Published December 15, 2021 | Version v1
Journal article Restricted

First record of Cnemidochroma phyllopus (Coleoptera: Cerambycidae) in the province of Corrientes, Argentina and potential distribution in the southern part of South America

  • 1. Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Corrientes 3400. & Facultad de Ciencias Exactas y Naturales y Agrimensura, Universidad Nacional del Nordeste, Avda. Libertad 5470. (3400) Corrientes, Argentina. & gerardovalle34@gmail.com; https://orcid.org/0000-0002-9415-278X
  • 2. Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Corrientes 3400. & Facultad de Ciencias Exactas y Naturales y Agrimensura, Universidad Nacional del Nordeste, Avda. Libertad 5470. (3400) Corrientes, Argentina. & mario.ibarrapolesel@exa.unne.edu.ar; https://orcid.org/0000-0002-3211-4438
  • 3. Departamento de Zoologia, Universidade Federal do Paraná (UFPR), 81531-980, Curitiba, PR, Brazil. marianabioar@gmail.com; https://orcid.org/0000-0001-6114-7290
  • 4. Museu Nacional, Universidade Federal de Rio de Janeiro, Quinta da Boa Vista, São Cristóvão, 20940-040 Rio de Janeiro, RJ, Brazil. Fellow of the Conselho Nacional de Desenvolvimento Científico e Tecnológico, CNPq.
  • 5. Facultad de Ciencias Exactas y Naturales y Agrimensura, Universidad Nacional del Nordeste, Avda. Libertad 5470. (3400) Corrientes, Argentina. & mdambor@exa.unne.edu.ar; https://orcid.org/0000-0003-2627-458X

Description

Valle, Néstor G., Ibarra-Polesel, Mario G., Cherman, Mariana Alejandra, Monné, Marcela L., Damborsky, Miryam P. (2021): First record of Cnemidochroma phyllopus (Coleoptera: Cerambycidae) in the province of Corrientes, Argentina and potential distribution in the southern part of South America. Zootaxa 5082 (1): 53-64, DOI: 10.11646/zootaxa.5082.1.5

Files

Restricted

The record is publicly accessible, but files are restricted to users with access.

Linked records

Additional details

Identifiers

URL
https://www.checklistbank.org/dataset/2945
LSID
urn:lsid:zoobank.org:pub:B4D893C6-090B-4905-83EE-E2AB5CF296F6
LSID
urn:lsid:plazi.org:pub:FFE0FFF8FFF6FFE16173FF80FFDEA874
URL
http://publication.plazi.org/id/FFE0FFF8FFF6FFE16173FF80FFDEA874

