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Virology/Virologie

First report of wasabi mottle virus causing ringspot and vein-clearing symptoms on wasabi (Wasabia japonica) in North America

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Pages 311-322 | Accepted 30 Jul 2020, Published online: 11 Sep 2020

References

  • Adams MJ, Adkins S, Bragard C, Gilmer D, Li D, MacFarlane SA, Wong S-M, Melcher U, Ratti C, Ryu KH, ICTV Report Consortium. 2017. ICTV virus taxonomy profile: Virgaviridae. J Gen Virol. 98:1999–2000. doi:10.1099/jgv.0.000884.
  • Betz EC, MacDonald JL, Punja ZK. 2016. New and recurring pathogens of wasabi in British Columbia. Can J Plant Pathol. 38:533–534 (abstr.).
  • Brandes J. 1957. Eine elektronenmikroskopische Schnellmethode zum Nachweis faden-und stäbchenförmiger Viren, insbesondere in Kartoffeldunkelkeimen. Narachrbl Deut Pflanzenschutzdienst (Braunschweig). 9:151–152.
  • Chadwick CI, Lumpkin TA, Elberson LR. 1993. The botany, uses and production of Wasabia japonica (Miq.) (Cruciferae) Matsum. Econ Bot. 47:113–135. doi:10.1007/BF02862015.
  • Deng T-C, Tsai C-H, Ning F-Y. 2016. Identification of Wasabi mottle virus infecting wasabi in Taiwan. J Taiwan Agri Res. 65:103–108.
  • Douglas JA, Follett JM. 1992. Initial research on the production of water-grown wasabi in the Waikato. Proc Agron Soc NZ. 22:57–60.
  • Fletcher JD. 1989. Additional hosts of Alfalfa mosaic virus, Cucumber mosaic virus, and Tobacco mosaic virus in New Zealand. NZ J Crop Hort Sci. 17:361–362. doi:10.1080/01140671.1989.10428057.
  • Gibbs AJ, Wood J, Garcia-Arenal F, Ohshima K, Armstrong JS. 2015. Tobamoviruses have probably co-diverged with their eudicotyledonous hosts for at least 110 million years. Virus Evol. 1:vev019. eCollection 2015. doi:10.1093/ve/vev019.
  • Heinze C, Lesemann D-E, Ilmberger N, Willingmann P, Adam G. 2006. The phylogenetic structure of the cluster of Tobamovirus species serologically related to Ribgrass mosaic virus (RMV) and the sequence of Streptocarpus flower break virus (SFBV). Arch Virol. 151:763–774. doi:10.1007/s00705-005-0640-8.
  • Hitchborn JH, Hills GJ. 1965. Use of negative staining in electron microscopic examination of plant viruses in crude extracts. Virology. 27:528–540. doi:10.1016/0042-6822(65)90178-9.
  • Hodge WH. 1974. Wasabi — native condiment plant of Japan. Econ Bot. 28:118–129. doi:10.1007/BF02861977.
  • Kim H-M, Lee K-J. 1999. Characteristics of Tobacco mosaic virus isolated from wasabi (Eutrema wasabi) in Korea. Plant Pathol J. 15:247–250.
  • King A, Lefkowitz E, Adams MJ, Carstens EB, editors. 2011. Virus taxonomy: ninth report of the International Committee on Taxonomy of Viruses. 1st ed. Amsterdam (Netherlands): Elsevier; p. 1338.
  • Klug A. 1999. The Tobacco mosaic virus particle: structure and assembly. Phil Trans R Soc Lond B Biol Sci. 354:531–535. doi:10.1098/rstb.1999.0404.
  • Lartey RT, Voss TC, Melcher U. 1996. Tobamovirus evolution: gene overlaps, recombination, and taxonomic implications. Mol Biol Evol. 13:1327–1338. doi:10.1093/oxfordjournals.molbev.a025579.
