Scientia Agricultura Sinica ›› 2012, Vol. 45 ›› Issue (14): 2848-2855.doi: 10.3864/j.issn.0578-1752.2012.14.007

• PLANT PROTECTION • Previous Articles     Next Articles

Progress in Studies on Resistance to Citrus tristeza virus by Genetic Engineering Measures

 LIU  Yong-Qing, ZHOU  Chang-Yong, ZHOU  Yan   

  1. 1.湖北民族学院,湖北恩施445000
    2.中国农业科学院柑橘研究所,重庆400712
  • Received:2011-10-31 Online:2012-07-15 Published:2012-02-13

Abstract: Progress in studies of screening and exploiting citrus cultivars and rootstocks resistant or tolerant to Citrus tristeza virus (CTV), mild strain cross protection and induced resistance to CTV mediated by transforming gene and resistance mediated by amiRNA were summarized. Studies on citrus resistance to CTV in the future were also forecasted in order to lay a sound foundation for better control of the damage caused by CTV.

Key words: Citrus tristeza virus, citrus inherent resistance, virus induced gene silencing, induced resistance mediated by transforming gene, resistance mediated by amiRNA

[1]Lu R, Folimonov A, Shintaku M, Li W X, Falk B W, Dawson W O, Ding S W. Three distinct suppressors of RNA silencing encoded by a 20-kb viral RNA genome. Proceedings of the National Academy of Sciences of the United States of America, 2004, 101(44): 15742-15747.

[2]Janick J, Moore J N. Fruit Breeding. Tree and Tropical Fruits. New York: John Wiley & Sons, 1996.

[3]Yoshida T. Inheritance of susceptibility to Citrus tristeza virus in trifoliate orange (Poncirus trifoliata Raf.) (In Japanese). Bulletin of the Fruit Trees Research Station Series, 1985, 12: 17-25. 

[4]Bitters W P. Reaction of some new citrus hybrids and citrus introductions as rootstocks to inoculations with tristeza virus in California//Proceedings of the 5th Conference of the International Organisation of Citrus Virologists. 1972: 112-120.

[5]Mendes-da-Glória F J, Mourão Filho F A A, Mendes B M J. Plant regeneration from protoplast of Brazilian citrus cultivars. Pesquisa Agropecuaria Brasileira, 2000, 35(4): 727-732.

[6]Albiach-Marti M R, Grosser J W, Gowda S, Mawassi M, Satyanarayana T, Garnsey S M, Dawson W O. Citrus tristeza virus replicates and forms infectious virions in protoplasts of resistant citrus relatives. Molecular Breeding, 2004, 14: 117-128. 

[7]Bar-Joseph M, Marcus R, Lee R F.  The continuous challenge of Citrus tristeza virus control. Annual Review of Phytopathology, 1989, 27: 291-316.

[8]Yoshida T, Schichijo T, Ueno I, Kihara T, Yamada Y, Hirai M,  Yamada S, Ieki H, Kuramoto T. Survey for resistance of citrus cultivars and hybrid seedlings to Citrus tristeza virus (CTV). Bulletin of the Fruit Trees Research Station Series, 1983, 10: 51-68.

[9]Garnsey S M, Barrett H C, Hutchison D J. Identifcation of Citrus tristeza virus resistance in citrus relatives and its potential applications. Phytophylactica, 1987, 19: 187-191.

[10]Gmitter F G, Xiao S Y, Huang S, Hu X L, Garnsey S M, Deng Z. A localized linkage map of the Citrus tristeza virus resistance gene region. Theoretical and Applied Genetics, 1996, 92: 688-695.

[11]Mestre P F, Asins M J, Carbonell E A, Navarro L. New gene(s) involved in the resistance of Poncirus trifoliata (L.) Raf. to Citrus tristeza virus. Theoretical and Applied Genetics, 1997, 95: 691-695.

[12]Dawson T E, Mooney P A.  Evidence for trifoliate resistance breaking isolates of Citrus tristeza virus in New Zealand//  Proceedings of the 14th Conference of the International Organisation of Citrus Virologists. 2000: 69-76.

[13]Rai M. Refinement of the Citrus tristeza virus resistance gene (Ctv) positional map in Poncirus trifoliata and generation of transgenic grapefruit (Citrus paradisi) plant lines with candidate resistance genes in this region. Plant Molecular Biology, 2006, 61: 399-414.

[14]McKinney H H. Mosaic diseases in the Canary Islands, West Africa and Gibraltar. Journal of Agricultural Research, 1929, 39: 557-578.

[15]Costa A S, Grant T J. Studies on transmission of the tristeza virus by the vector, Aphis citricidus. Phytopathology, 1951, 41: 105-113.

[16]Roistacher C N, da Graça J V, Müller G W. Cross protection against Citrus tristeza virus- a review//Proceedings of the 17th Conference of the International Organisation of Citrus Virologists. 2010.

