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Journal of Integrative Agriculture  2018, Vol. 17 Issue (09): 2015-2023    DOI: 10.1016/S2095-3119(18)61913-6
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Effect of pre-culture on virus elimination from in vitro apple by thermotherapy coupled with shoot tip culture
HU Guo-jun, DONG Ya-feng, ZHANG Zun-ping, FAN Xu-dong, REN Fang, LI Zheng-nan
Research Institute of Pomology, Chinese Academy of Agricultural Sciences, Xingcheng 125100, P.R.China
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Abstract  

We evaluated the role of pre-culture on survival rate of in vitro apple plants treated by thermotherapy.  Two apple cultivars, Malus×domestica cv. Pink Lady and Huafu, were used in the experiment and both have widely grown in China and infected with Apple chlorotic leaf spot virus (ACLSV) and Apple stem grooving virus (ASGV).  Results in growth and virus titer of apple plants did not exhibit clear trends during five different periods of pre-culture.  Whilst, pre-culture increased the survival rate of the two cultivars during thermotherapy.  The survival rate of plants pre-cultured for 13 d (P-13d) was 14 and 51% higher than that of P-1d plants for Pink Lady and Huafu, respectively.  Moreover, pre-culture positively influenced regeneration of Huafu plants.  The average survival rate of plants regenerated from P-1d and P-4d was 20% lower than that regenerated from P-7d, P-10d, and P-13d.  The efficiency of virus eradication was determined by reverse-transcription PCR with two primer pairs for each virus, and the detection results showed that pre-culture scarcely affected apple virus elimination.  Despite the fact that the two viruses were hardly detected at 5 d of thermotherapy, no virus-free plants were found in the two cultivars of regenerated apple plantlets after 30-d treatment. 
Keywords:  apple        in vitro culture       pre-culture        thermotherapy        virus elimination  
Received: 08 September 2017   Accepted:
Fund: This work was supported by the Agricultural Science and Technology Innovation Program of the Chinese Academy of Agricultural Sciences (CAAS-ASTIP).
Corresponding Authors:  Correspondence DONG Ya-feng, Tel/Fax: +86-429-3598278, E-mail: yfdong@ 163.com    
About author:  HU Guo-jun, E-mail: hugj3114@163.com

Cite this article: 

HU Guo-jun, DONG Ya-feng, ZHANG Zun-ping, FAN Xu-dong, REN Fang, LI Zheng-nan. 2018. Effect of pre-culture on virus elimination from in vitro apple by thermotherapy coupled with shoot tip culture. Journal of Integrative Agriculture, 17(09): 2015-2023.

