterous females. The frequency of macropterous individuals showed negative correlation with longitude and positive with precipitations, indicating that the macropterous morph is more frequent in the humid eastern part of the studied area. Our results provide valuable about spatial variation of fully winged morph and revealed geographic areas in which the species would experience greater dispersal capacity. © The Author(s) 2018.  |l eng 
536 |a Detalles de la financiación: Universidad de Buenos Aires, 20020130100358BA, http://dx.doi.org/10.13039/501100005363 
536 |a Detalles de la financiación: Consejo Nacional de Investigaciones Científicas y Técnicas, http://dx.doi.org/10.13039/501100002923, 11220130100492CO 
536 |a Detalles de la financiación: Funding provided by CONICET (http://dx.doi.org/10.13039/501100002923) under award number 11220130100492CO and Universidad de Buenos Aires (http://dx.doi.org/10.13039/501100005363) under award number 20020130100358BA through grants to Dr. M.  I. Remis is gratefully acknowledged. 
593 |a Departamento de Ecología, Genética y Evolución, Facultad de Ciencias Exactas y Naturales, University of Buenos Aires, Buenos Aires, Argentina 
690 1 0 |a ENVIRONMENTAL CONDITION 
690 1 0 |a MORPHOMETRIC TRAITS 
690 1 0 |a ORTHOPTERA 
690 1 0 |a WING DIMORPHISM 
690 1 0 |a BODY SIZE 
690 1 0 |a CORRELATION 
690 1 0 |a DIMORPHISM 
690 1 0 |a DISPERSAL 
690 1 0 |a ENVIRONMENTAL CONDITIONS 
690 1 0 |a GRASSHOPPER 
690 1 0 |a MORPHOMETRY 
690 1 0 |a MUSCLE 
690 1 0 |a PHENOTYPE 
690 1 0 |a PHENOTYPIC PLASTICITY 
690 1 0 |a PRECIPITATION (CLIMATOLOGY) 
690 1 0 |a REPRODUCTION 
690 1 0 |a SPATIAL VARIATION 
690 1 0 |a WING MORPHOLOGY 
690 1 0 |a ACRIDIDAE 
690 1 0 |a DICHROPLUS VITTATUS 
690 1 0 |a HEXAPODA 
690 1 0 |a ORTHOPTERA 
690 1 0 |a ANATOMY AND HISTOLOGY 
690 1 0 |a ANIMAL 
690 1 0 |a BODY SIZE 
690 1 0 |a CAELIFERA 
690 1 0 |a ENVIRONMENT 
690 1 0 |a FEMALE 
690 1 0 |a MALE 
690 1 0 |a PHYSIOLOGY 
690 1 0 |a SEX FACTOR 
690 1 0 |a WING 
690 1 0 |a ANIMALS 
690 1 0 |a BODY SIZE 
690 1 0 |a ENVIRONMENT 
690 1 0 |a FEMALE 
690 1 0 |a GRASSHOPPERS 
690 1 0 |a MALE 
690 1 0 |a SEX FACTORS 
690 1 0 |a WINGS, ANIMAL 
651 4 |a ARGENTINA 
651 4 |a ARGENTINA 
651 4 |a ARGENTINA 
700 1 |a Remis, M.I. 
773 0 |d Entomological Society of America, 2018  |g v. 47  |h pp. 519-526  |k n. 3  |p Environ. Entomol.  |x 0046225X  |t Environmental Entomology 
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