Artículo

Zhan, A.; Perepelizin, P.V.; Ghabooli, S.; Paolucci, E.; Sylvester, F.; Sardiña, P.; Cristescu, M.E.; Macisaac, H.J. "Scale-dependent post-establishment spread and genetic diversity in an invading mollusc in South America" (2012) Diversity and Distributions. 18(10):1042-1055
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Abstract:

Aims Our study aimed to characterize the dispersal dynamics and population genetic structure of the introduced golden mussel Limnoperna fortunei throughout its invaded range in South America and to determine how different dispersal methods, that is, human-mediated dispersal and downstream natural dispersal, contribute to genetic variation among populations. Location Paraná-Uruguay-Río de la Plata watershed in Argentina, Brazil, Paraguay and Uruguay. Methods We performed genetic analyses based on a comprehensive sampling strategy encompassing 22 populations (N=712) throughout the invaded range in South America, using the mitochondrial cytochrome c oxidase subunit I (COI) gene and eight polymorphic nuclear microsatellites. We employed both population genetics and phylogenetic analyses to clarify the dispersal dynamics and population genetic structure. Results We detected relatively high genetic differentiation between populations (F ST=-0.041 to 0.111 for COI, -0.060 to 0.108 for microsatellites) at both fine and large geographical scales. Bayesian clustering and three-dimensional factorial correspondence analyses consistently revealed two genetically distinct clusters, highlighting genetic discontinuities in the invaded range. Results of all genetic analyses suggest ship-mediated 'jump' dispersal as the dominant mode of spread of golden mussels in South America, while downstream natural dispersal has had limited effects on contemporary genetic patterns. Main conclusions Our study provides new evidence that post-establishment dispersal dynamics and genetic patterns vary across geographical scales. While ship-mediated 'jump' dispersal dominates post-establishment spread of golden mussels in South America, once colonies become established in upstream locations, larvae produced may be advected downstream to infill patchy distributions. Moreover, genetic structuring at fine geographical scales, especially within the same drainages, suggests a further detailed understanding of dynamics of larval dispersal and settlement in different water systems. Knowledge of the mechanisms by which post-establishment spread occurs can, in some cases, be used to limit dispersal of golden mussels and other introduced species. © 2012 Blackwell Publishing Ltd.

Registro:

Documento: Artículo
Título:Scale-dependent post-establishment spread and genetic diversity in an invading mollusc in South America
Autor:Zhan, A.; Perepelizin, P.V.; Ghabooli, S.; Paolucci, E.; Sylvester, F.; Sardiña, P.; Cristescu, M.E.; Macisaac, H.J.
Filiación:Great Lakes Institute for Environmental Research, University of Windsor, 401 Sunset Avenue, Windsor, ON N9B 3P4, Canada
Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Departamento de Ecología, Genética y Evolución (C1428EHA), Buenos Aires, Argentina
Museo Argentino de Ciencias Naturales 'Bernardino Rivadavia', Buenos Aires, Argentina
Palabras clave:Biological invasions; Dispersal mechanism; Genetic differentiation; Golden mussel Limnoperna fortunei; Non-indigenous species; Population structure; biological invasion; conservation genetics; dispersal; genetic marker; genetic structure; genetic variation; introduced species; larval settlement; mollusc; phylogenetics; population structure; South America; Limnoperna fortunei; Mollusca
Año:2012
Volumen:18
Número:10
Página de inicio:1042
Página de fin:1055
DOI: http://dx.doi.org/10.1111/j.1472-4642.2012.00894.x
Título revista:Diversity and Distributions
Título revista abreviado:Diversity Distrib.
