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Published in: Archives of Virology 12/2011

01-12-2011 | Original Article

Zucchini yellow mosaic virus: biological properties, detection procedures and comparison of coat protein gene sequences

Authors: B. A. Coutts, M. A. Kehoe, C. G. Webster, S. J. Wylie, R. A. C. Jones

Published in: Archives of Virology | Issue 12/2011

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Abstract

Between 2006 and 2010, 5324 samples from at least 34 weed, two cultivated legume and 11 native species were collected from three cucurbit-growing areas in tropical or subtropical Western Australia. Two new alternative hosts of zucchini yellow mosaic virus (ZYMV) were identified, the Australian native cucurbit Cucumis maderaspatanus, and the naturalised legume species Rhyncosia minima. Low-level (0.7%) seed transmission of ZYMV was found in seedlings grown from seed collected from zucchini (Cucurbita pepo) fruit infected with isolate Cvn-1. Seed transmission was absent in >9500 pumpkin (C. maxima and C. moschata) seedlings from fruit infected with isolate Knx-1. Leaf samples from symptomatic cucurbit plants collected from fields in five cucurbit-growing areas in four Australian states were tested for the presence of ZYMV. When 42 complete coat protein (CP) nucleotide (nt) sequences from the new ZYMV isolates obtained were compared to those of 101 complete CP nt sequences from five other continents, phylogenetic analysis of the 143 ZYMV sequences revealed three distinct groups (A, B and C), with four subgroups in A (I-IV) and two in B (I-II). The new Australian sequences grouped according to collection location, fitting within A-I, A-II and B-II. The 16 new sequences from one isolated location in tropical northern Western Australia all grouped into subgroup B-II, which contained no other isolates. In contrast, the three sequences from the Northern Territory fitted into A-II with 94.6-99.0% nt identities with isolates from the United States, Iran, China and Japan. The 23 new sequences from the central west coast and two east coast locations all fitted into A-I, with 95.9-98.9% nt identities to sequences from Europe and Japan. These findings suggest that (i) there have been at least three separate ZYMV introductions into Australia and (ii) there are few changes to local isolate CP sequences following their establishment in remote growing areas. Isolates from A-I and B-II induced chlorotic symptoms in inoculated leaves of Chenopodium quinoa, but an isolate from A-II caused symptomless infection. One of three commercial ZYMV-specific antibodies did not detect all Australian isolates reliably by ELISA. A multiplex real-time PCR using dual-labelled probes was developed, which distinguished between Australian ZYMV isolates belonging to phylogenetic groups A-I, A-II and B-II.
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Literature
1.
go back to reference Al-Musa AM (1989) Oversummering hosts for some cucurbit viruses in the Jordan Valley. J Phytopathol 127:49–54CrossRef Al-Musa AM (1989) Oversummering hosts for some cucurbit viruses in the Jordan Valley. J Phytopathol 127:49–54CrossRef
2.
go back to reference Al-Shahwan IM, Abdalla OA, Al-Saleh MA (1995) Response of greenhouse-grown cucumber cultivars to an isolate of zucchini yellow mosaic virus (ZYMV). Plant Dis 79:898–901 Al-Shahwan IM, Abdalla OA, Al-Saleh MA (1995) Response of greenhouse-grown cucumber cultivars to an isolate of zucchini yellow mosaic virus (ZYMV). Plant Dis 79:898–901
3.
go back to reference Bananej K, Keshavarz T, Vahdat A, Salekdeh GH, Glasa M (2008) Biological and molecular variability of Zucchini yellow mosaic virus in Iran. J Phytopathol 156:654–659CrossRef Bananej K, Keshavarz T, Vahdat A, Salekdeh GH, Glasa M (2008) Biological and molecular variability of Zucchini yellow mosaic virus in Iran. J Phytopathol 156:654–659CrossRef
4.
go back to reference Blua MJ, Perring TM (1989) Effect of Zucchini yellow mosaic virus on development and yield of cantaloupe (Cucumis melo). Plant Dis 73:317–320CrossRef Blua MJ, Perring TM (1989) Effect of Zucchini yellow mosaic virus on development and yield of cantaloupe (Cucumis melo). Plant Dis 73:317–320CrossRef
5.
go back to reference Buchen-Osmond C, Crabtree K, Gibbs A, McLean G (1988) Viruses of plants in Australia. Canberra, Australian National University Printing Services Buchen-Osmond C, Crabtree K, Gibbs A, McLean G (1988) Viruses of plants in Australia. Canberra, Australian National University Printing Services
6.
