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Biological and molecular characterization of Aromia bungii (Faldermann, 1835) (Coleoptera: Cerambycidae), an emerging pest of stone fruits in Europe

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  • 1.

    Lupi, D. et al. Insects and globalization: Sustainable control of exotic species in Italian agro-forestry ecosystems. Landsc. Manag. Funct. Biodivers. IOBC-WPRS Bull. 100, 87–90 (2014).

    • Google Scholar
  • 2.

    Bosco, L., Moraglio, S. T. & Tavella, L. Halyomorpha halys, a serious threat for hazelnut in newly invaded areas. J. Pest. Sci. 91, 661–670, https://doi.org/10.1007/s10340-017-0937-x (2018).

    • Article
    • Google Scholar
  • 3.

    Garonna, A. P. et al. The spread of the non-native pine tortoise scale Toumeyella parvicornis (Hemiptera: Coccidae) in Europe: a major threat to Pinus pinea in Southern Italy. iForest 11, 628–634, https://doi.org/10.3832/ifor2864-011 (2018).

    • Article
    • Google Scholar
  • 4.

    Nugnes, F., Russo, E., Viggiani, G. & Bernardo, U. First record of an invasive fruit fly belonging to Bactrocera dorsalis complex (Diptera: Tephritidae) in Europe. Insects 9, 182, https://doi.org/10.3390/insects9040182 (2018).

  • 5.

    Gressitt, J. L. Destructive long-horned beetle borers at Canton, China. Spec. Publ. Lingnan. N. H. Surv. Mus. 1, 1–60 (1942).

    • Google Scholar
  • 6.

    Kano, M., Nonaka, T., Kiriyama, S. & Iwata, R. Aromia bungii (Coleoptera: Cerambycidae), an invasive cerambycid, found at Soka, Saitama Pref., Japan, infesting cherry trees, Cerasus × yedoensis ‘Somei-yoshino’. For. Pests 63, 101–105 (2014).

    • Google Scholar
  • 7.

    Hu, J., Angeli, S., Schuetz, S., Luo, Y. & Hajek, A. E. Ecology and management of exotic and endemic Asian longhorned beetle Anoplophora glabripennis. Agric. For. Entomol. 11, 359–75 (2009).

    • Article
    • Google Scholar
  • 8.

    Burmeister, E. G., Hendrich, L. & Balke, M. Der asiatische moschusbock Aromia bungii (Faldermann, 1835) – Erstfund für Deutschland (Coleoptera: Cerambycidae). Nachr. Bl. Bay. Ent. 61(1-2), 29–31 (2012).

    • Google Scholar
  • 9.

    EPPO First report of Aromia bungii in Italy. EPPO Reporting Service, 2012/204 (2012).

  • 10.

    EPPO Aromia bungii found for the first time in Lombardia region, Italy. EPPO Reporting Service, 2013/187 (2013).

  • 11.

    EPPO New additions to the EPPO A1 and A2 Lists. EPPO Reporting Service, 2014/158 (2014).

  • 12.

    Regulation (EU) 1702 Supplementing regulation 2016/2031 of the European Parliament and of the Council by establishing the list of priority pests. Official Journal of the European Union. I. 260/8-10 (2019).

  • 13.

    Carella, D. Regional Decree, DRD N°134 del 18/11/2019. Piano d’azione regionale per la lotta al cerambice cinese Aromia bungii. 7° aggiornamento (2019).

  • 14.

    EPPO Update on the situation of Aromia bungii in Italy. EPPO Reporting Service no. 09 – 2017 (2017).

  • 15.

    Azzoni, A. Definizione dell’area delimitata per la presenza di Aromia bungii (Faldermann) in Lombardia e applicazione delle misure fitosanitarie di contenimento; D.d.u.o. 21 may 2019 – n. 7119 (2019).

  • 16.

    EPPO Aromia bungii found again in Bayern, Germany. EPPO Reporting Service no. 03 – 2017 (2017).

  • 17.

    Tischner, H. Allgemeinverfügung der Bayerischen Landesanstalt für Landwirtschaft (LfL) über Maßnahmen zur Bekämpfung des Asiatischen Moschusbockkäfers (Aromia bungii Faldermann); vom 15.04.2019, Az. IPS 4c-7322.462 (2019).