ISSN:13669516
CODEN:DIDIF
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_13669516_v18_n10_p1042_Zhan

Referencias:

  • Astanei, I., Gosling, E., Wilson, J., Powell, E., Genetic variability and phylogeography of the invasive zebra mussel, Dreissena polymorpha (Pallas) (2005) Molecular Ecology, 14, pp. 1655-1666
  • Belkhir, K., Borsa, P., Chikhi, L., Raufaste, N., Bonhomme, F., (2004) GENETIX 4.05, logiciel sous Windows TM pour la ge′ne′tique des populations, , Laboratoire Ge′nome, Populations, Interactions, Universite′ de Montpellier, Montpellier, France
  • Bock, D.G., Zhan, A., Lejeusne, C., MacIsaac, H.J., Cristescu, M.E., Looking at both sides of the invasion: patterns of colonization in the violet tunicate Botrylloides violaceus (2011) Molecular Ecology, 20, pp. 503-516
  • Boltovskoy, D., Correa, N., Cataldo, D., Sylvester, F., Dispersion and ecological impact of the invasive freshwater bivalve Limnoperna fortunei in the Río de la Plata watershed and beyond (2006) Biological Invasions, 8, pp. 947-963
  • Boltovskoy, D., Sylvester, F., Otaegui, A., Leites, V., Cataldo, D., Environmental modulation of reproductive activity of the invasive mussel Limnoperna fortunei: implications for antifouling strategies (2009) Austral Ecology, 34, pp. 719-730
  • Cataldo, D., Boltovskoy, D., Hermosa, J.L., Canzi, C., Temperature-dependent larval development rates of Limnoperna fortunei (Mollusca, Bivalvia) (2005) Journal of Molluscan Studies, 71, pp. 41-46
  • Chandler, E.A., McDowell, J.R., Graves, J.E., Genetically monomorphic invasive populations of the rapa whelk, Rapana venosa (2008) Molecular Ecology, 17, pp. 4079-4091
  • Clement, M., Posada, D., Crandall, K.A., TCS: a computer program to estimate gene genealogies (2000) Molecular Ecology, 9, pp. 1657-1659
  • Cudney-Bueno, R., Prescott, R., Hinojosa-Huerta, O., The black murex snail, Hexaplex Nigritus (Mollusca, Muricidae), in the Gulf of California, Mexico: I. reproductive ecology and breeding aggregations (2008) Bulletin of Marine Science, 83, pp. 285-298
  • Darling, J.A., Folino-Rorem, N.C., Genetic analysis across different spatial scales reveals multiple dispersal mechanisms for the invasive hydrozoan Cordylophora in the Great Lakes (2009) Molecular Ecology, 18, pp. 4827-4840
  • Darrigran, G., Maroñas, M.E., Colautti, D.C., Air exposure as a control mechanism for the golden mussel, Limnopema fortunei, (Bivalvia: Mytilidae) (2004) Journal of Freshwater Ecology, 19, pp. 461-464
  • Dupont, L., Viard, F., Dowell, M.J., Wood, C., Bishop, J.D.D., Fine- and regional-scale genetic structure of the exotic ascidian Styela clava (Tunicata) in southwest England, 50years after its introduction (2009) Molecular Ecology, 18, pp. 442-453
  • Dybdahl, M.F., Drown, D.M., The absence of genotypic diversity in a successful parthenogenetic invader (2010) Biological Invasions, 13, pp. 1663-1672
  • Elphinstone, M.S., Hinten, G.N., Anderson, M.J., Nock, C.J., An inexpensive and high throughput procedure to extract and purify total genomic DNA for population studies (2003) Molecular Ecology Notes, 3, pp. 317-320
  • Evanno, G., Regnaut, S., Goudet, J., Detecting the number of clusters of individuals using the software STRUCTURE: a simulation study (2005) Molecular Ecology, 14, pp. 2611-2620
  • Excoffier, L., Laval, G., Schneider, S., Arlequin (version 3.0): an integrated software package for population genetic data analysis (2005) Evolutionary Bioinformatics Online, 1, pp. 47-50