go back to reference Chen YK, Hong YH (2008) First report of Begonia chlorotic ringspot caused by Zucchini yellow mosaic virus in Taiwan. Plant Dis 92:1247CrossRef Chen YK, Hong YH (2008) First report of Begonia chlorotic ringspot caused by Zucchini yellow mosaic virus in Taiwan. Plant Dis 92:1247CrossRef
7.
go back to reference Choi SK, Yoon JY, Ryu KH, Choi JK, Park WM (2002) First report of Zucchini yellow mosaic virus on hollyhock (Althaea rosea). Plant Pathol J 18:121–125 Choi SK, Yoon JY, Ryu KH, Choi JK, Park WM (2002) First report of Zucchini yellow mosaic virus on hollyhock (Althaea rosea). Plant Pathol J 18:121–125
8.
go back to reference Clark MF, Adams AN (1977) Characteristics of the microplate method of enzyme-linked immunosorbent assay for the detection of plant viruses. J Gen Virol 34:475–483PubMedCrossRef Clark MF, Adams AN (1977) Characteristics of the microplate method of enzyme-linked immunosorbent assay for the detection of plant viruses. J Gen Virol 34:475–483PubMedCrossRef
9.
go back to reference Coutts BA, Jones RAC (2005) Incidence and distribution of viruses infecting cucurbit crops in the Northern Territory and Western Australia. Aust J Agric Res 56:847–858CrossRef Coutts BA, Jones RAC (2005) Incidence and distribution of viruses infecting cucurbit crops in the Northern Territory and Western Australia. Aust J Agric Res 56:847–858CrossRef
10.
go back to reference Coutts BA, Kehoe MA, Jones RAC (2011) Minimising losses caused by Zucchini yellow mosaic virus in vegetable cucurbit crops in tropical, sub-tropical and Mediterranean environments through cultural methods and host resistance. Virus Res 159:141–160 Coutts BA, Kehoe MA, Jones RAC (2011) Minimising losses caused by Zucchini yellow mosaic virus in vegetable cucurbit crops in tropical, sub-tropical and Mediterranean environments through cultural methods and host resistance. Virus Res 159:141–160
11.
go back to reference Coutts BA, Kehoe MA, Webster CG, Wylie SJ, Jones RAC (2011) Indigenous and introduced potyviruses of legumes and Passiflora spp. from Australia: biological properties and comparison of coat protein nucleotide sequences. Arch Virol. doi:10.1007/s00705-011-1064-4 Coutts BA, Kehoe MA, Webster CG, Wylie SJ, Jones RAC (2011) Indigenous and introduced potyviruses of legumes and Passiflora spp. from Australia: biological properties and comparison of coat protein nucleotide sequences. Arch Virol. doi:10.​1007/​s00705-011-1064-4
12.
go back to reference Davis RF, Mizuki MK (1986) Seed transmission of zucchini yellow mosaic virus in squash. Phytopathology 76:1073 Davis RF, Mizuki MK (1986) Seed transmission of zucchini yellow mosaic virus in squash. Phytopathology 76:1073
13.
go back to reference Delmiglio C, Pearson MN (2006) Effects and incidence of Cucumber mosaic virus, Watermelon mosaic virus and Zucchini yellow mosaic virus in New Zealand’s only native cucurbit, Sicyos australis. Australas Plant Pathol 35:29–35CrossRef Delmiglio C, Pearson MN (2006) Effects and incidence of Cucumber mosaic virus, Watermelon mosaic virus and Zucchini yellow mosaic virus in New Zealand’s only native cucurbit, Sicyos australis. Australas Plant Pathol 35:29–35CrossRef
14.
go back to reference Desbiez C, Lecoq H (1997) Zucchini yellow mosaic virus. Plant Pathol 46:809–829CrossRef Desbiez C, Lecoq H (1997) Zucchini yellow mosaic virus. Plant Pathol 46:809–829CrossRef
15.
go back to reference Desbiez C, Wipf-Scheibel C, Lecoq H (2002) Biological and serological variability, evolution and molecular epidemiology of Zucchini yellow mosaic virus (ZYMV, Potyvirus) with special reference to Caribbean islands. Virus Res 85:5–16PubMedCrossRef Desbiez C, Wipf-Scheibel C, Lecoq H (2002) Biological and serological variability, evolution and molecular epidemiology of Zucchini yellow mosaic virus (ZYMV, Potyvirus) with special reference to Caribbean islands. Virus Res 85:5–16PubMedCrossRef
16.
