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Published in: Archives of Virology 4/2019

01-04-2019 | Original Article

Genetic evolutionary analysis of soybean mosaic virus populations from three geographic locations in China based on the P1 and CP genes

Authors: Lei Zhang, Jing Shang, Qi Jia, Kai Li, Hui Yang, Huanhuan Liu, Zhongqin Tang, Xiaoli Chang, Min Zhang, Wenming Wang, Wenyu Yang

Published in: Archives of Virology | Issue 4/2019

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Abstract

Soybean mosaic virus (SMV) is one of the major pathogens causing serious soybean losses. Little is known about the genetic structure and evolutionary biology of the SMV population in southwestern China. In this study, 29 SMV isolates were obtained from Sichuan Province, and the genomic regions encoding the first protein (P1) and coat protein (CP) were sequenced. Combined with SMV isolates from the southeastern and northeastern regions of China, the genetic and molecular evolution of SMV was studied. Recombination analysis revealed that intraspecific and interspecific recombination had occurred in the SMV population. A phylogenetic tree based on the P1 gene reflected the geographic origin of the non-interspecific recombinant SMV (SMV-NI), while a tree based on the CP gene did not. Though frequent gene flow of the SMV-NI populations was found between the southeastern and northeastern populations, the southwestern population was relatively independent. Genetic differentiation was significant between the SMV interspecific recombinant (SMV-RI) and the non-interspecific recombinant (SMV-NI) populations. It was interesting to note that there was an almost identical recombination breakpoint in SMV-RI and Watermelon mosaic virus (WMV). Population dynamics showed that SMV-RI might be in an expanding state, while the SMV-NI population is relatively stable.
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Literature
1.
go back to reference Achtman M, Wagner M (2008) Microbial diversity and the genetic nature of microbial species. Nat Rev Microbiol 6:431–440CrossRefPubMed Achtman M, Wagner M (2008) Microbial diversity and the genetic nature of microbial species. Nat Rev Microbiol 6:431–440CrossRefPubMed
2.
go back to reference Ahangaran A, Habibi MK, Mohammadi GHM, Winter S, Garcia-Arenal F (2013) Analysis of Soybean mosaic virus genetic diversity in Iran allows the characterization of a new mutation resulting in overcoming Rsv4-resistance. J Gen Virol 94:2557–2568CrossRefPubMed Ahangaran A, Habibi MK, Mohammadi GHM, Winter S, Garcia-Arenal F (2013) Analysis of Soybean mosaic virus genetic diversity in Iran allows the characterization of a new mutation resulting in overcoming Rsv4-resistance. J Gen Virol 94:2557–2568CrossRefPubMed
3.
go back to reference Anandalakshmi R, Pruss GJ, Ge X, Marathe R, Mallory AC, Smith TH, Vance VB (1998) A viral suppressor of gene silencing in plants. Proc Natl Acad Sci 95:13079–13084CrossRefPubMedPubMedCentral Anandalakshmi R, Pruss GJ, Ge X, Marathe R, Mallory AC, Smith TH, Vance VB (1998) A viral suppressor of gene silencing in plants. Proc Natl Acad Sci 95:13079–13084CrossRefPubMedPubMedCentral
4.
go back to reference Balloux F, Lugon-Moulin N (2002) The estimation of population differentiation with microsatellite markers. Mol Ecol 11:155–165CrossRefPubMed Balloux F, Lugon-Moulin N (2002) The estimation of population differentiation with microsatellite markers. Mol Ecol 11:155–165CrossRefPubMed
5.
go back to reference Bashalkhanov S, Pandey M, Rajora OP (2009) A simple method for estimating genetic diversity in large populations from finite sample sizes. BMC Genet 10:1–10CrossRef Bashalkhanov S, Pandey M, Rajora OP (2009) A simple method for estimating genetic diversity in large populations from finite sample sizes. BMC Genet 10:1–10CrossRef
6.