  • Folmer, O., Black, M., Hoeh, W., Lutz, R., Vrijenhoek, R., DNA primers for amplification of mitochondrial cytochrome c oxidase subunit I from diverse metazoan invertebrates (1994) Molecular Marine Biology and Biotechnology, 3, pp. 294-299
  • Fu, Y.X., Statistical tests of neutrality of mutations against population growth, hitchhiking and background selection (1997) Genetics, 147, pp. 915-925
  • Gillis, N.K., Walters, L.J., Fernandes, F.C., Hoffman, E.A., Higher genetic diversity in introduced than in native populations of the mussel Mytella charruana: evidence of population admixture at introduction sites (2009) Diversity and Distributions, 15, pp. 784-795
  • Goudet, J., (2001), http://www.unil.ch/izea/softwares/fstat.html, FSTAT, a program to estimate and test gene diversities and fixation indices (version 396 2.9.3). Available from; Griffiths, R.W., Schloesser, D.W., Leach, J.H., Kovalak, W.P., Distribution and dispersal of the zebra mussel (Dreissena polymorpha) in the Great Lakes region (1991) Canadian Journal of Fisheries and Aquatic Sciences, 48, pp. 1381-1388
  • Hampton, J.O., Spencer, P.B.S., Alpers, D.L., Twigg, L.E., Woolnough, A.P., Doust, J., Molecular techniques, wildlife management and the important of genetic population structure and dispersal: a case study with feral pigs (2004) Journal of Applied Ecology, 41, pp. 735-743
  • Hastings, A., Cuddington, K., Davies, K.F., Dugaw, C.J., Elmendorf, S., Freestone, A., Harrrison, S., Thomson, D., The spatial spread of invasions: new developments in theory and evidence (2005) Ecology Letters, 8, pp. 91-101
  • Hedgecock, D., Li, G., Hubert, S., Bucklin, K., Ribes, V., Widespread null alleles and poor cross-species amplification of microsatellite DNA loci cloned from the Pacific oyster, Crassostrea gigas (2004) Journal of Shellfish Research, 23, pp. 379-385
  • Hickey, V., The quagga mussel crisis at Lake Mead National Recreation Area, Nevada (USA) (2010) Conservation Biology, 24, pp. 931-937
  • Hughes, J., Baker, A.M., Bartlett, C., Bunn, S., Goudkamp, K., Somerville, J., Past and present patterns of connectivity among populations of four cryptic species of freshwater mussels Velesunio spp. (Hyriidae) in central Australia (2004) Molecular Ecology, 10, pp. 3197-3212
  • Imo, M., Seitz, A., Johannesen, J., Distribution and invasion genetics of the quagga mussel (Dreissena rostriformis bugensis) in German rivers (2010) Aquatic Ecology, 44, pp. 731-740
  • Johnson, L.E., Ricciardi, A., Carlton, J.T., Overland dispersal of aquatic invasive species: a risk assessment of mechanisms associated with transient recreational boating (2001) Ecological Applications, 11, pp. 1789-1799
  • Karatayev, A.Y., Boltovskoy, D., Padilla, D.K., Burlakova, L.E., The invasive bivalves Dreissena polymorpha and Limnoperna fortunei: parallels, contrasts, potential spread and invasion impacts (2007) Journal of Shellfish Research, 26, pp. 205-213
  • Li, G., Hedgecock, D., Genetic heterogeneity, detected by PCR-SSCP, among samples of larval Pacific oysters (Crassostrea gigas) supports the hypothesis of large variance in reproductive success (1998) Canadian Journal of Fisheries and Aquatic Sciences, 55, pp. 1025-1033
  • Mantel, N.A., The detection of disease clustering and a generalized regression approach (1967) Cancer Research, 27, pp. 209-220
  • Marsden, J.E., Spidle, A., May, B., Genetic similarity among zebra mussel populations within North America and Europe (1995) Canadian Journal of Fisheries and Aquatic Sciences, 52, pp. 836-847
