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Dispersal traits may reflect dispersal distances, but dispersers may not connect populations demographically

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Abstract

Ecological traits that reflect movement potential are often used as proxies for measured dispersal distances. Whether such traits reflect actual dispersal is often untested. Such tests are important because maximum dispersal distances may not be achieved and many dispersal events may be unsuccessful (without reproduction). For insects, many habitat patches harbour ‘resident’ species that are present as larvae (sedentary) and adults (winged and dispersing), and ‘itinerant’ species present only as adults that have dispersed from elsewhere and fail to reproduce. We tested whether itinerancy patterns were temporally consistent, and whether itinerant and resident species differed in wing morphology, a strong correlate of flight capability. Over 3 years and at multiple locations in a 22 km stream length, we sampled larvae and adults of caddisflies in the genus Ecnomus to categorize species as residents or itinerants. Flight capacity was measured using wing size (length and area) and shape parameters (aspect ratio and the second moment of wing area). Three species of Ecnomus were residents and three species were itinerants, and patterns were consistent over 3 years. On average, itinerant species had larger wings, suggesting a greater capacity to fly long distances. Wing shape differed between species, but did not differ systematically between residents and itinerants. Wing morphology was associated with actual but not effective dispersal of some species of Ecnomus. Morphological traits may have weak explanatory power for hypotheses regarding the demographic connectedness of populations, unless accompanied by data demonstrating which dispersers contribute new individuals to populations.

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References

  • Beirinckx K, Van Gossum H, J Lajeunesse M, R Forbes M (2006) Sex biases in dispersal and philopatry: insights from a meta-analysis based on capture–mark–recapture studies of damselflies. Oikos 113:539–547

    Article  Google Scholar 

  • Belyea LR, Lancaster J (1999) Assembly rules within a contingent ecology. Oikos 86:402–417

    Article  Google Scholar 

  • Betts CR, Wooton RJ (1988) Wing shape and flight behaviour in butterflies (Lepidoptera: Papilionoidea and Hesperioidea): a preliminary analysis. J Exp Biol 138:271–288

    Google Scholar 

  • Bilton DT, Freeland JR, Okamura B (2001) Dispersal in freshwater invertebrates: mechanisms and consequences. Ann Rev Ecol Syst 32:159–181

    Article  Google Scholar 

  • Cartwright DI (1990) The Australian species of Ecnomus McLachlan (Trichoptera: Ecnomidae). Mem Mus Vic 51:1–48

    Google Scholar 

  • Cartwright DI (1997) Preliminary guide to the identification of late instar larvae of Australian Ecnomidae, Philopotamidae and Tasmiidae (Insecta: Trichoptera). Cooperative Research Centre for Freshwater Ecology, Albury

    Google Scholar 

  • Caudill CC (2003) Measuring dispersal in a metapopulation using stable isotope enrichment: high rates of sex-biased dispersal between patches in a mayfly metapopulation. Oikos 101:624–630

    Article  Google Scholar 

  • Chessman BC (1986) Dietary studies of aquatic insects from two Victorian rivers. Aust J Mar Freshwat Res 37:129–146

    Article  Google Scholar 

  • Collier KJ, Smith BJ (1998) Dispersal of adult caddisflies (Trichoptera) into forests alongside three New Zealand streams. Hydrobiologia 361:53–65

    Article  Google Scholar 

  • Conrad KF, Willson KH, Harvey IF, Thomas CJ, Sherratt TN (1999) Dispersal characteristics of seven odonate species in an agricultural landscape. Ecography 22:524–531

    Article  Google Scholar 

  • Downes BJ, Lancaster J (2010) Does dispersal control population densities in advection-dominated systems? A fresh look at critical assumptions and a direct test. J Anim Ecol 79:235–248

    Article  PubMed  Google Scholar 

  • Downes BJ, Lancaster J, Hale R, Glaister A, Bovill W (2011) Plastic and unpredictable responses of stream invertebrates to leaf pack patches across sandy-bottomed streams. Mar Freshw Res 62:394–403

    Article  CAS  Google Scholar 

  • Downes BJ, Lancaster J, Glaister A, Bovill W (2017) A fresh approach reveals how dispersal shapes metacommunity structure in a human-altered landscape. J Appl Ecol 54:588–598

  • Dudley R (2000) The biomechanics of insect flight: form, function, evolution. Princeton University Press, Princeton

    Google Scholar 

  • Duputié A, Massol F (2013) An empiricist’s guide to theoretical predictions on the evolution of dispersal. Interface Focus 3:20130028

    Article  PubMed  PubMed Central  Google Scholar 

  • Ellington CP (1984a) The aerodynamics of hovering insect flight. II. Morphological parameters. Phil Trans Roy Soc Lond B 305:17–40

    Article  Google Scholar 

  • Ellington CP (1984b) The aerodynamics of hovering insect flight. VI. Lift and power requirements. Phil Trans Roy Soc Lond B 305:145–181