go back to reference Chen J, Zheng HY, Lin L, Adams MJ, Antoniw JF, Zhao MF, Shang YF, Chen JP (2004) A virus related to Soybean mosaic virus from Pinellia ternata in China and its comparison with local soybean SMV isolates. Arch Virol 149:349–363CrossRefPubMed Chen J, Zheng HY, Lin L, Adams MJ, Antoniw JF, Zhao MF, Shang YF, Chen JP (2004) A virus related to Soybean mosaic virus from Pinellia ternata in China and its comparison with local soybean SMV isolates. Arch Virol 149:349–363CrossRefPubMed
7.
go back to reference Chen Y, Wu M, Ma F, Chen J, Wang B (2017) Complete nucleotide sequences of seven soybean mosaic viruses (SMV), isolated from wild soybeans (Glycine soja) in China. Arch Virol 162:901–904CrossRefPubMed Chen Y, Wu M, Ma F, Chen J, Wang B (2017) Complete nucleotide sequences of seven soybean mosaic viruses (SMV), isolated from wild soybeans (Glycine soja) in China. Arch Virol 162:901–904CrossRefPubMed
8.
go back to reference Cho EK, Chung BJ (1976) Studies on identification and classification of soybean virus diseases in Korea I. Preliminary studies on a soybean virus disease. Genet Sel Evol 22:273–277 Cho EK, Chung BJ (1976) Studies on identification and classification of soybean virus diseases in Korea I. Preliminary studies on a soybean virus disease. Genet Sel Evol 22:273–277
9.
go back to reference Cho EK, Goodman RM (1979) Strains of soybean mosaic virus: classification based on virulence in resistant soybean cultivars. Phytopathology 69:467–470CrossRef Cho EK, Goodman RM (1979) Strains of soybean mosaic virus: classification based on virulence in resistant soybean cultivars. Phytopathology 69:467–470CrossRef
10.
go back to reference Choi BK, Koo JM, Ahn HJ, Yum HJ, Choi CW, Ryu KH, Chen P, Tolin SA (2005) Emergence of Rsv-resistance breaking Soybean mosaic virus isolates from Korean soybean cultivars. Virus Res 112:42–51CrossRefPubMed Choi BK, Koo JM, Ahn HJ, Yum HJ, Choi CW, Ryu KH, Chen P, Tolin SA (2005) Emergence of Rsv-resistance breaking Soybean mosaic virus isolates from Korean soybean cultivars. Virus Res 112:42–51CrossRefPubMed
11.
go back to reference Chowda-Reddy RV, Sun H, Chen H, Poysa V, Ling H, Gijzen M, Wang A (2011) Mutations in the P3 protein of Soybean mosaic virus G2 isolates determine virulence on Rsv4-genotype soybean. Mol Plant Microbe Interact 24:37–43CrossRefPubMed Chowda-Reddy RV, Sun H, Chen H, Poysa V, Ling H, Gijzen M, Wang A (2011) Mutations in the P3 protein of Soybean mosaic virus G2 isolates determine virulence on Rsv4-genotype soybean. Mol Plant Microbe Interact 24:37–43CrossRefPubMed
13.
go back to reference Desbiez C, Lecoq H (2004) The nucleotide sequence of Watermelon mosaic virus (WMV, Potyvirus) reveals interspecific recombination between two related potyviruses in the 5’ part of the genome. Arch Virol 149:1619–1632CrossRefPubMed Desbiez C, Lecoq H (2004) The nucleotide sequence of Watermelon mosaic virus (WMV, Potyvirus) reveals interspecific recombination between two related potyviruses in the 5’ part of the genome. Arch Virol 149:1619–1632CrossRefPubMed
14.
go back to reference Domier LL, Latorre IJ, Steinlage TA, McCoppin N, Hartman GL (2003) Variability and transmission by Aphis glycines of North American and Asian Soybean mosaic virus isolates. Arch Virol 148:1925–1941CrossRefPubMed Domier LL, Latorre IJ, Steinlage TA, McCoppin N, Hartman GL (2003) Variability and transmission by Aphis glycines of North American and Asian Soybean mosaic virus isolates. Arch Virol 148:1925–1941CrossRefPubMed
15.