  • McMahon, R.F., The physiological ecology of the zebra mussel, Dreissena polymorpha, in North America and Europe (1996) America Zoologist, 36, pp. 339-363
  • Mineur, F., Davies, A.J., Maggs, C.A., Verlaque, M., Johnson, M.P., Fronts, jumps and secondary introductions suggested as different invasion patterns in marine species, with an increase in spread rates over time (2010) Proceedings of the Royal Society B, 277, pp. 2693-2701
  • Müller, J.C., Hidde, D., Seitz, A., Canal construction destroys the barrier between major European invasion lineages of the zebra mussel (2002) Proceedings of the Royal Society Series B, 269, pp. 1139-1142
  • Oliveira, M.D., Takeda, A.M., Barros, L.F., Barbosa, D.S., Resende, E.K., Invasion by Limnoperna fortunei (Dunker, 1857) (Bivalvia: Mytilidae) of the Pantanal Wetland, Brazil (2006) Biological Invasions, 8, pp. 97-104
  • van Oosterhout, C., Hutchinson, W.F., Wills, D.P.M., Shipley, P., MICRO-CHECKER: software for identifying and correcting genotyping errors in microsatellite data (2004) Molecular Ecology Notes, 4, pp. 535-538
  • Paolucci, E.M., Cataldo, D.H., Fuentes, C.M., Boltovskoy, D., Larvae of the invasive species Limnoperna fortunei (Bivalvia) in the diet of fish larvae in the Paraná River, Argentina (2007) Hydrobiologia, 589, pp. 219-233
  • Pastorino, G., Darrigran, G., Martin, S.M., Lunaschi, L., Limnoperna fortunei (Dunker 1857) (Mytilidae), Nuevo bivalvo invasor en aguas del Río de la Plata (1993) Neotropica, 39, p. 34
  • Pie, M.R., Boeger, W.A., Patella, L., Falleiros, R.M., A fast and accurate molecular method for the detection of larvae of the golden mussel Limnoperna fortunei (Mollusca: Mytilidae) in plankton samples (2006) Journal of Molluscan Studies, 23, pp. 218-219
  • Pritchard, J.K., Stephens, M., Donnelly, P., Inference of population structure using multilocus genotype data (2000) Genetics, 155, pp. 945-959
  • Raymond, M., Rousset, F., Genepop (version 1.2): population genetic software for exact tests and ecumenicism (1995) Journal of Heredity, 86, pp. 248-249
  • Ricciardi, A., Global range expansion of the Asian mussel Limnoperna fortunei (Mytilidae): Another fouling threat to freshwater systems (1998) Biofouling, 13, pp. 97-106
  • Ricciardi, A., Serrouya, R., Whoriskey, F.G., Aerial exposure tolerance of zebra and quagga mussels (Bivalvia: Dreissenidae): implication for overland dispersal (1994) Canadian Journal of Fisheries and Aquatic Sciences, 52, pp. 470-477
  • Rice, R.W., Analyzing tables of statistical tests (1989) Evolution, 43, pp. 223-225
  • Rogers, A.R., Harpending, H.C., Population growth makes waves in the distribution of pairwise genetic differences (1992) Molecular Biology and Evolution, 9, pp. 552-569
  • Rozas, J., Sanchez-DelBarrio, J.C., Messeguer, X., Rozas, R., DnaSP, DNA polymorphism analyses by the coalescent and other methods (2003) Bioinformatics, 19, pp. 2496-2497
  • Schneider, S., Excoffier, L., Estimation of past demographic parameters from the distribution of pairwise differences when the mutation rates vary among sites: application to human mitochondrial DNA (1999) Genetics, 152, pp. 1079-1089
  • Schuelke, M., An economic method for the fluorescent labeling of PCR fragments (2000) Nature Biotechnology, 18, pp. 233-234
  • Son, M.O., Native range of the zebra mussel and quagga mussel and new data on their invasions within the Ponto-Caspian Region (2007) Aquatic Invasions, 2, pp. 174-184