go back to reference Fletcher JD, Wallace AR, Rogers BT (2000) Potyviruses in New Zealand buttercup squash (Cucurbita maxima Duch.): yield and quality effects of ZYMV and WMV 2 virus infections. New Zealand J Crop Hort Sci 28:17–26CrossRef Fletcher JD, Wallace AR, Rogers BT (2000) Potyviruses in New Zealand buttercup squash (Cucurbita maxima Duch.): yield and quality effects of ZYMV and WMV 2 virus infections. New Zealand J Crop Hort Sci 28:17–26CrossRef
17.
go back to reference Gal-On A (2007) Zucchini yellow mosaic virus: insect transmission and pathogenicity-the tails of two proteins. Mol Plant Pathol 8:139–150PubMedCrossRef Gal-On A (2007) Zucchini yellow mosaic virus: insect transmission and pathogenicity-the tails of two proteins. Mol Plant Pathol 8:139–150PubMedCrossRef
18.
go back to reference Gibbs AJ, Gower JC (1960) The use of a multiple-transfer method in plant virus transmission studies–some statistical points arising in the analysis of results. Ann Appl Biol 48:75–83CrossRef Gibbs AJ, Gower JC (1960) The use of a multiple-transfer method in plant virus transmission studies–some statistical points arising in the analysis of results. Ann Appl Biol 48:75–83CrossRef
19.
go back to reference Glasa M, Kollerova E (2007) Two biologically distinct isolates of zucchini yellow mosaic virus lack seed transmissibility in cucumber. Acta virological 51:131–133 Glasa M, Kollerova E (2007) Two biologically distinct isolates of zucchini yellow mosaic virus lack seed transmissibility in cucumber. Acta virological 51:131–133
20.
go back to reference Glasa M, Svoboda J, Novakova S (2007) Analysis of the molecular and biological variability of Zucchini yellow mosaic virus isolates from Slovakia and Czech Republic. Virus Genes 35:415–421PubMedCrossRef Glasa M, Svoboda J, Novakova S (2007) Analysis of the molecular and biological variability of Zucchini yellow mosaic virus isolates from Slovakia and Czech Republic. Virus Genes 35:415–421PubMedCrossRef
21.
go back to reference Gleason ML, Provvidenti R (1990) Absence of transmission of zucchini yellow mosaic virus from seed of pumpkin. Plant Dis 74:828CrossRef Gleason ML, Provvidenti R (1990) Absence of transmission of zucchini yellow mosaic virus from seed of pumpkin. Plant Dis 74:828CrossRef
22.
go back to reference Greber RS (1969) Viruses infecting cucurbits in Queensland. Qld J Agric Animal Sci 26:145–171 Greber RS (1969) Viruses infecting cucurbits in Queensland. Qld J Agric Animal Sci 26:145–171
23.
go back to reference Greber RS (1978) Watermelon mosaic virus 1 and 2 in Queensland cucurbit crops. Aust J Agric Res 29:1235–1245CrossRef Greber RS (1978) Watermelon mosaic virus 1 and 2 in Queensland cucurbit crops. Aust J Agric Res 29:1235–1245CrossRef
24.
go back to reference Greber RS, McLean GD, Grice MS (1987) Zucchini yellow mosaic virus in three states of Australia. Australas Plant Pathol 16:19–21CrossRef Greber RS, McLean GD, Grice MS (1987) Zucchini yellow mosaic virus in three states of Australia. Australas Plant Pathol 16:19–21CrossRef
25.
go back to reference Greber RS, Persley DM, Herrington ME (1988) Some characteristics of Australian isolates of zucchini yellow mosaic virus. Aust J Agric Res 39:1085–1094CrossRef Greber RS, Persley DM, Herrington ME (1988) Some characteristics of Australian isolates of zucchini yellow mosaic virus. Aust J Agric Res 39:1085–1094CrossRef
26.
go back to reference Ha C, Revill P, Harding RM, Vu M, Dale JL (2008) Identification and sequence analysis of potyviruses infecting crops in Vietnam. Arch Virol 153:45–60PubMedCrossRef Ha C, Revill P, Harding RM, Vu M, Dale JL (2008) Identification and sequence analysis of potyviruses infecting crops in Vietnam. Arch Virol 153:45–60PubMedCrossRef
27.