go back to reference Du J, Han T, Gai J, Yong T, Sun X, Wang X, Yang F, Liu J, Shu K, Liu W, Yang W (2018) Maize-soybean strip intercropping: achieved a balance between high productivity and sustainability. J Integr Agric 17:747–754CrossRef Du J, Han T, Gai J, Yong T, Sun X, Wang X, Yang F, Liu J, Shu K, Liu W, Yang W (2018) Maize-soybean strip intercropping: achieved a balance between high productivity and sustainability. J Integr Agric 17:747–754CrossRef
17.
go back to reference Eggenberger AL, Hajimorad MR, Hill JH (2008) Gain of virulence on Rsv1-genotype soybean by an avirulent Soybean mosaic virus requires concurrent mutations in both P3 and HC-Pro. Mol Plant Microbe Interact 21:931–936CrossRefPubMed Eggenberger AL, Hajimorad MR, Hill JH (2008) Gain of virulence on Rsv1-genotype soybean by an avirulent Soybean mosaic virus requires concurrent mutations in both P3 and HC-Pro. Mol Plant Microbe Interact 21:931–936CrossRefPubMed
19.
go back to reference Gagarinova AG, Babu M, Strömvik MV, Wang A (2008) Recombination analysis of Soybean mosaic virus sequences reveals evidence of RNA recombination between distinct pathotypes. Virol J 5:143CrossRefPubMedPubMedCentral Gagarinova AG, Babu M, Strömvik MV, Wang A (2008) Recombination analysis of Soybean mosaic virus sequences reveals evidence of RNA recombination between distinct pathotypes. Virol J 5:143CrossRefPubMedPubMedCentral
20.
go back to reference Gao F, Zou W, Xie L, Zhan J (2017) Adaptive evolution and demographic history contribute to the divergent population genetic structure of Potato virus Y between China and Japan. Evol Appl 10:379–390CrossRefPubMedPubMedCentral Gao F, Zou W, Xie L, Zhan J (2017) Adaptive evolution and demographic history contribute to the divergent population genetic structure of Potato virus Y between China and Japan. Evol Appl 10:379–390CrossRefPubMedPubMedCentral
21.
go back to reference Gao L, Sun S, Li K, Wang L, Hou W, Wu C, Zhi H, Han T (2018) Spatio-temporal characterisation of changes in the resistance of widely grown soybean cultivars to Soybean mosaic virus across a century of breeding in China. Crop Pasture Sci 69:395CrossRef Gao L, Sun S, Li K, Wang L, Hou W, Wu C, Zhi H, Han T (2018) Spatio-temporal characterisation of changes in the resistance of widely grown soybean cultivars to Soybean mosaic virus across a century of breeding in China. Crop Pasture Sci 69:395CrossRef
22.
go back to reference Gao L, Zhai R, Zhong YK, Karthikeyan A, Ren R, Zhang K, Li K, Zhi HJ (2015) Screening Isolates of Soybean mosaic virus for Infectivity in a Model Plant, Nicotiana benthamiana. Plant Dis 99:442–446CrossRefPubMed Gao L, Zhai R, Zhong YK, Karthikeyan A, Ren R, Zhang K, Li K, Zhi HJ (2015) Screening Isolates of Soybean mosaic virus for Infectivity in a Model Plant, Nicotiana benthamiana. Plant Dis 99:442–446CrossRefPubMed
23.
go back to reference Gibbs AJ, Trueman JWH, Gibbs MJ (2008) The bean common mosaic virus lineage of potyviruses: where did it arise and when? Arch Virol 153:2177–2187CrossRefPubMed Gibbs AJ, Trueman JWH, Gibbs MJ (2008) The bean common mosaic virus lineage of potyviruses: where did it arise and when? Arch Virol 153:2177–2187CrossRefPubMed
24.