  • Stoeckel, J.A., Schneider, D.W., Soeken, L.A., Blodgett, K.D., Sparks, R.E., Larval dynamics of a riverine metapopulation: implications for zebra mussel recruitment, dispersal and control in a large river system (1997) Journal of North American Benthological Society, 16, pp. 586-601
  • Tajima, F., Statistical-method for testing the neutral mutation hypothesis by DNA polymorphism (1989) Genetics, 123, pp. 585-595
  • Therriault, T.W., Orlova, M.I., Docker, M.F., MacIsaac, H.J., Heath, D.D., Invasion genetics of a freshwater mussel (Dreissena rostriformis bugensis) in eastern Europe: high gene flow and multiple introductions (2005) Heredity, 95, pp. 16-23
  • Travers, M.A., Basuyaux, O., Goïc, E.L., Huchette, S., Nicolas, J.L., Koken, M., Paillard, C., Influence of temperature and spawning effort on Haliotis tuberculata mortalities caused by Vibrio harveyi: an example of emerging vibriosis linked to global warming (2009) Global Change Biology, 15, pp. 1365-1376
  • Wilson, A.B., Naish, K.A., Boulding, E.G., Multiple dispersal strategies of the invasive quagga mussel (Dreissena bugensis) as revealed by microsatellite analysis (1999) Canadian Journal of Fisheries and Aquatic Sciences, 56, pp. 2248-2261
  • Wilson, J.R.U., Dormontt, E.E., Prentis, P.J., Lowe, A.J., Richardson, D.M., Something in the way you move: dispersal pathways affect invasion success (2009) Trends in Ecology and Evolution, 24, pp. 136-144
  • Zhan, A., Bao, Z., Hu, X., Hui, M., Wang, M., Peng, W., Zhao, H., Hu, J., Isolation and characterization of 150 novel microsatellite markers for Zhikong scallop (Chlamys farreri) (2007) Molecular Ecology Notes, 7, pp. 1015-1022
  • Zhan, A., Hu, J., Hu, X., Zhou, Z., Hui, M., Wang, S., Peng, W., Bao, Z., Fine-scale population genetic structure of Zhikong scallop (Chlamys farreri): do local marine currents drive geographical differentiation? (2009) Marine Biotechnology, 11, pp. 223-235
  • Zhan, A., MacIsaac, H.J., Cristescu, M.E., Invasion genetics of the Ciona intestinalis species complex: from regional endemism to global homogeneity (2010) Molecular Ecology, 19, pp. 4678-4694

Citas:

---------- APA ----------
Zhan, A., Perepelizin, P.V., Ghabooli, S., Paolucci, E., Sylvester, F., Sardiña, P., Cristescu, M.E.,..., Macisaac, H.J. (2012) . Scale-dependent post-establishment spread and genetic diversity in an invading mollusc in South America. Diversity and Distributions, 18(10), 1042-1055.
http://dx.doi.org/10.1111/j.1472-4642.2012.00894.x
---------- CHICAGO ----------
Zhan, A., Perepelizin, P.V., Ghabooli, S., Paolucci, E., Sylvester, F., Sardiña, P., et al. "Scale-dependent post-establishment spread and genetic diversity in an invading mollusc in South America" . Diversity and Distributions 18, no. 10 (2012) : 1042-1055.
http://dx.doi.org/10.1111/j.1472-4642.2012.00894.x
---------- MLA ----------
Zhan, A., Perepelizin, P.V., Ghabooli, S., Paolucci, E., Sylvester, F., Sardiña, P., et al. "Scale-dependent post-establishment spread and genetic diversity in an invading mollusc in South America" . Diversity and Distributions, vol. 18, no. 10, 2012, pp. 1042-1055.
http://dx.doi.org/10.1111/j.1472-4642.2012.00894.x
---------- VANCOUVER ----------
Zhan, A., Perepelizin, P.V., Ghabooli, S., Paolucci, E., Sylvester, F., Sardiña, P., et al. Scale-dependent post-establishment spread and genetic diversity in an invading mollusc in South America. Diversity Distrib. 2012;18(10):1042-1055.
http://dx.doi.org/10.1111/j.1472-4642.2012.00894.x