Published October 30, 2020 | Version v1
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The Matsucoccus Cockerell, 1909 of Florida (Hemiptera: Coccomorpha: Matsucoccidae): Potential pests of Florida pines

  • 1. Florida State Collection of Arthropods Division of Plant Industry, Florida Department of Agriculture and Consumer Services 1911 SW 34 Street Gainesville, FL 32608, USA zaheerento@gmail.com
  • 2. Department of Entomology and Plant Pathology Auburn University Museum of Natural History Room 301, Funchess Hall Auburn University, AL 36849, USA
  • 3. Molecular Diagnostics Laboratory Division of Plant Industry, Florida Department of Agriculture and Consumer Services 1911 SW 34 Street Gainesville, FL 32608, USA
  • 4. Florida State Collection of Arthropods Division of Plant Industry, Florida Department of Agriculture and Consumer Services 1911 SW 34 Street Gainesville, FL 32608, USA

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Ahmed, Muhammad Z., Ray, Charles H., Moore, Matthew R., Miller, Douglass R. (2020): The Matsucoccus Cockerell, 1909 of Florida (Hemiptera: Coccomorpha: Matsucoccidae): Potential pests of Florida pines. Insecta Mundi 2020 (810): 1-31, DOI: 10.5281/zenodo.4565418

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  • Ahmed MZ, Miller DR. 2020. Matsucoccus alabamae Morrison, Alabama pine scale (Matsucoccidae: Coccomorpha: Hemiptera): a potential pest of Florida pines. Florida Department of Agriculture and Consumer Services, FDACS-P-02144, Entomology Circular 444: 1-5.
  • Amouroux P, Crochard D, Germain JF, Correa M, Ampuero J, Groussier G, Kreiter P, Malausa T, Zaviezo T. 2017. Genetic diversity of armored scales (Hemiptera: Diaspididae) and soft scales (Hemiptera: Coccidae) in Chile. Scientific Reports 7: 2014.
  • Aughanbaugh J. 1949. The Matsucoccus scale (Matsucoccus gallicolus) in pitch pine plantations. Pennsylvania Forests and Waters 1(8): 182-186.
  • Booth JM, Gullan PJ. 2006. Synonymy of three pestiferous Matsucoccus scale insects (Hemiptera: Coccoidea: Matsucoccidae) based on morphological and molecular evidence. Proceedings of the Entomological Society of Washington 108: 749-760.
  • Boratynski KL. 1952. Matsucoccus pini (Green, 1925) (Homoptera, Coccoidea: Margarodidae). Bionomics and external anatomy with reference to the variability of some taxonomic characters. Transactions of the Royal Entomological Society of London 103: 285-326.
  • Chen P, Liu Q, Qiao X, Wang J, Zhang T. 2018. Identification and phylogenetic analysis of pear psyllids (Hemiptera: Psyllidae) in Chinese pear orchards. Journal of Economic Entomology 20: 1-6.
  • Collins RA, Boykin LM, Cruickshank RH, Armstrong K. 2012. Barcoding's next top model: an evaluation of nucleotide substitution models for specimen identification. Methods in Ecology and Evolution 3: 457-465.
  • Dietrich CH, Rakitov RA, Holmes JL, Black WC IV. 2001. Phylogeny and the major lineages of Membracoidea (Insecta: Hemiptera: Cicadamorpha) based on 28S rDNA sequences. Molecular Phylogenetics and Evolution 18: 293-305.
  • Dowton M, Austin AD. 1998. Relationships among the microgastroid wasps (Hymenoptera: Braconidae): combined analysis of 16s and 28s rDNA genes and morphological data. Molecular Phylogenetics and Evolution 10: 354-366.
  • Dunkelblum E, Mendel Z, Assael F, Harel M, Kerhoas L, Einhorn J. 1993. Identification of the female sex pheromone of the Israeli pine bast scale Matsucoccus josephi. Tetrahedron Letters 34: 2805-2808.
  • Edgar RC. 2004. MUSCLE: multiple sequence alignment with high accuracy and high throughput. Nucleic Acids Research 32: 1792-1797.