26.
go back to reference Hudson RR, Boos DD, Kaplan NL (1992) A statistical test for detecting geographic subdivision. Mol Biol Evol 9:138–151PubMed Hudson RR, Boos DD, Kaplan NL (1992) A statistical test for detecting geographic subdivision. Mol Biol Evol 9:138–151PubMed
27.
go back to reference Hymowitz T, Newell CA (1981) Taxonomy of the genus glycine, domestication and uses of soybeans. Econ Bot 35:272–288CrossRef Hymowitz T, Newell CA (1981) Taxonomy of the genus glycine, domestication and uses of soybeans. Econ Bot 35:272–288CrossRef
28.
go back to reference Ivanov KI, Eskelin K, Lohmus A, Makinen K (2014) Molecular and cellular mechanisms underlying potyvirus infection. J Gen Virol 95:1415–1429CrossRefPubMed Ivanov KI, Eskelin K, Lohmus A, Makinen K (2014) Molecular and cellular mechanisms underlying potyvirus infection. J Gen Virol 95:1415–1429CrossRefPubMed
29.
go back to reference Ivanov KI, Mäkinen K (2012) Coat proteins, host factors and plant viral replication. Curr Opin Virol 2:712–718CrossRefPubMed Ivanov KI, Mäkinen K (2012) Coat proteins, host factors and plant viral replication. Curr Opin Virol 2:712–718CrossRefPubMed
30.
go back to reference Jayaram C, Hill JH, Miller WA (1992) Complete nucleotide sequences of two soybean mosaic virus strains differentiated by response of soybean containing the Rsv resistance gene. J Gen Virol 73:2067–2077CrossRefPubMed Jayaram C, Hill JH, Miller WA (1992) Complete nucleotide sequences of two soybean mosaic virus strains differentiated by response of soybean containing the Rsv resistance gene. J Gen Virol 73:2067–2077CrossRefPubMed
31.
go back to reference Jiang H, Li K, Dou D, Gai J (2017) Characterization of a soybean mosaic virus variant causing different diseases in Glycine max and Nicotiana benthamiana. Arch Virol 162:549–553CrossRefPubMed Jiang H, Li K, Dou D, Gai J (2017) Characterization of a soybean mosaic virus variant causing different diseases in Glycine max and Nicotiana benthamiana. Arch Virol 162:549–553CrossRefPubMed
32.
go back to reference Jossey S, Hobbs HA, Domier LL (2013) Role of soybean mosaic virus-encoded proteins in seed and aphid transmission in soybean. Phytopathology 103:941CrossRefPubMed Jossey S, Hobbs HA, Domier LL (2013) Role of soybean mosaic virus-encoded proteins in seed and aphid transmission in soybean. Phytopathology 103:941CrossRefPubMed
33.
go back to reference Kim MJ, Kao C (2001) Factors regulating template switch in vitro by viral RNA-dependent RNA polymerases: implications for RNA-RNA recombination. Proc Natl Acad Sci USA 98:4972–4977CrossRefPubMedPubMedCentral Kim MJ, Kao C (2001) Factors regulating template switch in vitro by viral RNA-dependent RNA polymerases: implications for RNA-RNA recombination. Proc Natl Acad Sci USA 98:4972–4977CrossRefPubMedPubMedCentral
35.
go back to reference Li K, Yang QH, Zhi HJ, Gai JY (2010) Identification and distribution of Soybean mosaic virus strains in Southern China. Plant Dis 94:351–357CrossRefPubMed Li K, Yang QH, Zhi HJ, Gai JY (2010) Identification and distribution of Soybean mosaic virus strains in Southern China. Plant Dis 94:351–357CrossRefPubMed
36.