  • 18.

    EPPO First report of Aromia bungii in Japan. EPPO Reporting Service, 2013/188 (2013).

  • 19.

    Kiriyama, S., Iwata, R. & Kagaya, E. Newly discovered populations of Aromia bungii (Faldermann), an invasive cerambycid infesting cherry and Japanese apricot trees in Tatebayashi, Gunma Pref. and Fussa, Tokyo Pref. Plant. Prot. 69, 807–809 (2015).

    • Google Scholar
  • 20.

    Sugimoto, S. Collection report of Aromia bungii at Sayama Osaka Pref. Gekkan-Mushi 535, 50–5 (2015).

    • Google Scholar
  • 21.

    EPPO Aromia bungii. EPPO Bull 45, 4–8, https://doi.org/10.1111/epp.12173 (2015).

  • 22.

    Haack, R. A., Hérard, F., Sun, J. & Turgeon, J. J. Managing Invasive Populations of Asian Longhorned Beetle and Citrus Longhorned Beetle: A Worldwide Perspective. Annu. Rev. Entomol. 55(1), 521–546, https://doi.org/10.1146/annurev-ento-112408-085427 (2010).

  • 23.

    Faccoli, M., Favaro, R., Smith, M. T. & Wu, J. Life history of the Asian longhorn beetle Anoplophora glabripennis (Coleoptera Cerambycidae) in southern Europe. Agr. Forest. Entomol. 17, 188–196, https://doi.org/10.1111/afe.12096 (2015).

    • Article
    • Google Scholar
  • 24.

    Duffy, E.A.J. A monograph of the immature stages of Oriental timber beetles (Cerambycidae). London: British Museum (Natural History), 434 pp (1968).

  • 25.

    Zhang, X., Zeng, C. & Zhang, J. Bionomics and control techniques of Aromia bungii. For. Pest. Dis. 19, 9–11 (2000).

    • CAS
    • Google Scholar
  • 26.

    Hu, C. X., Ding, Y. H. & Sun, K. Research advances of Aromia bungii in China. Agric. Tech. 27, 63–67 (2007).

    • Google Scholar
  • 27.

    Garonna, A. P., Nugnes, F., Espinosa, B., Griffo, R. & Benchi, D. Aromia bungii, nuovo tarlo asiatico ritrovato in Campania. Inf. Agrar. 69, 60–62 (2013).

    • Google Scholar
  • 28.

    Ma, W. H., Sun, L. Y., Yu, L. G., Wang, J. T. & Chen, C. Y. (2007) Study on the occurrence and life history in Aromia bungii (Faldermann). Acta Agric. Boreali Sinica 22, 247–249 (2007).

    • Google Scholar
  • 29.

    Di Palma, A., Pistillo, M., Griffo, R., Garonna, A. P. & Germinara, G. S. Scanning electron microscopy of the antennal sensilla and their secretion analysis in adults of Aromia bungii (Faldermann, 1835) (Coleoptera, Cerambycidae). Insects 10, 88, https://doi.org/10.3390/insects10040088 (2019).

  • 30.

    Germinara, G. S., Pistillo, M., Griffo, R., Garonna, A. P. & Di Palma, A. Electroantennographic responses of Aromia bungii (Faldermann, 1835) (Coleoptera, Cerambycidae) to a range of volatile compounds. Insects 10, 274, https://doi.org/10.3390/insects10090274 (2019).

  • 31.

    Fukaya, M., Kiriyama, S. & Yasui, H. Mate location flight of the rednecked longicorn beetle, Aromia bungii (Coleoptera: Cerambycidae): an invasive pest lethal to Rosaceae trees. Sci. Rep. 7, 7330, https://doi.org/10.1038/s41598-017-07520-1 (2017).

  • 32.

    Men, J. et al. Behavioral responses of adults of Dastarcus helophoroides (Coleoptera: Bothrideridae) populations originated from different hosts to larval frass of Aromia bungii (Coleoptera: Cerambycidae) and their control effect on A. bungii population. Acta Entomol. Sin. 60(2), 229–236 (2017).

    • Google Scholar
  • 33.