References

  • Aide, T.M., Clark, M.L., Grau, H.R., Lopez-Carr, D., Levy, M., Redo, D., Bonilla-Moheno, M., Riner, G., Andrade-Nunez, M.J. & Muniz, M. (2013) Deforestation and reforestation of Latin America and the Caribbean (2001-2010). Biotropica, 45 (2), 262-271. https://doi.org/10.1111/j.1744-7429.2012.00908.x
  • Aiello-Lammens, M.E., Boria, R.A., Radosavljevic, A., Vilela, B. & Anderson, R.P. (2015) spThin: An R package for spatial thinning of species occurrence records for use in ecological niche models. Ecography, 38, 541-545. https://doi.org/10.1111/ecog.01132
  • Akpan, G.E., Adepoju, K.A., Oladosu, O.R. & Adelabu, S.A. (2018) Dominant malaria vector species in Nigeria: Modelling potential distribution of Anopheles gambiae sensu lato and its siblings with MaxEnt. PLOS ONE, 13, e0204233. https://doi.org/10.1371/journal.pone.0204233
  • Alves-Araujo, A., Swenson, U. & Alves, M. (2014) A taxonomic survey of Pouteria (Sapotaceae) from the northern portion of the Atlantic Rainforest of Brazil. Systematic Botany, 39, 915-938. https://doi.org/10.1600/036364414X681428
  • Anderson, R.P., Lew, D. & Peterson, A.T. (2003) Evaluating predictive models of species' distributions: criteria for selecting optimal models. Ecological modelling, 162, 211-232. https://doi.org/10.1016/s0304-3800(02)00349-6
  • Araujo, M.B. & Peterson, A.T. (2012) Uses and misuses of bioclimatic envelope modeling. Ecology, 93, 1527-1539. https://doi.org/10.1890/11-1930.1
  • Bachmann, A. & Di Iorio, O. (2002) Types and related specimens of Cerambycidae and Disteniidae (Coleoptera) in the Museo Argentino de Ciencias Naturales" Bernardino Rivadavia", Buenos Aires, Argentina. Revista del Museo Argentino de Ciencias Naturales, Nueva Serie, 4, 55-93.
  • Barve, N., Barve, V., Jimenez-Valverde, A., Lira-Noriega, A., Maher, S.P., Peterson, A.T., Soberon J. & Villalobos, F. (2011) The crucial role of the accessible area in ecological niche modeling and species distribution modeling. Ecological Modelling, 222, 1810-1819. https://doi.org/10.1016/j.ecolmodel.2011.02.011
  • Baucke, O. (1955) Catalogo dos insetos encontrados no Rio Grande do Sul, Col., Cerambycidae. Boletim da Secretaria de Agricultura Industria e Comercio, Porto Alegre, 1, 1-87.
  • Beaumont, L.J., Gallagher, R.V, Thuiller, W., Downey, P.O., Leishman, M.R. & Hughes, L. (2009) Different climatic envelopes among invasive populations may lead to underestimations of current and future biological invasions. Diversity and Distributions, 15, 409-420. https://doi.org/10.1111/j.1472-4642.2008.00547.x
  • Berkov, A. (2018) Seasonality and stratification: neotropical saproxylic beetles respond to a heat and moisture continuum with conservatism and plasticity. In: Ulyshen, M.D. (Ed.), Saproxylic insects: diversity, ecology and conservation. Springer, Heidelberg, pp. 547-578.
  • Biezanko, C.M. & Bosq, J.M. (1956) Cerambycidae de Pelotas e seus arredores. Agros, Pelotas, 10, 3-15.
  • Bosq, J.M. & Ruffinelli, A. (1951) Notas para el catalogo de los Cerambicidos del Uruguay. Comunicaciones Zoologicas del Museo de Historia Natural, 3, 1-32.
  • Buck, P. (1959) Cerambycidae in der Sammlung des Instituto Anchietano de Pesquisas. Pesquisas, 3, 577-609.
  • Campbell, L.P., Luther, C., Moo-Llanes, D., Ramsey, J.M., Danis-Lozano, R. & Peterson, A.T. (2015) Climate change influences on global distributions of dengue and chikungunya virus vectors. Philosophical Transactions of the Royal Society B, 370, 20140135. https://doi.org/10.1098/rstb.2014.0135