go back to reference Li M, Kim J, Seo E, Hong SM, Hwang E, Moon J, Domier LL, Hammond J, Youn Y, Lim H (2014) Sequence variability in the HC-Pro coding regions of Korean soybean mosaic virus isolates is associated with differences in RNA silencing suppression. Arch Virol 159:1373–1383CrossRefPubMed Li M, Kim J, Seo E, Hong SM, Hwang E, Moon J, Domier LL, Hammond J, Youn Y, Lim H (2014) Sequence variability in the HC-Pro coding regions of Korean soybean mosaic virus isolates is associated with differences in RNA silencing suppression. Arch Virol 159:1373–1383CrossRefPubMed
37.
go back to reference Librado P, Rozas J (2009) DnaSP v5: a software for comprehensive analysis of DNA polymorphism data. Bioinformatics 25:1451–1452CrossRefPubMed Librado P, Rozas J (2009) DnaSP v5: a software for comprehensive analysis of DNA polymorphism data. Bioinformatics 25:1451–1452CrossRefPubMed
38.
go back to reference Lin J (2016) Pathogenicity and biological characteristics of recombinant Soybean mosaic virus in the Huang-Huai-Hai. Hebei Agricultural University, Hebei Lin J (2016) Pathogenicity and biological characteristics of recombinant Soybean mosaic virus in the Huang-Huai-Hai. Hebei Agricultural University, Hebei
39.
go back to reference Liu J, Fang Y, Pang H (2016) The Current Status of the Soybean-Soybean Mosaic Virus (SMV) Pathosystem. Front Microbiol 7:1906PubMedPubMedCentral Liu J, Fang Y, Pang H (2016) The Current Status of the Soybean-Soybean Mosaic Virus (SMV) Pathosystem. Front Microbiol 7:1906PubMedPubMedCentral
40.
go back to reference Maliogka VI, Salvador B, Carbonell A, Sã EP, Leã NDS, Oliveros JC, Delgadillo MO, Garcã AJA, Simón‐Mateo CA (2012) Virus variants with differences in the P1 protein coexist in a Plum pox virus population and display particular host-dependent pathogenicity features. Mol Plant Pathol 13:877–886CrossRefPubMedPubMedCentral Maliogka VI, Salvador B, Carbonell A, Sã EP, Leã NDS, Oliveros JC, Delgadillo MO, Garcã AJA, Simón‐Mateo CA (2012) Virus variants with differences in the P1 protein coexist in a Plum pox virus population and display particular host-dependent pathogenicity features. Mol Plant Pathol 13:877–886CrossRefPubMedPubMedCentral
41.
go back to reference Martin DP, Murrell B, Golden M, Khoosal A, Muhire B (2015) RDP4: detection and analysis of recombination patterns in virus genomes. Virus Evolution 1:v3CrossRef Martin DP, Murrell B, Golden M, Khoosal A, Muhire B (2015) RDP4: detection and analysis of recombination patterns in virus genomes. Virus Evolution 1:v3CrossRef
43.
44.
45.
go back to reference Ross JP (1977) Effect of aphid-transmitted soybean mosaic virus on yields of closely related resistant and susceptible soybean lines. Crop Sci 17:869–872CrossRef Ross JP (1977) Effect of aphid-transmitted soybean mosaic virus on yields of closely related resistant and susceptible soybean lines. Crop Sci 17:869–872CrossRef
46.
go back to reference Salvador B, Saénz P, Yangüez E, Quiot JB, Quiot L, Delgadillo M, García J, Simón-Mateo C (2008) Host-specific effect of P1 exchange between two potyviruses. Mol Plant Pathol 9:147–155CrossRefPubMed Salvador B, Saénz P, Yangüez E, Quiot JB, Quiot L, Delgadillo M, García J, Simón-Mateo C (2008) Host-specific effect of P1 exchange between two potyviruses. Mol Plant Pathol 9:147–155CrossRefPubMed
47.
go back to reference Seo J, Kan S, Seo BY, Jung JK, Kim K (2010) Mutational analysis of interaction between coat protein and helper component-proteinase of Soybean mosaic virus involved in aphid transmission. Mol Plant Pathol 11:265–276CrossRefPubMed Seo J, Kan S, Seo BY, Jung JK, Kim K (2010) Mutational analysis of interaction between coat protein and helper component-proteinase of Soybean mosaic virus involved in aphid transmission. Mol Plant Pathol 11:265–276CrossRefPubMed
48.