  • Llamas-Llamas ME, Zavaleta-Mejia E, Gonzalez-Hernandez VA, Cervantes-Diaz L, Santizo-Rincon JA, Ochoa-Martinez DL. 1998. Effect of temperature on symptom expression and accumulation of tomato spotted wilt virus in different host species. Plant Pathol. 47:341–347. doi:10.1046/j.1365-3059.1998.00249.x.
  • MacDonald JL, Betz EC, Li YQ, Punja ZK, Bouthillier MJ, DeYoung RM, Bernardy MG. 2019. First report of ringspot and vein-clearing symptoms on Wasabia japonica plants associated with Wasabi mottle virus in North America. Can J Plant Pathol. 41:509 (abstr.).
  • MacDonald JL, Maw E, Clarke P. 2017. First identifications of aphid and diamondback moth populations on wasabi in British Columbia. J Entomol Soc BC. 114:93–96.
  • MacDonald JL, Punja ZK. 2017. Occurrence of botrytis leaf blight, anthracnose leaf spot, and white blister rust on Wasabia japonica in British Columbia. Can J Plant Pathol. 39:60–71. doi:10.1080/07060661.2017.1304021.
  • Park YH, Moon YG, Cho SE, Shin HD. 2016. First report of powdery mildew caused by Erysiphe cruciferarum on wasabi (Wasabia japonica) in Korea. Plant Dis. 100:530. doi:10.1094/PDIS-08-15-0877-PDN.
  • Punja ZK, Chandanie WA, Chen X, Rodríguez G. 2017. Phoma leaf spot of wasabi (Wasabia japonica) caused by Leptosphaeria biglobosa. Plant Pathol. 66:480–489. doi:10.1111/ppa.12589.
  • Rodríguez G, Punja ZK. 2007. Root infection of wasabi (Wasabia japonica) by Pythium species. Can J Plant Pathol. 29:79–83. doi:10.1080/07060660709507440.
  • Rodríguez G, Punja ZK. 2009. Vascular blackening of wasabi rhizomes caused by Pectobacterium carotovorum subsp. carotovorum. Eur J Plant Pathol. 124:483–493. doi:10.1007/s10658-009-9435-1.
  • Stobbe AH, Melcher U, Pamer MW, Roossinck MJ, Shen G. 2012. Co-divergence and host-switching in the evolution of Tobamoviruses. J Gen Virol. 93:408–418. doi:10.1099/vir.0.034280-0.
  • Su L, Li ZN, Bernardy MG, Wiersma PA, Cheng ZH, Xiang Y. 2015. The complete nucleotide sequence and genome organization of Pea streak virus (genus Carlavirus). Arch Virol. 160:2651–2654. doi:10.1007/s00705-015-2467-2.
  • Untiveros M, Perez-Egusquiza Z, Clover G. 2010. PCR assays for the detection of members of the genus Ilarvirus and family Bromoviridae. J Virol Meth. 165:97–104. doi:10.1016/j.jviromet.2010.01.011.
  • van der Heijden MW, Bol JF. 2002. Composition of alphavirus-like replication complexes: involvement of virus and host encoded proteins. Arch Virol. 147:875–898. doi:10.1007/s00705-001-0773-3.
  • van Regenmortel MHV, Fauquet CM, Bishop DHL, Carstens EB, Estes MK, Lemon SM, Maniloff J, Mayo MA, McGeoch DJ, Pringle CR, et al. 2000. Chapter, Family Bromoviridae. In: International Committee on Taxonomy of Viruses, Van Regenmortel MHV, editors. Virus taxonomy: seventh report of the International Committee on Taxonomy of Viruses. 1st ed. San Diego (USA): Academic Press; p. 923–935.
  • Wilson CR. 1998. First report of Cucumber mosaic cucumovirus on wasabi in Australia. Plant Dis. 82:590–590. doi:10.1094/PDIS.1998.82.5.590A.
  • Zaitlin M. 1999. Elucidation of the genome organization of Tobacco mosaic virus. Phil Trans R Soc Lond B Biol Sci. 354:587–591. doi:10.1098/rstb.1999.0410.

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