  • Cobos, M.E., Peterson, A.T., Barve, N. & Osorio-Olvera, L. (2019) kuenm: an R package for detailed development of ecological niche models using Maxent. PeerJ, 7, e6281. https://doi.org/10.7717/peerj.6281
  • Cobos, M.E., Osorio-Olvera, L., Soberon, J., Peterson, A.T., Barve, V. & Barve, N. (2020) ellipsenm: Ecological Niche's Characterizations Using Ellipsoids. R package version 0.3.4. Available from: https://github.com/marlonecobos/ellipsenm (accessed 19 July 2021)
  • Demets, Y. (1974) Notes sur les Callichromatini (Coleoptera, Cerambycidae). III. Etude preliminaire du genre Cnemidochroma Schmidt, 1924. Papeis Avulsos de Zoologia, 28, 91-104.
  • de Siqueira, M.F., Durigan, G., de Marco Junior, P. & Peterson, A.T. (2009) Something from nothing: Using landscape similarity and ecological niche modeling to find rare plant species. Journal for Nature Conservation, 17, 25-32. https://doi.org/10.1016/j.jnc.2008.11.001
  • Di Iorio, O.R. (2005) A field guide of longhorned beetles from Argentina (Coleoptera, Cerambycidae). Digital Tech, Buenos Aires, 188 pp.
  • Elith, J., Graham, C.H., Anderson, R.P., Dudik, M., Ferrier, S., Guisan, A., Hijmans, R.J., Huettmann, F., Leathwick, J.R., Lehmann, A., Li, J., Lohmann, L.G., Loiselle, B.A., Manion, G., Moritz, C., Nakamura, M., Nakazawa, Y., Overton, J.M., Peterson, A.T., Phillips, S.J., Richardson, K., Scachetti-Pereira, R., Schapire, R.E., Soberon, J., Williams, S., Wisz, M.S. & Zimmermann, N.E. (2006) Novel methods improve prediction of species' distributions from occurrence data. Ecography, 29, 129-151. https://doi.org/10.1111/j.2006.0906-7590.04596.x
  • Elith, J., Phillips, S.J., Hastie, T., Dudik, M., Chee, Y.E. & Yates, C.J. (2011) A statistical explanation of MaxEnt for ecologists. Diversity and Distributions, 17, 43-57. https://doi.org/10.1111/j.1472-4642.2010.00725.x
  • Fassbender, J.L. (2013) Diversity, resource partitioning, and species turnover in Neotropical saproxylic beetles (Coleoptera: Cerambycidae, Curculionidae) associated with trees in the Brazil nut family (Lecythidaceae). PhD dissertation, City University of New York, New York, New York, 139 pp.
  • Fick, S.E. & Hijmans, R.J. (2017) WorldClim 2: new 1-km spatial resolution climate surfaces for global land areas. International journal of climatology, 37, 4302-4315. https://doi.org/10.1002/joc.5086
  • Flora del Conosur (2019) Available from: http://www.darwin.edu.ar/Proyectos/ FloraArgentina/DetalleEspecie.asp?forma=&va riedad=&subespecie=&especie=brasiliensis&genero=Dorstenia&es pcod=25420 (accessed 19 July 2021)
  • GBIF.org (2020) Global Biodiversity Information Facility. Available from: https://doi.org/10.15468/dl.d9czfc (accessed 19 July 2021)
  • Godown, M.E. & Peterson, A.T. (2000) Preliminary distributional analysis of US endangered bird species. Biodiversity and Conservation, 9, 1313-1322. https://doi.org/10.1023/A:1008924322405
  • Google (2019) Google Earth Pro. Version 7.3.2.5776. (accessed 19 July 2021)
  • Guisan, A. & Thuiller, W. (2005) Predicting species distribution: Offering more than simple habitat models. Ecology Letters, 8, 993-1009. https://doi.org/10.1111/j.1461-0248.2005.00792.x