go back to reference Herrington ME (1999) Dulong QH1. Plant Varieties J 12:51–53 Herrington ME (1999) Dulong QH1. Plant Varieties J 12:51–53
28.
go back to reference Herrington ME (2001) Sunset QH1. Plant Varieties J 14:29–31 Herrington ME (2001) Sunset QH1. Plant Varieties J 14:29–31
29.
go back to reference Herrington ME, Greber RS, Brown PJ, Persley DM (1988) Inheritance of resistance to zucchini yellow mosaic virus in Cucurbita maxima cv. Queensland Blue x C. ecuadorensis. Qld J Agric Animal Sc 45:145–149 Herrington ME, Greber RS, Brown PJ, Persley DM (1988) Inheritance of resistance to zucchini yellow mosaic virus in Cucurbita maxima cv. Queensland Blue x C. ecuadorensis. Qld J Agric Animal Sc 45:145–149
30.
go back to reference Horlock CM, Persley DM (2001) Viruses affecting watermelons in south western Queensland. In: Abstracts from Australasian plant pathology society 13th Biennial conference. Cairns, 24–27 September 2001. p 222 Horlock CM, Persley DM (2001) Viruses affecting watermelons in south western Queensland. In: Abstracts from Australasian plant pathology society 13th Biennial conference. Cairns, 24–27 September 2001. p 222
31.
go back to reference Katis NI, Tsitsipis JA, Lykouressis DP, Papapanayotou A, Margaritopoulos JT, Kokinis GM, Perdikis DC, Manoussopoulos IN (2006) Transmission of Zucchini yellow mosaic virus by colonizing and non-colonizing aphids in Greece and new aphid species vectors of the virus. J Phytopathol 154:293–302CrossRef Katis NI, Tsitsipis JA, Lykouressis DP, Papapanayotou A, Margaritopoulos JT, Kokinis GM, Perdikis DC, Manoussopoulos IN (2006) Transmission of Zucchini yellow mosaic virus by colonizing and non-colonizing aphids in Greece and new aphid species vectors of the virus. J Phytopathol 154:293–302CrossRef
32.
go back to reference Lecoq H, Desbiez C, Wipf-Scheibel C, Girard M (2003) Potential involvement of melon fruit in the long distance dissemination of cucurbit potyviruses. Plant Dis 87:955–959CrossRef Lecoq H, Desbiez C, Wipf-Scheibel C, Girard M (2003) Potential involvement of melon fruit in the long distance dissemination of cucurbit potyviruses. Plant Dis 87:955–959CrossRef
33.
go back to reference Lecoq H, Wipf-Scheibel C, Chandeysson C, Lê Van A, Fabre F, Desbiez C (2009) Molecular epidemiology of Zucchini yellow mosaic virus in France: an historical overview. Virus Res 141:190–200PubMedCrossRef Lecoq H, Wipf-Scheibel C, Chandeysson C, Lê Van A, Fabre F, Desbiez C (2009) Molecular epidemiology of Zucchini yellow mosaic virus in France: an historical overview. Virus Res 141:190–200PubMedCrossRef
34.
go back to reference McLean GD, Burt JR, Thomas DW, Sproul AN (1982) The use of reflective mulch to reduce the incidence of watermelon mosaic virus in Western Australia. Crop Protection 1:491–496CrossRef McLean GD, Burt JR, Thomas DW, Sproul AN (1982) The use of reflective mulch to reduce the incidence of watermelon mosaic virus in Western Australia. Crop Protection 1:491–496CrossRef
35.
go back to reference McLean GD, Price LK (1984) Virus, viroid and mycoplasma diseases of plants in Western Australia. WA Dept of Agric Tech Bull no 68 McLean GD, Price LK (1984) Virus, viroid and mycoplasma diseases of plants in Western Australia. WA Dept of Agric Tech Bull no 68
36.
go back to reference Muller C, Brother H, von Bargen S, Buttner C (2006) Zucchini yellow mosaic virus–incidence and sources of virus infection in field-grown cucumbers and pumpkins in the Spreewald, Germany. J Plant Dis Protect 113:252–258 Muller C, Brother H, von Bargen S, Buttner C (2006) Zucchini yellow mosaic virus–incidence and sources of virus infection in field-grown cucumbers and pumpkins in the Spreewald, Germany. J Plant Dis Protect 113:252–258
37.