Adams M J, Antoniw J F, Bar-Joseph M, Brunt A A, Candresse T, Foster G D, Martelli G P, Milne R G, Fauquet C M. 2004. The new plant virus family Flexiviridae and assessment of molecular criteria for species demarcation. Archives of Virology, 149, 1045–1060.
Bayati S, Shams-Bakhsh M, Moini A. 2011. Elimination of Grapevine virus A (GVA) by cryotherapy and electrotherapy. Journal of Agricultural Science and Technology, 13, 442–450.
Cheng Y Q, Xu J, ZhanY, Lie H C, Shun Y W, Shun Q H. 2003. Responses of micropropagated apple cultivars and stock to thermotherapy for viruses elimination. Chinese Agricultural Science Bulletin, 19, 216–219. (in Chinese)
Cieslinska M, Malinowski T, Zawadzka B J. 1995. Studies on several strains of Apple chlorotic leaf spot virus (ACLSV) isolated from different fruit tree species. Acta Horticulturae, 386, 63–71.
Clover G R G, Pearson M N, Elliott D R, Tang Z, Smales T E, Alexander B J R. 2003. Characterization of a strain of Apple stem grooving virus in Actinidia chinensis from China. Plant Pathology, 52, 371–378.
Deogratias J M, Dosba F, Lutz A. 1989. Eradication of Prune dwarf virus, Prunus necrotic ringspot virus and Apple chlorotic leaf spot virus in sweet cherries by a combination of chemotherapy, thermotherapy, and in vitro culture. Canadian Journal of Plant pathology, 11, 337–342.
Desvignes J C, Boyé R. 1988. Different diseases caused by the Chlorotic leaf spot virus on the fruit trees. Acta Horticulturae, 235, 31–38.
Dong Y F, Zhang Z P, Zhang S Y, Hong N, Yu J M. 2002. Studies on elimination of apple and pear virus by combining tissue culture of top-stem with heat therapy. Northern Fruits, 2, 9–10. (in Chinese)
Dziedzic E. 2008. Elimination of Prunus necrotic ring spot virus (PNRSV) from plum ‘Earliblue’ shoots through thermotherapy in vitro. Journal of Fruit and Ornamental Plant Research, 16, 101–109.
Hirata H, Lu X, Yamaji Y, Kagiwada S, Ugaki M, Namba S. 2003. A single silent substitution in the genome of Apple stem grooving virus causes symptom attenuation. Journal of General Virology, 84, 2579–2583.
Hu G J, Dong Y F, Zhang Z P, Fan X D, Ren F, Li Z. 2017. Occurrence and genetic diversity analysis of Apple stem pitting virus isolated from apples in China. Archives of Virology, 162, 2397–2402.
Hu G J, Dong Y F, Zhang Z P, Fan X D, Ren F, Li Z N, Zhou J. 2016. First report of Prunus necrotic ringspot virus infection of apple in China. Plant Disease, 100, 1955.
Hu G J, Dong Y F, Zhang Z P, Fan X D, Ren F, Zhou J. 2015a. Virus elimination from in vitro apple by thermotherapy combined with chemotherapy. Plant Cell Tissue Organ Culture, 121, 435–443.
Hu G J, Hong N, Wang L P, Hu H J, Wang G P. 2012. Efficacy of virus elimination from in vitro cultured sand pear (Pyrus pyrifolia) by chemotherapy combined with thermotherapy. Crop Protection, 37, 20–25.
Hu G J, Zhang Z P, Dong Y F, Fan X D, Ren F, Zhu H J. 2015b. Efficiency of virus elimination from potted apple plants by thermotherapy coupled with shoot-tip grafting. Australasian Plant Pathology, 44, 167–173.
Kudela V, Krejzar V, Kundu J K, Pankova I, Ackermann P. 2009. Apple burrknots involved in trunk canker initiation and dying of young trees. Plant Protection Science, 45, 1–11.
Kunkel L O. 1935. Heat treatment for the cure of yellows and rosette of peach. Phytopathology, 25, 24.
Ma B G, Niu J X, Morley-Bunker M, Pan L Z, Zhang H P, Zhang L X. 2008. Detection of three pear viruses by multiplex RT-PCR assays with co-amplification of an internal control. Australasian Plant Pathology, 37, 117–122.
Malinowski T, Komorowska B, Golis T, Zawadzka B. 1998. Detection of Apple stem pitting virus and Pear vein yellows virus using reverse transcription-polymerase chain reaction. Acta Horticulturae, 472, 87–95.
Menzel W, Jelkmann W, Maiss E. 2002. Detection of four apple viruses by multiplex RT-PCR assays with coamplification of plant mRNA as internal control. Journal of Virological Methods, 99, 81–92.
Mink G I, Wample R, Howell W E. 1998. Heat treatment of perennial plants to eliminate phytoplasms, viruses and viroids while maintaining plant survival. Plant Virus Disease Control, 40, 332–345.
Nyland G, Goheen A C. 1969. Heat therapy of virus diseases of perennial plants. Annunal Review of Phytopathology, 7, 331–354.
Paprstein F, Sedlak J, Polak J, Svobodova L, Hassan M, Bryxiova M. 2008. Results of in vitro thermotherapy of apple cultivars. Plant Cell Tissue Organ, 94, 347–352.
Pasquini G, Faggioli F, Pilotti M, Lumia V, Barba M, Hadidi A. 1998. Characterization of Apple chlorotic leaf spot virus isolates from Italy. Acta Horticulturae, 472, 195–202.
Qu F, Ye X, Hou G, Sato S, Clemente T E, Morris T J. 2005. RDR6 has a broad-spectrum but temperature-dependent antiviral defense role in Nicotiana benthamiana. Journal of Virology, 79, 15209–15217.
Stein A, Spiegel S, Faingersh G, Levy S. 1991. Responses of micropropagated peach cultivars to thermotherapy for elimination of Prunus necrotic ringspot virus. Annals of Applied Biology, 119, 265–271.
Szittya G, Silhavy D, Molnar A, Havelda Z, Lovas A, Lakatos L, Banfalvi Z, Burgyan J. 2003. Low temperature inhibits RNA silencing-mediated defence by the control of siRNA generation. EMBO Jouranl, 22, 633–640.
Tan R R, Wang L P, Hong N, Wang G P. 2010. Enhanced efficiency of virus eradication following thermotherapy of shoot-tip cultures of pear. Plant Cell Tissue Organ Culture, 101, 229–235.
Valero M, Ibáñez A, Morte A. 2003. Effects of high vineyard temperatures on the Grapevine leafroll associated virus elimination from Vitis vinifera L. cv. Napoleon tissue cultures. Scientia Horticulturae, 97, 289–296.
Wang Q C, Cuellar W J, Rajamäki M, Hirata Y, Valkonen J P T. 2008. Combined thermotherapy and cryotherapy for efficient virus eradication: Relation of virus distribution, subcellular changes, cell survival and viral RNA degradation in shoot tips. Molecular Plant Pathology, 8, 1–14.
Yanase H. 1983. Back transmission of Apple stem grooving virus to apple seedlings and induction of symptoms of apple topworking disease in Mitsuba Kaido (Malus sieboldii) and Kobano Zumi (Malus sieboldii var. arborescens) rootstocks. Acta Horticulturae, 130, 117–122.
Yanase H, Koganezawa H, Fridlund P R. 1989. Correlation of pear necrotic spot with pear vein yellows and apple stem pitting, and a flexuous filamentous virus associated with them. Acta Horticulturae, 235, 157–158.
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