[17]Roistacher C N, Bar-Joseph M, Gumpf D J. Transmission of tristeza and seedling yellows tristeza virus by small populations of Aphis gossypii. Plant Disease, 1984, 68(6): 494-496.

[18]Folimonova S Y, Robertson C J, Shilts T, Folimonov A S, Hilf M E, Garnsey S M, Dawson W O. Infection with strains of Citrus tristeza virus does not exclude superinfection by other strains of the virus. Journal of Virology, 2010, 84(3): 1314-1325.

[19]Hilf M E, Mavrodieva V A, Garnsey S M. Genetic marker analysis of a global collection of isolates of Citrus tristeza virus: characterization and distribution of CTV genotypes and association with symptoms. Phytopathology, 2005, 95(8): 909-917.

[20]Albiach-Martí M R, Robertson C, Gowda S, Tatineni S, Belliure B, Garnsey S M, Folimonova S Y, Moreno P, Dawson W O. The pathogenicity determinant of Citrus tristeza virus causing the seedling yellows syndrome maps at the 3'-terminal region of the viral genome. Molecular Plant Pathology, 2010, 11(1): 55-67.

[21]Grant T J, Higgins R P. Occurrence of mixtures of tristeza virus strains in citrus. Phytopathology, 1957, 47: 272-276.

[22]Costa A S, Müller G W. Tristeza control by cross protection. Plant Disease, 1980, 64(6): 538-541.

[23]Bederski K, Roistacher C N, Müller G W. Cross protection against the severe Citrus tristeza virus stem pitting in Peru//Proceedings of the 16th Conference of the International Organisation of Citrus Virologists, 2005: 117-126.

[24]Bederski K, Roistacher C N, Müller G W, Silvestre O P. Incidence of long-term cross protection in the evolution of Citrus tristeza virus symptoms in Peru//Proceedings of the 17th Conference of the International Organisation of Citrus Virologists. 2010: 1-13.

[25]Roistacher C N. Observation on the decline of sweet orange trees in coastal Peru caused by stem pitting tristeza. Food and Agriculture Organization of the United Nations Plant Protection Bulletin, 1988, 36(1): 19-26.

[26]Van Vuuren S P, Collins R P, da Graça J V. Growth and production of lime trees pre-immunized with mild Citrus tristeza virus isolates. Phytophylactica, 1993, 25: 39-42.

[27]Van Vuuren S P, Moll J N. Greenhouse evaluation of citrus tristeza virus isolates. Phytophylactica, 1987, 19: 219-221.

[28]Luttig M, van Vuuren S P, van der Vyver J B. Differentiation of single aphid cultured sub-isolates of two South African Citrus tristeza virus isolates from grapefruit by single-stranded conformation polymorphism//Proceedings of the 15th Conference of the International Organisation of Citrus Virologists. 2002: 186-196.

[29]Roistacher C N, Dodds J A, Bash J A. Cross protection against citrus tristeza seedling yellows and stem pitting viruses by protective isolates developed in greenhouse plants//Proceedings of the 10th Conference of the International Organization of Citrus Virologists. 1988: 91-100.

[30]Roistacher C N, Bar-Joseph M. Transmission of Citrus tristeza virus  by Aphis gossypii and by graft inoculation to and from Passiflora spp.. Phytophylactica, 1987, 19: 179-182.

[31]Broadbent P, Bevington K B, Coote B G. Control of stem pitting of grapefruit in Australia by mild strain protection//Proceedings of the 11th Conference of the International Organization of Citrus Virologists. 1991: 64-70.

[32]Iglesias N G, Marengo J, Riquelme K, Costa N, Plata M I, Semorile L. Characterization of the population structure of a grapefruit isolate of Citrus tristeza virus (CTV) selected for pre-immunization assays in Argentina//Proceedings of the 16th Conference of the International Organization of Citrus Virologists. 2005: 150-158.

[33]周  彦, 周常勇, 李中安, 王雪峰, 刘科宏. 利用弱毒株交叉保护技术防治甜橙茎陷点型衰退病. 中国农业科学, 2008, 41(12): 4085-4091.

Zhou Y, Zhou C Y, Li Z A, Wang X F, Liu K H. Mild strains cross protection against stem-pitting tristezal of sweet orange. Scientia Agricultura Sinica, 2008, 41(12): 4085-4091. (in chinese)

[34]Hamilton R I. Using plant viruses for disease control. HortScience, 1985, 20(5): 848-852.

[35]Van Vuuren S P, van der Vyver J B. Comparison of South African pre-immunizing Citrus tristeza virus isolates with foreign isolates in three grapefruit selections//Proceedings of the 14th Conference of the International Organization of Citrus Virologists. 2000: 50-56.