    Article  Google Scholar 

  • Floreano D, Zufferey J-C, Srinivasan MV, Ellington CP (eds) (2010) Flying insects and robots. Springer, Heidelberg

    Google Scholar 

  • Gullefors B, Petersson E (1993) Sexual dimorphism in relation to swarming and pair formation patterns in leptocerid caddisflies (Trichoptera, Leptoceridae). J Insect Behav 6:563–577

    Article  Google Scholar 

  • Hedrick TL, Combes SA, Miller LA (2015) Recent developments in the study of insect flight. Can J Zool 93:925–943

    Article  Google Scholar 

  • Hughes JM (2007) Constraints on recovery: using molecular methods to study connectivity of aquatic biota in rivers and streams. Freshw Biol 52:616–631

    Article  Google Scholar 

  • Hughes JM, Mather PB, Sheldon AL, Allendorf FW (1999) Genetic structure of the stonefly, Yoraperla brevis, populations: the extent of gene flow among adjacent montane streams. Freshw Biol 41:63–72

    Article  Google Scholar 

  • Humphries P, Brown P, Douglas J, Pickworth A, Strongman R, Hall K, Serafini L (2008) Flow-related patterns in abundance and composition of the fish fauna of a degraded Australian lowland river. Freshw Biol 53:789–813

    Article  CAS  Google Scholar 

  • Ivanov VD (1986) Comparative analysis of wing kinematics in caddis flies (Trichoptera). Entomol Rev 65:60–71

    Google Scholar 

  • Ivanov VD (1989) Action of wing articulations of caddis-flies (Trichoptera) in flight. Entomol Rev 68:119–129

    Google Scholar 

  • Ivanov VD (1990) Comparative analysis of the aerodynamics of flight of caddisflies (Insecta: Trichoptera). Entomol Rev 69:51–66

    Google Scholar 

  • Kovats ZE, Ciborowski JJH, Corkum LD (1996) Inland dispersal of adult aquatic insects. Freshw Biol 36:265–276

    Article  Google Scholar 

  • Kuusela K, Huusko A (1996) Post-emergence migration of stoneflies (Plecoptera) into the nearby forest. Ecol Entomol 21:171–177

    Article  Google Scholar 

  • Lancaster J, Downes BJ (2015) Population densities and density-area relationships in a community with advective dispersal and variable mosaics of resource patches. Oecologia 176:985–996

    Article  Google Scholar 

  • Lancaster J, Downes BJ (2017) A landscape-scale field experiment reveals the importance of dispersal in a resource-limited metacommunity. Ecology 98:565–575

    Article  PubMed  Google Scholar 

  • Lancaster J, Downes BJ, Glaister A (2009) Interacting environmental gradients, trade-offs and reversals in the abundance–environment relationships of stream insects: when flow is unimportant. Mar Freshw Res 60:259–270

    Article  CAS  Google Scholar 

  • Lancaster J, Downes BJ, Arnold A (2011) Lasting effects of maternal behaviour on the distribution of a dispersive stream insect. J Anim Ecol 80:1061–1069

    Article  PubMed  Google Scholar 

  • Levin SA, Muller-Landau HC, Nathan R, Chave J (2003) The ecology and evolution of seed dispersal: a theoretical perspective. Annu Rev Ecol Evol S 34:575–604

    Article  Google Scholar 

  • Lowe WH, McPeek MA (2014) Is dispersal neutral? Trends Ecol Evolut 29:444–450

    Article  Google Scholar 

  • Macqueen A, Downes BJ (2015) Large-scale manipulations of oviposition substrata affects egg supply to populations of some stream-dwelling caddisflies. Freshw Biol 60:802–812

    Article  Google Scholar 

  • Marchant R (1988) A subsampler for samples of benthic invertebrates. Bull Aust Soc Limnol 12:49–52

    Google Scholar 

  • McCauley SJ (2006) The effects of dispersal and recruitment limitation on community structure of odonates in artificial ponds. Ecography 29:585–595

    Article  Google Scholar 

  • Miller SW, Budy P, Schmidt JC (2010) Quantifying macroinvertebrate responses to in-stream habitat restoration: applications of meta-analysis to river restoration. Restor Ecol 18:8–19

    Article  Google Scholar 

  • Morrison CA, Robinson RA, Clark JA, Risley K, Gill JA (2013) Recent population declines in Afro-Palaearctic migratory birds: the influence of breeding and non-breeding seasons. Divers Distrib 19:1051–1058

    Article  Google Scholar 

  • Murrell DJ, Travis JMJ, Dytham C (2002) The evolution of dispersal distance in spatially-structured populations. Oikos 97:229–236

    Article  Google Scholar 

  • Neboiss A (1986) Atlas of Trichoptera of the SW Pacific–Australia region. Dr W. Junk, Dordrecht, The Netherlands

  • Outomuro D, Adams DC, Johansson F (2013) Wing shape allometry and aerodynamics in calopterygid damselflies: a comparative approach. BMC Evol Biol 13:118