    Xu, T. et al. Identification of a male-produced sex-aggregation pheromone for a highly invasive cerambycid beetle, Aromia bungii. Sci. Rep. 7, 7330, https://doi.org/10.1038/s41598-017-07520-1 (2017).

  • 34.

    Zou, Y. et al. Optimizing pheromone-based lures for the invasive red-necked longhorn beetle, Aromia bungii. J. Pest. Sci. 92, 1217, https://doi.org/10.1007/s10340-019-01108-6 (2019).

    • Article
    • Google Scholar
  • 35.

    Wang, J. T., Sun, L., Liu, T. & Zhang, L. Research on the occurrence character and control measure of Aromia bungii. J. Hebei. Agr. Sci. 11(2), 41–43 (2007).

    • CAS
    • Google Scholar
  • 36.

    Dlugosch, K. M. & Parker, M. Founding events in species invasions: genetic variation, adaptive evolution, and the role of multiple introductions. Mol. Ecol. 17, 431–449, https://doi.org/10.1111/j.1365-294X.2007.03538.x (2008).

  • 37.

    Valade, R. et al. Mitochondrial and microsatellite DNA markers reveal a Balkan origin for the highly invasive horse-chestnut leaf miner Cameraria ohridella (Lepidoptera, Gracillariidae). Mol. Ecol. 18(16), 3458–3470, https://doi.org/10.1111/j.1365-294X.2009.04290.x (2009).

  • 38.

    Nugnes, F. et al. Aleurocanthus spiniferus (Hemiptera: Aleyrodidae) in Europe: diffusion, hosts, molecular characterization, and its natural enemies. Insects 11, 42, 0.3390/insects11010042 (2020).

  • 39.

    Gillespie, R. G. & Roderick, G. K. Evolution: geology and climate drive diversification. Nature 509, 297–298 (2014).

  • 40.

    Bernardo, U. et al. Characterization, distribution, biology and impact on Italian walnut orchards of the invasive North-American leafminer Coptodisca lucifluella (Lepidoptera: Heliozelidae). B. Entomol. Res. 105, 210–224, https://doi.org/10.1017/S0007485314000947 (2015).

  • 41.

    Nugnes, F. et al. Genetic diversity of the invasive gall wasp Leptocybe invasa (Hymenoptera: Eulophidae) and of its Rickettsia endosymbiont, and associated sex-ratio differences. PLOS ONE, https://doi.org/10.1371/journal.pone.0124660 (2015).

  • 42.

    Myers, J. H., Simberloff, D., Kuris, A. & Carey, J. R. Eradication revisited: dealing with exotic species. Trends Ecol. Evol. 15, 316–320 (2000).

  • 43.

    Huang, P., Yu, D., Yao, J., Wang, J. & Fang, D. Identification and damages of three kinds of Longicorn as well as their synthetical prevention on plum trees. Biol. Disaster Sci. 35(1), 97–101 (2012).

    • Google Scholar
  • 44.

    Slipinski, S. A. & Escalona, H. E. Australian Longhorn Beetles Coleoptera: Cerambycidae Introduction and Subfamily Lamiinae. Csiro publishing. 2013; (i-xviii), pp. 484 (2013).

  • 45.

    Monné, M. L., Monné, M. A. & Wang, Q. General morphology, classification and biology of Cerambycidae. In: Wang, Q (Eds.), Cerambycidae of the World: Biology and Pest Management. CRC Press, Boca Raton, FL, pp. 40–46 (2017).

  • 46.

    Demelt, K. B, oder Cerambycidae. II. Part I. 52. Teil Tierwelt Deutschlands, Fischer Verlag, Jena, 115 pp (1966).

  • 47.

    Hanks, L. M. Influence of the larval host plant on reproductive strategies of cerambycid beetles. Annu. Rev. Entomol. 44, 483–505 (1999).

  • 48.

    Duffy, E. A. J. A contribution towards the biology of Aromia moschata L., the musk beetle. Proc. Trans. Br. Ent. Nat. Hist. Soc. 1947–1948, 82–110 (1949).

  • 49.

    Mazaheri, A., Hatami, B., Khajehali, J. & Sadeghi, S. E. Reproductive parameters of Aeolesthes sarta Solsky (Col., Cerambycidae) on Ulmus carpinifolia Borkh. under laboratory conditions. JAST 11, 333–343 (2007).