  • Foldi I. 2005. The Matsucoccidae in the Mediterranean basin with a world list of species (Hemiptera: Sternorrhyncha: Coccoidea). Annales de la Societe Entomologique de France 40(2) (2004): 145-168.
  • Folmer O, Black M, Hoeh W, Lutz R, Vrijenhoek R. 1994. DNA primers for amplification of mitochondrial cyctochrome c oxidase subunit I from diverse metazoan invertebrates. Molecular Marine Biology and Biotechnology 3: 294-299.
  • Guindon S, Dufayard JF, Lefort V, Anisimova M, Hordijk W, Gascuel O. 2010. New algorithms and methods to estimate maximum-likelihood phylogenies: assessing the performance of PhyML 3.0. Systematic Biology 59(3): 307-21.
  • Gwiazdowski RA, Foottit RG, Maw HEL, Hebert PDN. 2015. The Hemiptera (Insecta) of Canada: constructing a reference library of DNA barcodes. PLoS ONE 10(4): e0125635.
  • Herbert FB. 1919. A new species of Matsucoccus from pines in California (Hemip.-Homop.). Proceedings of the Entomological Society of Washington 21: 157-161.
  • Herbert FB. 1921. The genus Matsucoccus with a new species. Proceedings of the Entomological Society of Washington 23: 15-22.
  • Hebert PDN, Penton EH, Burns JM, Janzen DH, Hallwachs W. 2004. Ten species in one: DNA barcoding reveals cryptic species in the neotropical skipper butterfly Astraptes fulgerator. Proceedings of the National Academy of Sciences 101: 14812-14817.
  • Hoang DT, Chernomor O, von Haeseler A, Minh BQ, Vinh LS. 2017. UFBoot2: improving the ultrafast bootstrap approximation. Molecular Biology and Evolution 35: 518-522.
  • Hoang DT, Vinh LS, Flouri T, Stamatakis A, von Haeseler A, Minh BQ. 2018. MPBoot: fast phylogenetic maximum parsimony tree inference and bootstrap approximation. BMC Evolutionary Biology 18: 1-11.
  • Kalyaanamoorthy S., Minh BQ, Wong TKF, von Haeseler A, Jermiin LS. 2017. ModelFinder: fast model selection for accurate phylogenetic estimates. Nature Methods 14: 587-589.
  • Kang AR, Baek JY, Lee SH, Cho YS, Kim W, Han YS, Kim IS. 2010. Geographic homogeneity and high gene flow of the pear psylla, Cacopsylla pyricola (Hemiptera: Psyllidae), detected by mitochondrial COI gene and nuclear ribosomal internal transcribed spacer 2. Animal Cells and Systems 16: 145-153.
  • Kanturski M, Lee Y, Choi J, Lee S. 2018. DNA barcoding and a precise morphological comparison revealed a cryptic species in the Nippolachnus piri complex (Hemiptera: Aphididae: Lachninae). Scientific Reports 8: 8998.
  • Katoh H, Inoue H, Kuchiki F, Ide Y, Uechi N, Iwanami T. 2013. Identification of a distinct lineage of Cacopsylla chinensis (Hemiptera: Psyllidae) in Japan on the basis of two mitochondrial DNA sequences. Journal of Economic Entomology 106: 536-542.
  • Katoh H, Inoue H, Uechi N, Fujikawa T, Miyata S, Iwanami T. 2014. Analysis of the genetic population structure of Cacopsylla chinensis (Hemiptera: Psyllidae) with mitochondrial DNA markers in Saga and Yamaguchi prefectures, Japan. Japan Agricultural Research Quarterly 48: 413-417.
  • Katoh K, Rozewicki J, Yamada KD. 2019. MAFFT online service: multiple sequence alignment, interactive sequence choice and visualization. Briefings in Bioinformatics 20(4): 1160-1166.
  • Kimura M. 1980. A simple method for estimating evolutionary rate of base substitutions through comparative studies of nucleotide sequences. Journal of Molecular Evolution 16: 111-120.