    Article  PubMed  PubMed Central  Google Scholar 

  • Petersen I, Winterbottom JH, Orton S, Friberg N, Hildrew AG, Speirs DC, Gurney WSC (1999) Emergence and lateral dispersal of adult Plecoptera and Trichoptera from Broadstone stream, UK. Freshw Biol 42:401–416

    Article  Google Scholar 

  • Rasband WS (1997–2012) ImageJ. U.S. National Institutes of Health, Bethesda, Maryland, USA, http://imagej.nih.gov/ij. Accessed Feb 2013

  • Ribak G, Pitts ML, Wilkinson GS, Swallow JG (2009) Wing shape, wing size, and sexual dimorphism in eye-span in stalk-eyed flies (Diopsidae). Biol J Linn Soc 98:860–871

    Article  Google Scholar 

  • Sakai AK, Allendorf FW, Holt JS, Lodge DM, Molofsky J, With KA, Baughman S, Cabin RJ, Cohen JE, Ellstrand NC, McCauley DE, O’Neil P, Parker IM, Thompson JN, Weller SG (2001) The population biology of invasive species. Ann Rev Ecol Syst 32:305–332

    Article  Google Scholar 

  • Sakar S (2012) A meta-analysis of the traits affecting dispersal ability in butterflies: can wingspan be used as a proxy? J Anim Ecol 81:174–184

    Article  Google Scholar 

  • Schoener TW, Losos JB, Spiller DA (2005) Island biogeography of populations: an introduced species transforms survival patterns. Science 310:1807–1809

    Article  CAS  PubMed  Google Scholar 

  • Schreiber ESG (1995) Long-term patterns of invertebrate stream drift in an Australian temperate stream. Freshw Biol 33:13–25

    Article  Google Scholar 

  • Serrano-Meneses MA, Córdoba-Aguilar A, Azpilicueta-Amorín M, González-Soriano E, Székeley T (2008) Sexual selection, sexual size dimorphism and Rensch’s rule in Odonata. J Evol Biol 21:1259–1273

    Article  CAS  PubMed  Google Scholar 

  • Sode A, Wiberg-Larsen P (1993) Dispersal of adult Trichoptera at a Danish forest brook. Freshw Biol. 30:439–446

    Article  Google Scholar 

  • Sokal RR, Rohlf FJ (1981) Biometry, 2nd edn. Freeman, New York

    Google Scholar 

  • Stevens VM, Turlure C, Baguette M (2010) A meta-analysis of dispersal in butterflies. Biol Rev 85:625–642

    PubMed  Google Scholar 

  • Stocks IC (2010) Comparative and functional morphology of wing coupling structures in Trichoptera: Annulipalpia. J Morphol 271:152–168

    PubMed  Google Scholar 

  • Svensson BW (1974) Population movements of adult Trichoptera in a South Swedish stream. Oikos 25:157–175

    Article  Google Scholar 

  • Svensson BW (1998) Local dispersal and its life-history consequences in a rock pool population of a gyrinid beetle. Oikos 82:111–122

    Article  Google Scholar 

  • Verberk WCEP, van Noordwijk CGE, Hildrew AG (2013) Delivering on a promise: integrating species traits to transform descriptive community ecology. Freshw Sci 32:531–547

    Article  Google Scholar 

  • Vittoz P, Engler R (2007) Seed dispersal distances: a typology based on dispersal modes and plant traits. Bot Helv 117:109–124

    Article  Google Scholar 

  • Waringer JA (1991) Phenology and the influence of meteorological parameters on the catching success of light-trapping for Trichoptera. Freshw Biol 25:307–319

    Article  Google Scholar 

  • Weis-Fogh T (1973) Quick estimates of flight fitness in hovering animals, including novel mechanisms for lift production. J Exp Biol 59:169–230

    Google Scholar 

  • Zobel M (1992) Plant species coexistence—the role of historical, evolutionary and ecological factors. Oikos 65:314–320

    Article  Google Scholar 

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Acknowledgements

We thank the many people who helped with field collections at various times, including Claire Allison, Wim Bovill, Alena Glaister, Steve Horn, Ashley Macqueen, Bobbi Peckarsky, Jared Polkinghorne, Bob Smith and Allyson Yarra. We are deeply indebted to Wim Bovill and Alena Glaister for their stellar assistance with identifications. This project was supported by a Discovery Grant from the Australian Research Council (DP120103145) awarded to JL and BJD. Adult sampling in 2015 was carried out in conjunction with an NSF Postdoctoral Extension awarded to R. Smith and hosted by the University of Melbourne.

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JL and BJD collected samples; JL measured wings; JL and BJD analysed the data and wrote the manuscript.

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Correspondence to Jill Lancaster.

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Communicated by Jamie M. Kneitel.

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Lancaster, J., Downes, B.J. Dispersal traits may reflect dispersal distances, but dispersers may not connect populations demographically. Oecologia 184, 171–182 (2017). https://doi.org/10.1007/s00442-017-3856-x

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