  • Guisan, A., Tingley, R., Baumgartner, J.B., Naujokaitis-Lewis, I., Sutcliffe, P.R., Tulloch, A.I.T., Regan, T.J., Brotons, L., McDonald-Madden, E., Mantyka-Pringle, C., Martin, T.G., Rhodes, J.R., Maggini, R., Setterfield, S.A., Elith, J., Schwartz, M.W., Wintle, B.A., Broennimann, O., Austin, M., Ferrier, S., Kearney, M.R., Possingham, H.P. & Buckley, Y.M. (2013) Predicting species distributions for conservation decisions. Ecology Letters, 16, 1424-1435. https://doi.org/10.1111/ele.12189
  • Guisan, A. & Zimmermann, N.E. (2000) Predictive habitat distribution models in ecology. Ecological Modelling, 135, 147- 186.
  • Haack, R.A. (2017) Feeding biology of cerambycids. In: Wang, Q. (Ed.), Cerambycidae of the world. Biology and pest management. CRC Press, Boca Raton, Florida, pp. 105-124.
  • Hadley, A. (2014) CombineZM, Image Stacking Software. Available from: http://combinezm.en.lo4d.com/ (accessed 19 July 2021)
  • Herborg, L.M., O'Hara, P. & Therriault, T.W. (2009) Forecasting the potential distribution of the invasive tunicate Didemnum vexillum. Journal of Applied Ecology, 46, 64-72. https://doi.org/10.1111/j.1365-2664.2008.01568.x
  • Hijmans, R.J. (2020) raster: Geographic Data Analysis and Modeling. R package version 3.4-5. Available from: https://CRAN. R-project.org/package=raster (accessed 19 July 2021)
  • Hijmans, R.J., Phillips, S., Leathwick, J. & Elith, J. (2020) dismo: Species Distribution Modeling. R package. Version 1.3-3. Available from: https://CRAN.R-project.org/package=dismo (accessed 19 July 2021)
  • Holdefer, D.R., Sartor, V. & Mello-Garcia, F.R. (2014) Flutuacao Populacional De Especies Predominantes De Cerambycidae Em Mata Atlantica Do Sul Do Brasil. Interciencia, 39, 745-750.
  • Kamino, L.H.Y., de Siqueira, M.F., Sanchez-Tapia, A. & Stehmann, J.R. (2012) Reassessment of the Extinction Risk of Endemic Epecies in the Neotropics: How can Modelling Tools Help us? Natureza & Conservacao, 10, 191-198. https://doi.org/10.4322/natcon.2012.033
  • Lowenberg-Neto, P. (2014) Neotropical region: A shapefile of Morrone's (2014) biogeographical regionalization. Zootaxa, 3802 (2), 300. https://doi.org/10.11646/zootaxa.3802.2.12
  • Lopez-Cardenas, J., Bravo, F.E.G., Schettino, P.M.S., Solorzano, J.C.G., Barba, E.R., Mendez, J.M., Sanchez-Cordero, V., Townsend Peterson, A. & Ramsey, J.M. (2005) Fine-Scale Predictions of Distributions of Chagas Disease Vectors in the State of Guanajuato, Mexico. Journal of Medical Entomology, 42, 1068-1081. https://doi.org/10.1093/jmedent/42.6.1068
  • Martins, U.R. (2009) Cerambycidae Sul-Americanos (Coleoptera). Taxonomia, Vol. 10. Cerambycinae: Ibidionini: Compsina/ Eligmodermini, Ideratini, Callichromatini. Sociedade Brasileira de Entomologia, Sao Paulo, 373 pp.
  • Matteucci, S.D. (2012) Ecorregion Esteros del Ibera. In: Matteucci, S.D., Morello, J., Matteucci, S.D., Rodriguez, A.F. & Silva, M.E. (Eds.), Ecorregiones y complejos ecosistemicos argentinos. Orientacion Grafica Editora, Buenos Aires, pp. 293-308.
  • Merow, C., Smith, M.J. & Silander, J.A. (2013) A practical guide to MaxEnt for modeling species' distributions: what it does, and why inputs and settings matter. Ecography, 36, 1058-1069. https://doi.org/10.1111/j.1600-0587.2013.07872.x
  • Monne, M.A. (2017) Catalogue of the Cerambycidae (Coleoptera) of the Neotropical Region. Part I. Subfamily Cerambycinae. Rio de Janeiro, RJ, Brazil, 669 pp. Available from https://cerambycidae.cl/bibliografia.htm (accessed 19 July 2021)