  • Kumar S, Stecher G, Li M, Knyaz C, Tamura K. 2018. MEGA X: Molecular Evolutionary Genetics Analysis across Computing Platforms. Molecular Biology and Evolution 35(5): 1547-1549.
  • Lee HC, Yang MM, Yeh WB. 2008. Identification of two invasive Cacopsylla chinensis (Hemiptera: Psyllidae) lineages based on two mitochondrial sequences and restriction fragment length polymorphism of cytochrome oxidase I amplicon. Journal of Economic Entomology 101: 1152-1157.
  • Leite LAR. 2012. Mitochondrial pseudogenes in insect DNA barcoding: differing points of view on the same issue. Biota Neotropica 12: 301-308.
  • Lindgren BS. 1983. A multiple funnel trap for scolytid beetles (Coleoptera). Canadian Entomologist 115: 299-302.
  • McCambridge WF, Pierce DA. 1964. Observations on the life history of the pinyon needle scale Matsucoccus acalyptus (Homoptera, Coccoidea, Margarodidae). Annals of the Entomological Society of America 57: 197-200.
  • McClure MS. 1981. A new (?) insect pest of red pine in Connecticut. Frontiers of Plant Science, Connecticut Agricultural Experiment Station 33: 4-6.
  • McKenzie HL. 1941. A new species of Matsucoccus attacking pinon pine in California (Homoptera; Coccoidea; Margarodidae). Microentomology 6: 2-5.
  • McKenzie HL. 1942. Seasonal history of the margarodid scale, Matsucoccus bisetosus Morrison, occurring on ponderosa and Jeffrey pines in California (Homoptera; Coccoidea; Margarodidae). (Contribution No. 31). Microentomology 7: 19-24.
  • McKenzie HL. 1943. The seasonal history of Matsucoccus vexillorum Morrison (Homoptera; Coccoidea; Margarodidae). (Contribution No. 39.) Microentomology 8: 42-52.
  • McKenzie HL, Gill LS, Ellis DE. 1948. The Prescott scale (Matsucoccus vexillorum) and associated organisms that cause flagging injury to ponderosa pine in the Southwest. Journal of Agricultural Research 76: 33-51.
  • Mech AM, Asaro C, Cram MM, Coyle DR, Gullan PJ, Cook LG, Gandhi KJK. 2013. Matsucoccus macrocicatrices (Hemiptera: Matsucoccidae): First report, distribution, and association with symptomatic eastern white pine in the southeastern United States. Journal of Economic Entomology 106(6): 2391-2398.
  • Mendel Z, Assael F, Saphir N, Zehavi A, Nestel D, Schiller G, Ne'eman G. 1997. Seedling mortality in regeneration of Aleppo pine following fire and attack by the scale insect Matsucoccus josephi. International Journal of Wildland Fire 7(4): 327-333.
  • Mendel Z, Assael F, Dunkelblum E. 2004. Kairomonal attraction of predatory bugs (Heteroptera: Anthocoridae) and brown lacewings (Neuroptera: Hemerobiidae) to sex pheromones of Matsucoccus species (Hemiptera: Matsucoccidae). Biological Control 30(2): 134-140.
  • Morrison H. 1928. A classification of the higher groups and genera of the coccid family Margarodidae. United States Department of Agriculture Technical Bulletin 52: 1-239.
  • Morrison H. 1939. Descriptions of new species of Matsucoccus (Hemiptera: Coccidae). Proceedings of the Entomological Society of Washington 41: 1-20.
  • Park DS, Suh SJ, Oh HW, Hebert PDN. 2010. Recovery of the mitochondrial COI barcode region in diverse Hexapoda through tRNA-based primers. BMC Genomics 11: 423.
  • Parr T. 1939. Matsucoccus sp. a scale insect injurious to certain pines in the northeast (Hemiptera-Homoptera). Journal of Economic Entomology 32: 624-630.
  • Qi JL, Wang YY. 1981. Studies on the Yunnan bast scale. Scientia Silvae Sinicae 17: 20-25.