go back to reference Nei M, Gojobori T (1986) Simple methods for estimating the numbers of synonymous and nonsynonymous nucleotide substitutions. Mol Biol Evol 3:418–426PubMed Nei M, Gojobori T (1986) Simple methods for estimating the numbers of synonymous and nonsynonymous nucleotide substitutions. Mol Biol Evol 3:418–426PubMed
38.
go back to reference Perring TM, Farrar CA, Mayberry K, Blua MJ (1992) Research reveals pattern of cucurbit virus spread. Calif Agric 46:35–40 Perring TM, Farrar CA, Mayberry K, Blua MJ (1992) Research reveals pattern of cucurbit virus spread. Calif Agric 46:35–40
39.
go back to reference Provvidenti R, Robinson RW (1987) Lack of seed transmission in squash and melon plants infected with zucchini yellow mosaic virus. Cucurbit Genetics Cooperative Report 10:81–82 Provvidenti R, Robinson RW (1987) Lack of seed transmission in squash and melon plants infected with zucchini yellow mosaic virus. Cucurbit Genetics Cooperative Report 10:81–82
40.
go back to reference Riedle-Bauer M, Suarez B, Reinprecht HJ (2002) Seed transmission and natural reservoirs of Zucchini yellow mosaic virus in Cucurbita pepo var styriace. J Plant Dis Protect 109:200–206 Riedle-Bauer M, Suarez B, Reinprecht HJ (2002) Seed transmission and natural reservoirs of Zucchini yellow mosaic virus in Cucurbita pepo var styriace. J Plant Dis Protect 109:200–206
41.
go back to reference Robinson RW, Provvidenti R, Shail JW (1993) Tests for seedborne transmission of zucchini yellow mosaic virus. HortScience 28:694–696 Robinson RW, Provvidenti R, Shail JW (1993) Tests for seedborne transmission of zucchini yellow mosaic virus. HortScience 28:694–696
42.
go back to reference Schrijnwerkers CCFM, Huijberts N, Bos L (1991) Zucchini yellow mosaic virus; two outbreaks in the Netherlands and seed transmissibility. Neth J Plant Pathol 97:187–191CrossRef Schrijnwerkers CCFM, Huijberts N, Bos L (1991) Zucchini yellow mosaic virus; two outbreaks in the Netherlands and seed transmissibility. Neth J Plant Pathol 97:187–191CrossRef
43.
go back to reference Sebastian P, Schaefer H, Telford IRH, Renner SS (2010) Cucumber (Cucumis sativus) and melon (C. melo) have numerous wild relatives in Asia and Australia, and the sister species of melon is from Australia. Proc Natl Acad Sci USA 107:14269–14273PubMedCrossRef Sebastian P, Schaefer H, Telford IRH, Renner SS (2010) Cucumber (Cucumis sativus) and melon (C. melo) have numerous wild relatives in Asia and Australia, and the sister species of melon is from Australia. Proc Natl Acad Sci USA 107:14269–14273PubMedCrossRef
44.
go back to reference Simmons HE, Holmes EC, Stephenson AG (2008) Rapid evolutionary dynamics of zucchini yellow mosaic virus. J Gen Virol 89:1081–1085PubMedCrossRef Simmons HE, Holmes EC, Stephenson AG (2008) Rapid evolutionary dynamics of zucchini yellow mosaic virus. J Gen Virol 89:1081–1085PubMedCrossRef
45.
go back to reference Simmons HE, Holmes EC, Gildow FE, Bothe-Goralczyk MA, Stephenson AG (2011) Experimental verification of seed transmission of Zucchini yellow mosaic virus. Plant Dis 95:751–754CrossRef Simmons HE, Holmes EC, Gildow FE, Bothe-Goralczyk MA, Stephenson AG (2011) Experimental verification of seed transmission of Zucchini yellow mosaic virus. Plant Dis 95:751–754CrossRef
46.
go back to reference Svoboda J, Polak J (2002) Distribution, variability and overwintering of Zucchini yellow mosaic virus in the Czech Republic. Plant Prot Sci 38:125–130 Svoboda J, Polak J (2002) Distribution, variability and overwintering of Zucchini yellow mosaic virus in the Czech Republic. Plant Prot Sci 38:125–130
47.
go back to reference Tamura K, Dudley J, Nei M, Kumar S (2007) MEGA4: molecular evolutionary genetics analysis (MEGA) software version 4.0. Mol Biol Evol 24:1596–1599PubMedCrossRef Tamura K, Dudley J, Nei M, Kumar S (2007) MEGA4: molecular evolutionary genetics analysis (MEGA) software version 4.0. Mol Biol Evol 24:1596–1599PubMedCrossRef
48.