  • Monne, M.A. (2021) Catalogue of the Cerambycidae (Coleoptera) of the Neotropical Region. Part I. Subfamily Cerambycinae. Rio de Janeiro, 1119 pp. Available from https://cerambycids.com/catalog/ (accessed 19 July 2021)
  • Morrone, J.J. (2014) Biogeographical regionalisation of the Neotropical region. Zootaxa, 3782 (1), 1-110. https://doi.org/10.11646/zootaxa.3782.1.1
  • Muscarella, R., Galante, P.J., Soley-Guardia, M., Boria, R.A., Kass, J.M., Uriarte, M. & Anderson, R.P. (2014) ENMeval: An R package for conducting spatially independent evaluations and estimating optimal model complexity for Maxent ecological niche models. Methods in ecology and evolution, 5, 1198-1205. https://doi.org/10.1111/2041-210X.12261
  • Nascimento, F.E.L. & Bravo, F. (2014) Especies de Cerambycidae (Coleoptera) coletadas nas expedicoes do PPBio Semiarido. In: Bravo, F. & Calor, A. (Eds.), Artropodes do Semiarido, biodiversidade e conservacao. Printmidia, Feira de Santana, pp. 127-138. https://doi.org/10.1007/s13398-014-0173-7.2
  • Nearns, E.H., Lord, N.P., Lingafelter, S.W., Santos-Silva, A., Miller, K.B. & Zaspel, J.M. (2019) Longicorn ID: Tool for Diagnosing Cerambycoid Families, Subfamilies, and Tribes. Longicorn ID: Tool for Diagnosing Cerambycoid Families, Subfamilies, and Tribes. Available from: https://cerambycids.com/longicornid/ (accessed 19 July 2021)
  • Olson, D.M., Dinerstein, E., Wikramanayake, E.D., Burgess, N.D., Powell, G.V.N., Underwood, E.C., D'amico, J.A., Itoua, I., Strand, H.E., Morrison, J.C., Loucks, C.J., Allnutt, T.F., Ricketts, T.H., Kura, Y., Lamoreux, J.F., Wettengel, W.W., Hedao, P. & Kassem, K.R. (2001) Terrestrial Ecoregions of the World: A New Map of Life on Earth. BioScience, 51, 933-938. https://doi.org/10.1641/0006-3568(2001)051[0933:TEOTWA]2.0.CO;2
  • Owens, H.L., Campbell, L.P., Dornak, L.L., Saupe, E.E., Barve, N., Soberon, J., Ingenloff, K., Lira-Noriega, A., Hensz, C.M., Myers, C.E. & Peterson, A.T. (2013) Constraints on interpretation of ecological niche models by limited environmental ranges on calibration areas. Ecological modelling, 263, 10-18. https://doi.org/10.1016/j.ecolmodel.2013.04.011
  • Parviainen, M., Marmion, M., Luoto, M., Thuiller, W. & Heikkinen, R.K. (2009) Using summed individual species models and state-of-the-art modelling techniques to identify threatened plant species hotspots. Biological Conservation, 142, 2501-2509. https://doi.org/10.1016/j.biocon.2009.05.030
  • Peterson, A.T. (2001) Predicting species' geographic distributions based on ecological niche modeling. The Condor, 103, 599- 605. https://doi.org/10.1650/0010-5422(2001)103[0599:PSGDBO]2.0.CO;2
  • Peterson, A.T., Martinez-Campos, C., Nakazawa, Y. & Martinez-Meyer, E. (2005) Time-specific ecological niche modeling predicts spatial dynamics of vector insects and human dengue cases. Transactions of the Royal Society of Tropical Medicine and Hygiene, 99, 647-655. https://doi.org/10.1016/j.trstmh.2005.02.004
  • Peterson, A.T., Papes, M. & Soberon, J. (2008) Rethinking receiver operating characteristic analysis applications in ecological niche modeling. Ecological modelling, 213, 63-72. https://doi.org/10.1016/j.ecolmodel.2007.11.008