  • Ray CH. 1982. Revision of the Genus Matsucoccus (Homoptera: Coccoidea: Margarodidae) in North America. Auburn University, Ph.D. thesis [unpublished]. Auburn, Alabama. 295 p.
  • Rieux R. 1976. Matsucoccus pini Green (1925) (Homoptera, Margarodidae) dans le Sud-Est de la France. Variations intraspecifiques. Comparaison avec des especes les plus proches. Annales de Zoologie. Ecologie Animale 8: 231-263.
  • Riom J, Fabre JP. 1979. Decalage phenologique des eclosions des deux sexes chez Matsucoccus feytaudi Duc. (Homoptera, Coccoidea, Margarodidae). Comptes Rendus Hebdomadaires des Seances de l'Academie des Sciences, Serie D. Paris 288(1): 89-92.
  • Shin HC, Lee SM, Lee KS, Kim YK. 2003. Analysis on the recovering and damage caused by Matsucoccus thunbergianae in Pinus thunbergii stand. KFRI Journal of Forest Science 66: 1-10.
  • Shin S, Jung S, Lee H, Lee S. 2013. Molecular identification of dipteran pests (Diptera: Sciaroidea) from shiitake mushroom. Molecular Ecology Resources 13: 200-209.
  • Song H, Buhay JE, Whiting MF, Crandall KA. 2008. Many species in one: DNA barcoding overestimates the number of species when nuclear mitochondrial pseudogenes are coamplified. Proceedings of the National Academy of Sciences 105: 13468-13491.
  • Song C, Lin XL, Wang Q, Wang XH. 2018. DNA barcodes successfully delimit morphospecies in a superdiverse insect genus. Zoological Scripta 47: 311-324.
  • Srivathsan A, Meier R. 2011. On the inappropriate use of Kimura-2-parameter (K2P) divergences in the DNA-barcoding literature. Cladistics 28: 190-194.
  • Tautz D, Hancock JM, Webb DA, Tautz C, Dover GA. 1988. Complete sequences of the ribosomal rRNA genes of Drosophila melanogaster. Molecular Biology and Evolution 5: 366-376.
  • Trifinopoulos J, Nguyen LT, von Haeseler A, Minh BQ. 2016. W-IQ-TREE: a fast online phylogenetic tool for maximum likelihood analysis. Nucleic Acids Research 44: W232-W235.
  • Unruh TR, Luck RF. 1987. Deme formation in scale insects: A test with pinyon pine scale and a review of other evidence. Ecological Entomology 12: 439-449.
  • Vea IM, Grimaldi DA. 2016. Putting scales into evolutionary time: the divergence of major scale insect lineages (Hemiptera) predates the radiation of modern angiosperm hosts. Scientific Reports 6: 23487.
  • von Dohlen CD, Moran NA. 1995. Molecular phylogeny of the Homoptera: a paraphyletic taxon. Journal of Molecular Evolution 41: 211-223.
  • Whiting MF, Carpenter JC, Wheeler QD, Wheeler WC. 1997. The Strepsiptera problem: phylogeny of the holometabolous insect orders inferred from 18s and 28s ribosomal DNA sequences and morphology. Systematic Biology 46: 1-68.
  • Wu Y, Trepanowski NF, Molongoski JJ, Reagel PF, Lingafelter SW, Nadel H, Myers SW, Ray AM. 2016. Identification of wood-boring beetles (Cerambycidae and Buprestidae) intercepted in trade-associated solid wood packaging material using DNA barcoding and morphology. Scientific Reports 7: 40316.
  • Yeh WB, Yang CT, Kang SC. 1997. Identification of two sibling species, Ephemera formosana and E. sauteri (Ephemeroptera: Ephemeridae), based on mitochondrial DNA sequence analysis. Chinese Journal of Entomology 17: 257-268.
  • Young BL, Hu JL, Ren ZY. 1976. Pine bast scales from China. Acta Entomologica Sinica 19: 199-204.
  • Young BL, Hu JL, Ren ZY. 1980. On pine needle scales. Acta Entomologica Sinica 23: 42-46.