go back to reference Seo J, Ohshima K, Lee H, Son M, Choi H, Lee S, Sohn S, Kim K (2009) Molecular variability and genetic structure of the population of Soybean mosaic virus based on the analysis of complete genome sequences. Virology 393:91–103CrossRefPubMed Seo J, Ohshima K, Lee H, Son M, Choi H, Lee S, Sohn S, Kim K (2009) Molecular variability and genetic structure of the population of Soybean mosaic virus based on the analysis of complete genome sequences. Virology 393:91–103CrossRefPubMed
49.
go back to reference Seo JK, Vo Phan MS, Kang SH, Choi HS, Kim KH (2013) The charged residues in the surface-exposed C-terminus of the Soybean mosaic virus coat protein are critical for cell-to-cell movement. Virology 446:95–101CrossRefPubMed Seo JK, Vo Phan MS, Kang SH, Choi HS, Kim KH (2013) The charged residues in the surface-exposed C-terminus of the Soybean mosaic virus coat protein are critical for cell-to-cell movement. Virology 446:95–101CrossRefPubMed
50.
go back to reference Shang J, Xi D, Huang Q, Xu M, Yuan S, Wang S, Jia S, Cao S, Zhou Z, Lin H (2009) Effect of two satellite RNAs on Nicotiana glutinosa infected with Cucumber mosaic virus (CMV). Physiol Mol Plant 74:184–190CrossRef Shang J, Xi D, Huang Q, Xu M, Yuan S, Wang S, Jia S, Cao S, Zhou Z, Lin H (2009) Effect of two satellite RNAs on Nicotiana glutinosa infected with Cucumber mosaic virus (CMV). Physiol Mol Plant 74:184–190CrossRef
51.
go back to reference Shi Y, Chen J, Hong X, Chen J, Adams MJ (2007) A potyvirus P1 protein interacts with the Rieske Fe/S protein of its host. Mol Plant Pathol 8:785–790CrossRefPubMed Shi Y, Chen J, Hong X, Chen J, Adams MJ (2007) A potyvirus P1 protein interacts with the Rieske Fe/S protein of its host. Mol Plant Pathol 8:785–790CrossRefPubMed
52.
go back to reference Shukla DD, Ward CW, Brunt AA (1994) The potyviridae. CAB International, Wallingford Shukla DD, Ward CW, Brunt AA (1994) The potyviridae. CAB International, Wallingford
53.
go back to reference Simonloriere E, Holmes EC (2011) Why do RNA viruses recombine? Nat Rev Microbiol 9:617–626CrossRef Simonloriere E, Holmes EC (2011) Why do RNA viruses recombine? Nat Rev Microbiol 9:617–626CrossRef
54.
go back to reference Tajima F (1989) Statistical method for testing the neutral mutation hypothesis by DNA polymorphism. Genetics 123:585–595PubMedPubMedCentral Tajima F (1989) Statistical method for testing the neutral mutation hypothesis by DNA polymorphism. Genetics 123:585–595PubMedPubMedCentral
55.
go back to reference Tamura K, Peterson D, Peterson N, Stecher G, Nei M, Kumar S (2011) MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol 28:2731–2739CrossRefPubMedPubMedCentral Tamura K, Peterson D, Peterson N, Stecher G, Nei M, Kumar S (2011) MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol 28:2731–2739CrossRefPubMedPubMedCentral
56.
go back to reference Tomitaka Y, Ohshima K (2006) A phylogeographical study of the Turnip mosaic virus population in East Asia reveals an ‘emergent’ lineage in Japan. Mol Ecol 15:4437–4457CrossRefPubMedPubMedCentral Tomitaka Y, Ohshima K (2006) A phylogeographical study of the Turnip mosaic virus population in East Asia reveals an ‘emergent’ lineage in Japan. Mol Ecol 15:4437–4457CrossRefPubMedPubMedCentral
57.