  • Peterson, A.T., Soberon, J., Pearson, R.G., Anderson, R.P., Martinez-Meyer, E., Nakamura, M. & Araujo, M.B. (2011) Ecological Niches and Geographic Distributions. Princeton University Press, Princeton and Oxford, 315 pp.
  • Phillips, S.J., Anderson, R.P. & Schapire, R.E. (2006) Maximum entropy modeling of species geographic distributions. Ecological Modelling, 190, 231-259. https://doi.org/10.1016/j.ecolmodel.2005.03.026
  • Phillips, S.J., Anderson, R.P., Dudik, M., Schapire, R.E. & Blair, M.E. (2017) Opening the black box: An open-source release of Maxent. Ecography, 40, 887-893. https://doi.org/10.1111/ecog.03049
  • Piza, S.T.J. (1968) Insetos de Piracicaba. Escola Superior de Agricultura Luiz de Queiroz, Piracicaba, 123 pp.
  • QGIS Development Team (2021) QGIS. Available from: http://qgis.osgeo.org (accessed 19 July 2021)
  • Roura-Pascual, N., Suarez, A.V., Gomez, C., Pons, P., Touyama, Y., Wild, A.L. & Peterson, A.T. (2004) Geographical potential of Argentine ants (Linepithema humile Mayr) in the face of global climate change. Proceedings of the Royal Society B: Biological Sciences, 271, 2527-2534. https://doi.org/10.1098/rspb.2004.2898
  • RStudio Team (2020) RStudio: Integrated Development for R. RStudio, PBC, Boston, MA. Available from: http://www.rstudio. com/ (accessed 19 July 2021)
  • Samy, A.M., Elaagip, A.H., Kenawy, M.A., Ayres, C.F.J., Peterson, A.T. & Soliman, D.E. (2016) Climate Change Influences on the Global Potential Distribution of the Mosquito Culex quinquefasciatus, Vector of West Nile Virus and Lymphatic Filariasis. PLOS ONE, 11, e0163863. https://doi.org/10.1371/journal.pone.0163863
  • Sanchez-Tapia, A., Garbin, M.L., Siqueira, M.F., Guidoni-Martins, K.G., Scarano, F.R. & Carrijo, T.T. (2018) Environmental and geographical space partitioning between core and peripheral Myrsine species (Primulaceae) of the Brazilian Atlantic Forest. Botanical Journal of the Linnean Society, 187, 633-652. https://doi.org/10.1093/botlinnean/boy034
  • Schmidt, M. (1924) Die amerikanischen Callichrominen (col ceramb.) nach systematischen und phylogenetischen Gesichtspunkten dargestellt. Berliner entomologische Zeitschrift, 4, 378-396.
  • Simoes, M., Romero-Alvarez, D., Nunez-Penichet, C., Jimenez, L. & Cobos, M.E. (2020) General theory and good practices in ecological niche modeling: a basic guide. Biodiversity Informatics, 15, 67-68. https://doi.org/10.17161/bi.v15i2.13376
  • Soberon, J. & Peterson, A.T. (2005) Interpretation of models of fundamental ecological niches and species' distributional areas. Biodiversity Informatics, 2, 1-10. https://doi.org/10.17161/bi.v2i0.4
  • Tavakilian, G. & Chevillotte, H. (2021) Titan: base de donnees internationales sur les Cerambycidae ou Longicornes. Version 4.0. http://titan.gbif.fr/index.html (accessed 19 July 2021)
  • Warren, D.L. & Seifert, S.N. (2011) Ecological niche modeling in Maxent: the importance of model complexity and the performance of model selection criteria. Ecological Applications, 21, 335-342. https://doi.org/10.1890/10-1171.1
  • Zajciw, D. & Monne, M.A. (1968) Cerambicidos del Uruguay, nuevos o poco conocidos. Revista de la Sociedad Uruguaya de Entomologia, 7, 51-61.
  • Zikan, J.F. & Zikan, W. (1944) A inseto-fauna do Itatiaia e da Mantiqueira. Boletin do Ministerio de Agricultura, 33, 1-50.
  • Zunino, M. & Zullini, A. (2003) Biogeografia: La dimension espacial de la evolucion. Fondo de Cultura Economica, Mexico, D.F., 359 pp.