    • Google Scholar
  • 50.

    Sharifi, S., Javadi, J. & Chemsak, J. A. Biology of the Rosaceae Branch Borer, Osphranteria coerulescens (Coleoptera: Cerambycidae). Ann. Entomol. Soc. Am. 63(6), 1515–1520 (1970).

    • Article
    • Google Scholar
  • 51.

    Torres-Vila, L. M., Mendiola-Diaz, F. J., Conejo-Rodríguez, Y. & Sánchez-González, Á. Reproductive traits and number of matings in males and females of Cerambyx welensii (Coleoptera: Cerambycidae) an emergent pest of oaks. Bull. Entomol. Res. 106, 292–303 (2016).

  • 52.

    Lu, W. et al. Reproductive Traits of Glenea cantor (Coleoptera: Cerambycidae: Lamiinae). J. Econ. Entomol. 106(1), 215–220, https://doi.org/10.1603/EC12251 (2013).

  • 53.

    Togashi, K. & Yamashita, H. Effects of female body size on lifetime fecundity of Monochamus urussovii (Coleoptera: Cerambycidae). Appl. Entomol. Zool. 52, 79–87 (2016).

    • Article
    • Google Scholar
  • 54.

    Torres-Vila, L. M. Reproductive biology of the great capricorn beetle, Cerambyx cerdo (Coleoptera: Cerambycidae): a protected but occasionally harmful species. Bull. Entomol. Res. 107(6), 799–811, https://doi.org/10.1017/S0007485317000323 (2017).

  • 55.

    Togashi, K. Lifetime fecundity and female body size in Paraglenea fortunei (Coleoptera: Cerambycidae). Appl. Entomol. Zool. 42, 549–556 (2007).

    • Article
    • Google Scholar
  • 56.

    Keena, M. A. Anoplophora glabripennis (Coleoptera: Cerambycidae) fecundity and longevity under laboratory conditions: comparison of populations from New York and Illinois on Acer saccharum. Environ. Entomol. 31, 490–498, https://doi.org/10.1603/0046-225X-31.3.490 (2002).

    • Article
    • Google Scholar
  • 57.

    Togashi, K., Appleby, J. E., Oloumi-Sadeghi, H. & Malek, R. B. Age-specific survival rate and fecundity of adult Monochamus carolinensis (Coleoptera: Cerambycidae) under field conditions. Appl. Entomol. Zool. 4, 249–256 (2009).

    • Article
    • Google Scholar
  • 58.

    Leather, S.R. Factors affecting fecundity, fertility, oviposition, and larviposition in insects. Insect reproduction. Edited by: Leather SR, Hardie J., Boca Raton, CRC Press, 143–174 (1995).

  • 59.

    Marco, V., Taberner, A. & Castañera, P. Development and survival of immature Aubeonymus mariaefranciscae (Coleoptera: Curculionidae) at constant temperatures. Ann. Entomol. Soc. Am. 90, 169–176 (1997).

    • Article
    • Google Scholar
  • 60.

    Zilahi-Balogh, G. M., Salom, S. M. & Kok, L. T. Temperature-dependent development of the specialist predator Laricobius nigrinus Fender (Coleoptera: Derodontidae). Environ. Entomol. 32, 1322–1328 (2003).

    • Article
    • Google Scholar
  • 61.

    Keena, M. A. Effects of temperature on Anoplophora glabripennis (Coleoptera: Cerambycidae) adult survival, reproduction and egg hatch. Environ. Entomol. 35, 912–921 (2006).

    • Article
    • Google Scholar
  • 62.

    García-Ruiz, E., Marco, V. & Pérez-Moreno, I. Effects of variable and constant temperatures on the embryonic development and survival of a new grape pest, Xylotrechus arvicola (Coleoptera: Cerambycidae). Environ. Entomol. 40, 939–947 (2011).

    • Article
    • Google Scholar
  • 63.

    Wiklund, C. & Persson, A. Fecundity, and the relation of egg weight variation to offspring fitness in the speckled wood butterfly Pararge aegeria, or why don’t female butterflies lay more eggs? Oikos 40(1), 53–63 (1983).