go back to reference Urcuquiinchima S, Haenni AL, Bernardi F (2001) Potyvirus proteins: a wealth of functions. Virus Res 74:157–175CrossRef Urcuquiinchima S, Haenni AL, Bernardi F (2001) Potyvirus proteins: a wealth of functions. Virus Res 74:157–175CrossRef
58.
go back to reference Valli A, Lopez-Moya JJ, Garcia JA (2007) Recombination and gene duplication in the evolutionary diversification of P1 proteins in the family Potyviridae. J Gen Virol 88:1016–1028CrossRefPubMed Valli A, Lopez-Moya JJ, Garcia JA (2007) Recombination and gene duplication in the evolutionary diversification of P1 proteins in the family Potyviridae. J Gen Virol 88:1016–1028CrossRefPubMed
59.
go back to reference Valli AA, Gallo A, Rodamilans B, López-Moya JJ, García JA (2018) The HCPro from thePotyviridae family: an enviable multitasking Helper Component that every virus would like to have. Mol Plant Pathol 19:744–763CrossRefPubMed Valli AA, Gallo A, Rodamilans B, López-Moya JJ, García JA (2018) The HCPro from thePotyviridae family: an enviable multitasking Helper Component that every virus would like to have. Mol Plant Pathol 19:744–763CrossRefPubMed
60.
go back to reference Wang Y, Hajimorad MR (2016) Gain of virulence by Soybean mosaic virus on Rsv4-genotype soybeans is associated with a relative fitness loss in a susceptible host. Mol Plant Pathol 17:1154–1159CrossRefPubMedPubMedCentral Wang Y, Hajimorad MR (2016) Gain of virulence by Soybean mosaic virus on Rsv4-genotype soybeans is associated with a relative fitness loss in a susceptible host. Mol Plant Pathol 17:1154–1159CrossRefPubMedPubMedCentral
61.
go back to reference Wang Y, Khatabi B, Hajimorad MR (2015) Amino acid substitution in P3 of Soybean mosaic virus to convert avirulence to virulence on Rsv4-genotype soybean is influenced by the genetic composition of P3. Mol Plant Pathol 16:301–307CrossRefPubMed Wang Y, Khatabi B, Hajimorad MR (2015) Amino acid substitution in P3 of Soybean mosaic virus to convert avirulence to virulence on Rsv4-genotype soybean is influenced by the genetic composition of P3. Mol Plant Pathol 16:301–307CrossRefPubMed
62.
go back to reference Wen RH, Hajimorad MR (2010) Mutational analysis of the putative pipo of soybean mosaic virus suggests disruption of PIPO protein impedes movement. Virology 400:1–7CrossRefPubMed Wen RH, Hajimorad MR (2010) Mutational analysis of the putative pipo of soybean mosaic virus suggests disruption of PIPO protein impedes movement. Virology 400:1–7CrossRefPubMed
63.
go back to reference Whitlock M, McCauley D (1999) Indirect measures of gene flow and migration: FST ≠ 1/(4Nm + 1). Heredity 82:117–125CrossRefPubMed Whitlock M, McCauley D (1999) Indirect measures of gene flow and migration: FST ≠ 1/(4Nm + 1). Heredity 82:117–125CrossRefPubMed
64.
go back to reference Yang Y, Gong J, Li H, Li C, Wang D, Li K, Zhi H (2011) Identification of a novel Soybean mosaic virus isolate in China that contains a unique 5’ terminus sharing high sequence homology with Bean common mosaic virus. Virus Res 157:13–18CrossRefPubMed Yang Y, Gong J, Li H, Li C, Wang D, Li K, Zhi H (2011) Identification of a novel Soybean mosaic virus isolate in China that contains a unique 5’ terminus sharing high sequence homology with Bean common mosaic virus. Virus Res 157:13–18CrossRefPubMed
65.
