Scientia Agricultura Sinica ›› 2015, Vol. 48 ›› Issue (14): 2857-2867.doi: 10.3864/j.issn.0578-1752.2015.14.017

• RESEARCH NOTES • Previous Articles     Next Articles

Analysis of Genome Recombination and CP Sequence Diversity of ACLSV Apple Isolate from Shandong

LI Ke1, SHI Hong-wei1, JING Chen-chen1, SUN Xian-chao1, ZHOU Chang-yong2, QING Ling1,2   

  1. 1College of Plant Protection, Southwest University/Chongqing Key Laboratory of Plant Disease Biology, Chongqing 400716
    2Citrus Research Institute, Chinese Academy of Agricultural Sciences, Chongqing 400712
  • Received:2015-01-26 Online:2015-07-16 Published:2015-07-16

Abstract: 【Objective】The objective of this study is to determine the molecular characterization and potential recombination events of genome of Apple chlorotic leaf spot virus (ACLSV) isolated from apple in Shandong Province, and diversity of CP gene of these ACLSV isolates.【Method】The whole genome sequence of ACLSV was obtained by RT-PCR through segment amplification, cloning and gene splicing. The molecular characterization and phylogeny of whole genome of ACLSV were then described and analyzed by comparison with reported sixteen full-length genome or near full-length genome sequences. The CP of ACLSV isolates was amplified for phylogenetic and diversity analysis. 【Result】The whole genome sequence of the ACLSV isolate, QD-13, was cloned and sequenced. The molecular characterization showed that QD-13 (GenBank accession number KJ522693) was 7 557 nt in length containing three ORFs, and shared the highest identity of 85.9% with Japanese apple isolate B6. The phylogenetic tree showed that the isolate QD-13 was grouped into the same cluster with isolate B6. Segmented comparisons of seventeen genome sequences of ACLSV isolates indicated that there were great differences in the sequences of 5′UTR and 3′UTR. ORF3 was relatively conserved and all of the identities of putative amino acid sequences were more than 91.2% except isolates Ta Tao 5 and MS. The ORF1 coding region between 527-665 aa was least conservative and the identities of this region were 15.4%-59.7% among all the seventeen compared sequences. Recombination event was considered as significant when it was simultaneously detected by more than three detection methods with P-Value less than 0.05. The results showed that there were three potential significant recombination events occurred in 6 507-6 247, 6 397-6 497 and 3 851-4 760 nt, respectively. The isolates QD-15, QD-20 and YT-24 were randomly selected for CP amplification. The diversity analysis showed that twenty-two sequences of CP obtained from QD-15 and YT-24 includes three types. Comparison of amino acid sequences of CP revealed that the three types are different combinations of amino acid conserved sites which were Met60-Ser73-Ser79-Asp82-Asn97-Gly98, Leu59-Met83-Ile193 and Ala40-Leu60-Ala72-Phe75-Ile86-Arg88- Ser130-Gly137-Met184, respectively. 【Conclusion】The complete genome sequence of ACLSV apple isolate in China was reported. The molecular characterization of QD-13 was confirmed and three major recombination events occurred in the genome of QD-13. Three types of CP gene were found in the isolates of ACLSV from Shandong Province, which indicated that CP gene of ACLSV has rich diversity.

Key words: Apple chlorotic leaf spot virus (ACLSV), genome, coat protein, diversity, recombination analysis