    • Article
    • Google Scholar
  • 64.

    Rosenheim, J. A., Heimpel, G. E. & Mangel, M. Egg maturation, egg resorption and the costliness of transient egg limitation in insects. P. Roy. Soc. B-Biol. Sci. 267, 1565–1573 (2000).

  • 65.

    Haack, R. A., Keena, M. A. & Eyre, D. Life history and population dynamics of cerambycids. In: Wang Q (Eds) Cerambycidae of the World: Biology and Pest Management. CRC Press, Boca Raton, pp 71-103, 10.1201/b21851 (2017).

  • 66.

    Bybee, L. F., Millar, J. G., Paine, T. D., Campbell, K. & Hanlon C. C. Effects of temperature on fecundity and longevity of Phoracantha recurve and P. semipunctata (Coleoptera: Cerambycidae). Environ. Entomol. 33, 138–46, https://doi.org/10.1603/0046-225X-33.2.138 (2004).

  • 67.

    Chapman, T., Miyatake, T., Smith, H. K. & Partridge, L. Interactions of mating, egg production and death rates in females of the Mediterranean fruit fly, Ceratitis capitata. Proc. Biol. Sci. 265, 1879–1894, https://doi.org/10.1098/rspb.1998.0516 (1998).

  • 68.

    Kotiaho, J. S. & Simmons, L. W. Longevity cost of reproduction for males but no longevity cost of mating or courtship for females in the male dimorphic dung beetle Onthophagus binodis. J. Insect. Physiol. 49, 817–822 (2003).

  • 69.

    Wilson, K. & Hardy, I. C.W. Statistical analysis of sex ratios: an introduction in Hardy ICW, editor. In: Sex Ratios Concepts and Research Methods. [Cambridge]: Cambridge University Press. Pp. 404. (2002).

  • 70.

    Matsushita, M. B. zur Kenntnis der Cerambyciden des japanischen Reichs. J. Fac. Agric. Hokkaido Imp. Univ. 34(2), 157–445 (1933).

    • Google Scholar
  • 71.

    Gebiola, M., Bernardo, U., Monti, M. M., Navone, P. & Viggiani, G. Pnigalio agraules (Walker) and Pnigalio mediterraneus Ferrière and Delucchi (Hymenoptera: Eulophidae): two closely related valid species. J. Nat. Hist. 3, 2465–2480, https://doi.org/10.1080/00222930903105088 (2009).

    • Article
    • Google Scholar
  • 72.

    Folmer, O., Black, M., Hoeh, W., Lutz, R. & Vrijenhoek, R. DNA primers for amplification of mitochondrial cyto chrome c oxidase subunit I from diverse metazoan invertebrates. Mol. Mar. Biol. Biotech. 3, 294–299 (1994).

    • CAS
    • Google Scholar
  • 73.

    Campbell, B. C., Steffen-Campbell, J. D. & Werren, J. H. Phylogeny of the Nasonia species complex (Hymenoptera: Pteromalidae) inferred from an internal transcribed spacer (ITS2) and 28S rDNA sequences. Insect. Mol. Biol. 2, 225–237, https://doi.org/10.1111/j.1365-2583.1994.tb00142.x (1993).

  • 74.

    Hall, T. A. BioEdit: A user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucl. Acid S. 41, 95–98 (1999).

    • CAS
    • Google Scholar
  • 75.

    Tamura, K., Stecher, G., Peterson, D., Filipski, A. & Kumar, S. MEGA6: Molecular Evolutionary Genetics Analysis version 6.0. Mol. Biol. Evol. 30, 2725–2729, https://doi.org/10.1093/molbev/mst197 (2013).

  • 76.

    Jervis, M. A., Heimpel, G. E., Ferns, P. N., Harvey, J. A. & Kidd, N. C. Life-history strategies in parasitoid wasps: a comparative analysis of “ovigeny”. J. Anim. Ecol. 70, 442–458, https://doi.org/10.1046/j.1365-2656.2001.00507.x. (2001).

    • Article
    • Google Scholar
  • 77.

    Statgraphics plus Version 3.0. Manugistics. Maryland, USA (1997).


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