go back to reference Thompson JD, Higgins DG, Gibson TJ (1994) CLUSTRAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucl Acids Res 22:4673–4680PubMedCrossRef Thompson JD, Higgins DG, Gibson TJ (1994) CLUSTRAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucl Acids Res 22:4673–4680PubMedCrossRef
49.
go back to reference Thomson KG, Dietzgen RG, Gibbs AJ, Tang YC, Liesack W, Teakle DS, Stackebrandt E (1995) Identification of Zucchini yellow mosaic potyvirus by RT-PCR and analysis of sequence variability. J Virol Methods 55:83–96PubMedCrossRef Thomson KG, Dietzgen RG, Gibbs AJ, Tang YC, Liesack W, Teakle DS, Stackebrandt E (1995) Identification of Zucchini yellow mosaic potyvirus by RT-PCR and analysis of sequence variability. J Virol Methods 55:83–96PubMedCrossRef
50.
go back to reference Tobias I, Palkovics L (2003) Characterization of Hungarian isolates of zucchini yellow mosaic virus (ZYMV, potyvirus) transmitted by seeds of Cucurbita pepo var Styriaca. Pest Manag Sci 59:493–497PubMedCrossRef Tobias I, Palkovics L (2003) Characterization of Hungarian isolates of zucchini yellow mosaic virus (ZYMV, potyvirus) transmitted by seeds of Cucurbita pepo var Styriaca. Pest Manag Sci 59:493–497PubMedCrossRef
51.
go back to reference Tobias I, Szabo B, Salanki K, Sari L, Kuhlmann H, Palkovics L (2008) Seedborne transmission of Zucchini yellow mosaic virus and Cucumber mosaic virus in Styrian Hulless group of Cucurbita pepo. In: Pitrat M (ed) Cucurbitaceae 2008, Proceedings of the IXth EUCARPIA meeting on the genetics and breeding of Cucurbitaceae. INRA, Avignon, France, May 21–24, 2008, pp 189–197 Tobias I, Szabo B, Salanki K, Sari L, Kuhlmann H, Palkovics L (2008) Seedborne transmission of Zucchini yellow mosaic virus and Cucumber mosaic virus in Styrian Hulless group of Cucurbita pepo. In: Pitrat M (ed) Cucurbitaceae 2008, Proceedings of the IXth EUCARPIA meeting on the genetics and breeding of Cucurbitaceae. INRA, Avignon, France, May 21–24, 2008, pp 189–197
52.
go back to reference Torrance L, Pead MT (1986) The application of monoclonal antibodies to routine tests for two plant viruses. In: Jones RAC, Torrance L (eds) Developments in applied biology. 1 Development and applications on virus testing. Association of Applied Biologists, Wellesborne, pp 103–118 Torrance L, Pead MT (1986) The application of monoclonal antibodies to routine tests for two plant viruses. In: Jones RAC, Torrance L (eds) Developments in applied biology. 1 Development and applications on virus testing. Association of Applied Biologists, Wellesborne, pp 103–118
53.
go back to reference Wheeler JR (1992) Flora of the Kimberley region. Department of Conservation and Land Management, Como, Western Australia Wheeler JR (1992) Flora of the Kimberley region. Department of Conservation and Land Management, Como, Western Australia
54.
go back to reference Zhao MF, Chen J, Zheng HY, Adams MJ, Chen JP (2003) Molecular analysis of Zucchini yellow mosaic virus isolates from Hangzhou, China. J Phytopathol 151:307–311CrossRef Zhao MF, Chen J, Zheng HY, Adams MJ, Chen JP (2003) Molecular analysis of Zucchini yellow mosaic virus isolates from Hangzhou, China. J Phytopathol 151:307–311CrossRef
Metadata
Title
Zucchini yellow mosaic virus: biological properties, detection procedures and comparison of coat protein gene sequences
Authors
B. A. Coutts
M. A. Kehoe
C. G. Webster
S. J. Wylie
R. A. C. Jones
Publication date
01-12-2011
Publisher
Springer Vienna
Published in
Archives of Virology / Issue 12/2011
Print ISSN: 0304-8608
Electronic ISSN: 1432-8798
DOI
https://doi.org/10.1007/s00705-011-1102-0

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