[1]    洪健, 周雪平. ICTV 第八次报告的最新病毒分类系统. 中国病毒学, 2006, 21(1): 84-96.
Hong J, Zhou X P. The universal system of virus taxonomy in the 8th ICTV report. Virologica Sinica, 2006, 21(1): 84-96. (in Chinese)
[2]    于青, 刘美英, 宋来庆, 赵玲玲, 唐岩, 姜中武, 刘学卿. 烟台市苹果病毒病的发生与防治. 山东农业科学, 2010(6): 86-88.
Yu Q, Liu M Y, Song L Q, Zhao L L, Tang Y, Jiang Z W, Liu X Q. The occurrence and prevention of apple virus disease in Yantai. Shandong Agricultural Sciences, 2010(6): 86-88. (in Chinese)
[3]    吴雅琴, 陈霜莹, 王文慧, 王小凤. 三种ELISA方法检测苹果褪绿叶斑病毒和苹果茎沟病毒的比较. 植物保护学报, 1998, 25(3): 245-248.
Wu Y Q, Chen S Y, Wang W H, Wang X F. Comparison of three ELISA methods for detection of Apple chlorotic leaf spot virus and Apple stem grooving virus. Acta Phytophylacica Sinica,1998, 25(3): 245-248. (in Chinese)
[4]    赵英, 牛建新. 梨叶片中苹果褪绿叶斑病毒的引物原位标记检测. 园艺学报, 2009, 36(1): 15-20.
Zhao Y, Niu J X. Detection of Apple chlorotic leaf spot virus in pear by primed in situ labeling. Acta Horticulturae Sinica, 2009, 36(1): 15-20. (in Chinese)
[5]    German S, Candresse T, Lanneau M, Huet J C, Pernollet J C, Dunez J. Nucleotide sequence and genomic organization of Apple chlorotic leaf-spot closterovirus. Virology, 1990, 179(1): 104-112.
[6]    Zhu H, Wang G P, Hu H J, Tian R, Hong N. The genome sequences of three isolates of Apple chlorotic leaf spot virus from pear (Pyrus sp.) in China. Canadian Journal of Plant Pathology, 2014, 36(3): 396-402.
[7]    Jelkmann W. The nucleotide sequence of a strain of Apple chlorotic leaf spot virus (ACLSV) responsible for plum pseudopox and its relation to an apple and plum bark split strain. Phylopathology, 1996, 86: 101.
[8]    Sato K, Yoshikawa N, Takahashi T. Complete nucleotide sequence of the genome of an apple isolate of Apple chlorotic leaf spot virus. The Journal of General Virology, 1993, 74(9): 1927-1931.
[9]    Yaegashi H, Isogai M, Tajima H, Sano T, Yoshikawa N. Combinations of two amino acids (Ala40 and Phe75 or Ser40 and Tyr75) in the coat protein of Apple chlorotic leaf spot virus are crucial for infectivity. The Journal of General Virology, 2007, 88: 2611-2618.
[10]   Dhir S, Zaidi A A, Hallan V. Molecular Characterization and recombination analysis of the complete genome of Apple chlorotic leaf spot virus. Journal of Phytopathology, 2013, 161(10): 704-712.
[11]   Duan H, Ji Z R, Wang S T, Hu T L, Wang Y N, Cao K Q. Molecular characterization and distribution of Apple chlorotic leaf spot virus on apple in China. Journal of Phytopathology, 2014, 162(5): 284-290.
[12]   Wang M, Dai H. First report of Apple chlorotic leaf spot virus in Hawthorn in China. Plant Disease, 2015, 99(1): 164.
[13]   Marini D B, Gibson P G, Scott S W. The complete nucleotide sequence of an isolate of Apple chlorotic leaf spot virus from peach (Prunus persica (L.) Batch). Archives of Virology, 2008, 153(5): 1003-1005.
[14]   Niu F Q, Pan S, Wu Z J, Jiang D M, Li S F. Complete nucleotide sequences of the genomes of two isolates of Apple chlorotic leaf spot virus from peach (Prunus persica) in China. Archives of Virology, 2012, 157(4): 783-786.
[15]   German-Retana S, Bergey B, Delbos R P, Candresse T, Dunez J. Complete nucleotide sequence of the genome of a severe cherry isolate of Apple chlorotic leaf spot trichovirus (ACLSV). Archives of Virology, 1997, 142(4): 833-841.
[16]   Rwahnih M A, Turturo C, Minafra A, Saldarelli P, Myrta A, Pallás V, Savino V. Molecular variability of Apple chlorotic leaf spot virus in different hosts and geographical regions. Journal of Plant Pathology, 2004, 86(2): 117-122.
[17]   Kinard G R, Scott S W, Barnett O W. Detection of apple chlorotic leaf spot and apple stem grooving viruses using RT-PCR. Plant Disease, 1996, 80(6): 616-621.
[18]   Németh M. Viruses Mycoplasma and Ricketsia Diseases of Fruit Trees. Netherlands: Boston Kluwer Academic Publishers Group, 1986.
[19]   郑银莹, 王国平, 洪霓, 宋艳苏, 游红. 来源于桃和苹果的苹果褪绿叶斑病毒的部分分子生物学特性和cp基因的原核表达. 植物病理学报, 2007, 37(4): 356-361.
Zheng Y Y, Wang G P, Hong N, Song Y S, You H. Partial molecular characterization of Apple chlorotic leaf spot virus from peach and apple trees and prokaryotic expression for cp gene. Acta Phytopathologica Sinica, 2007, 37(4): 356-361. (in Chinese)
[20]   Rana T, Chandel V, Kumar Y, Ram R, Hallan V, Zaidi A A. Molecular variability analyses of Apple chlorotic leaf spot virus capsid protein. Journal of Biosciences, 2010, 35(4): 605-615.
[21]   黄妍妍, 王利平, 洪霓, 韦向东, 王国平. 来源于新疆的3个苹果褪绿叶斑病毒分离物的分子变异研究. 植物病理学报, 2011, 41(5): 551-555.
Huang Y Y, Wang L P, Hong N, Wei X D, Wang G P. Molecular diversity of three Apple chlorotic leaf spot virus isolates from Xinjiang. Acta Phytopathologica Sinica, 2011, 41(5): 551-555. (in Chinese)
[22]   Chen S Y, Zhou Y, Ye T, Hao L, Guo L Y, Fan Z F, Li S F, Zhou T. Genetic variation analysis of Apple chlorotic leaf spot virus coat protein reveals a new phylogenetic type and two recombinants in China. Archives of Virology, 2014, 159(6): 1431-1438.
[23]   Liu P, Li Z N, Song S, Wu Y F. Molecular variability of Apple chlorotic leaf spot virus in Shaanxi, China. Phytoparasitica, 2014, 42(4): 445-454.
[24]   Buck K W. Comparison of the replication of positive-stranded RNA viruses of plants and animals. Advances in Virus Research,1996, 47: 159-251.
[25]   Lai M M C. Cellular factors in the transcription and replication of viral RNA genomes: A parallel to DNA-dependent RNA transcription. Virology, 1998, 244(1): 1-12.
[26]   Hull R. Matthews’ Plant Virology. trans. Fan Z F, Li H F, Han C G, Li D W. Beijing: Science Press, 2007.
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