[36]Van Vuuren S P, van der Vyver J B, Luttig M. Diversity among sub-isolates of cross-protecting Citrus tristeza virus isolates in South Africa//Proceedings of the 14th Conference of the International Organization of Citrus Virologists. 2000: 103-110.

[37]Van der Vyver J B, van Vuuren S P, Luttig M, da Graça J V.  Changes in the Citrus tristeza virus status of pre-immunized grapefruit field trees//Proceedings of the 15th Conference of the International Organization of Citrus Virologists. 2002: 175-185.

[38]Gad L, John P C. Natural Resistance Mechanisms of Plants to Viruses: Cross Protection. Netherlands: Springer, 2006: 261-288.

[39]Ratcliff F G, MacFarlane S A, Baulcombe D C. Gene silencing without DNA: RNA-mediated cross-protection between viruses. The Plant Cell, 1999, 11: 1207-1215.

[40]Moore C J, Sutherland P W, Forster R L S, Gardner R C, MacDiarmid R M. Dark green islands in plant virus infection are the result of posttranscriptional gene silencing. Molecular Plant-Microbe Interactions, 2001, 14(8): 939-946.

[41]Zhou C Y. Studies on the mechanism of mild strain cross protection against Citrus tristeza virus[D]. Sydney: University of Sydney, Australia, 2001.

[42]Zhou C Y, Hailstones D, Broadbent P, Connor R, Bowyer J. Studies on mild strain cross protection against stem-pitting Citrus tristeza virus//Proceedings of the 15th Conference of the International Organization of Citrus Virologists. 2002: 125-157.

[43]Brigneti G, Voinnet O, Li W X, Ji L X, Ding S W, Baulcombe D C.  Viral pathogenicity determinants are suppressors of transgene silencing in Nicotiana benthamiana. The EMBO Journal, 1998, 17(22): 6739-6746.

[44]Fagoaga C, López C, de Mendoza A H, Moreno P, Navarro L, Flores R, Peña L. Post-transcriptional gene silencing of the p23 silencing suppressor of Citrus tristeza virus confers resistance to the virus in transgenic Mexican lime. Plant Molecular Biology, 2006, 60: 153-165.

[45]Moreno P, Ambrós S, Albiach-Martí M R, Guerri J, Pena L. Citrus tristeza virus: a pathogen that changed the course of the citrus industry. Molecular Plant Pathology, 2008, 9(2): 251-268.

[46]Sanford J C, Johnston S A. The concept of pathogen derived resistance: deriving resistance genes from the parasite’s own genome. Journal of Theoretical Biology, 1985, 113(2): 395-405.

[47]Domínguez A, Hermoso de Mendoza A, Guerri J, Cambra M, Navarro L, Moreno P, Peña L. Pathogen-derived resistance to Citrus tristeza virus (CTV) in transgenic Mexican lime (Citrus aurantifolia (Christm.) Swing) plants expressing its p25 coat protein gene. Molecular Breeding, 2002, 10: 1-10.

[48]Ghorbel R, López C, Fagoaga C, Moreno P, Navarro L, Flores R, Peña L. Transgenic citrus plants expressing the Citrus tristeza virus p23 protein exhibit viral-like symptoms. Molecular Plant Pathology, 2001, 2(1): 27-36.

[49]Batuman O, Mawassi M, Bar-Joseph M. Transgenes consisting of a dsRNA of an RNAi suppressor plus the 3′UTR provide resistance to Citrus tristeza virus sequences in Nicotiana benthamiana but not in citrus. Virus Genes, 2006, 33: 319-327.

[50]Roy G, Sudarshana M R, Ullman D E, Ding S W, Dandekar A M, Falk B W. Chimeric cDNA sequences from Citrus tristeza virus confer RNA silencing-mediated resistance in transgenic Nicotiana benthamiana plants. Phytopathology, 2006, 96(8): 819-827.

[51]López C, Cervera M, Fagoaga C, Moreno P, Navarro L, Flores R, Peňa L. Accumulation of transgene-derived siRNAs is not suffcient for RNAi-mediated protection against Citrus tristeza virus in transgenic Mexican lime. Molecular Plant Pathology, 2010, 11(1): 33-41.

[52]Lin S S, Henriques R, Wu H W, Niu Q W, Yeh S D, Chua N H.  Strategies and mechanisms of plant virus resistance. Plant Biotechnology Report, 2007, 1: 125-134.

[53]Bucher E, Lohuis D, van Poppel P M J A, Geerts-Dimitriadou C, Goldbach R, Prins M. Multiple virus resistance at a high frequency using a single transgene construct. Journal of General Virology, 2006, 87: 3697-3701.

[54]Niu Q W, Lin S S, Reyes J L, Chen K C, Wu H W, Yeh S D, Chua N H.  Expression of artificial microRNAs in transgenic Arabidopsis thaliana confers virus resistance. Nature Biotechnology, 2006, 24(11): 1420-1428.
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