go back to reference Yang Y, Lin J, Zheng G, Zhang M, Zhi H (2014) Recombinant soybean mosaic virus is prevalent in Chinese soybean fields. Arch Virol 159:1793–1796CrossRefPubMed Yang Y, Lin J, Zheng G, Zhang M, Zhi H (2014) Recombinant soybean mosaic virus is prevalent in Chinese soybean fields. Arch Virol 159:1793–1796CrossRefPubMed
66.
go back to reference Yoon Y, Lim S, Yun WJ, Kim BS, Bae DH, Maharjan R, Yi H, Bae S, Lee Y, Lee B (2017) First report of Soybean mosaic virus and Soybean yellow mottle mosaic virus in Vigna angularis. Plant Dis 102:689CrossRef Yoon Y, Lim S, Yun WJ, Kim BS, Bae DH, Maharjan R, Yi H, Bae S, Lee Y, Lee B (2017) First report of Soybean mosaic virus and Soybean yellow mottle mosaic virus in Vigna angularis. Plant Dis 102:689CrossRef
67.
go back to reference Zhan J, McDonald BA (2013) Experimental measures of pathogen competition and relative fitness. Annu Rev Phytopathol 51:131–153CrossRefPubMed Zhan J, McDonald BA (2013) Experimental measures of pathogen competition and relative fitness. Annu Rev Phytopathol 51:131–153CrossRefPubMed
68.
go back to reference Zhan J, Thrall PH, Papaix J, Xie L, Burdon JJ (2015) Playing on a pathogen’s weakness: using evolution to guide sustainable plant disease control strategies. Annu Rev Phytopathol 53:19–43CrossRefPubMed Zhan J, Thrall PH, Papaix J, Xie L, Burdon JJ (2015) Playing on a pathogen’s weakness: using evolution to guide sustainable plant disease control strategies. Annu Rev Phytopathol 53:19–43CrossRefPubMed
69.
go back to reference Zhou G, Shao Z, Ma F, Wu P, Wu X, Xie Z, Yu D, Cheng H, Liu Z, Jiang Z, Chen Q, Wang B, Chen J (2015) The evolution of soybean mosaic virus: An updated analysis by obtaining 18 new genomic sequences of Chinese strains/isolates. Virus Res 208:189–198CrossRefPubMed Zhou G, Shao Z, Ma F, Wu P, Wu X, Xie Z, Yu D, Cheng H, Liu Z, Jiang Z, Chen Q, Wang B, Chen J (2015) The evolution of soybean mosaic virus: An updated analysis by obtaining 18 new genomic sequences of Chinese strains/isolates. Virus Res 208:189–198CrossRefPubMed
70.
go back to reference Zhou G, Wu X, Zhang Y, Wu P, Wu X, Liu L, Wang Q, Hang Y, Yang J, Shao Z, Wang B, Chen J (2014) A genomic survey of thirty soybean-infecting bean common mosaic virus (BCMV) isolates from China pointed BCMV as a potential threat to soybean production. Virus Res 191:125–133CrossRefPubMed Zhou G, Wu X, Zhang Y, Wu P, Wu X, Liu L, Wang Q, Hang Y, Yang J, Shao Z, Wang B, Chen J (2014) A genomic survey of thirty soybean-infecting bean common mosaic virus (BCMV) isolates from China pointed BCMV as a potential threat to soybean production. Virus Res 191:125–133CrossRefPubMed
Metadata
Title
Genetic evolutionary analysis of soybean mosaic virus populations from three geographic locations in China based on the P1 and CP genes
Authors
Lei Zhang
Jing Shang
Qi Jia
Kai Li
Hui Yang
Huanhuan Liu
Zhongqin Tang
Xiaoli Chang
Min Zhang
Wenming Wang
Wenyu Yang
Publication date
01-04-2019
Publisher
Springer Vienna
Published in
Archives of Virology / Issue 4/2019
Print ISSN: 0304-8608
Electronic ISSN: 1432-8798
DOI
https://doi.org/10.1007/s00705-019-04165-5

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