Mostrar el registro sencillo del ítem
Presence of Potyvirus in the Norte de Santander department and molecular characterization of NIb protein in Colombian SCMV isolates
dc.contributor.author | Ortiz, Luz | |
dc.contributor.author | Chaves-Bedoya, Giovanni | |
dc.date.accessioned | 2021-11-14T21:54:22Z | |
dc.date.available | 2021-11-14T21:54:22Z | |
dc.date.issued | 2021-05-18 | |
dc.identifier.uri | http://repositorio.ufps.edu.co/handle/ufps/979 | |
dc.description.abstract | Potyviruses are the largest genus of plant viruses that cause significant losses over a wide range of crops. In this paper, the presence of potyvirus in different plant crops in the provinces of Ocaña and Pamplona located in the north and south of the Department of Norte de Santander (Colombia) was evaluated with RT-PCR analysis using universal oligonucleotides specific to the region that encodes the NIB protein. The results indicate the presence of several potyvirus in Pamplona in economically important crops such as corn (Zea mays), tomato (Solanum lycopersicum), potato (Solanum tuberosum) and zucchini (Cucurbita pepo). In Ocaña, potyvirus was found in bean (Phaseolus vulgaris), corn and pumpkin (Cucurbita maxima/i>). In corn, one of the most important crops, the presence of the Sugarcane mosaic virus (SCMV) was confirmed with nucleotide sequencing. This is the first report of this virus in the department. The presence of several potyviruses in different crops in Norte de Santander indicate an alarming phytosanitary condition that must be addressed with priority to establish detection and control systems that maximize production, ensure agricultural sustainability, and propose certification schemes and improvement programs to reduce economic losses. | eng |
dc.description.abstract | Los potyvirus son el género más grande de virus de plantas que ocasionan pérdidas significativas en un amplio rango de cultivos. En este trabajo mediante análisis de RT-PCR con oligonucleótidos universales específicos para la región que codifica la proteína NIb, se evaluó la presencia de potyvirus en diferentes plantas de cultivo en las provincias de Ocaña y Pamplona ubicados al norte y sur del departamento de Norte de Santander respectivamente. Los resultados indican la presencia de potyvirus en la provincia de Pamplona en plantas de importancia económica como maíz (Zea mays), tomate (Solanum lycopersicum), papa (Solanum tuberosum) y calabacín (Cucurbita pepo); y en la provincia de Ocaña en plantas de frijol (Phaseolus vulgaris), maíz y ahuyama (Cucurbita maxima). En maíz se confirmó mediante secuenciación nucleotídica la presencia del virus del mosaico de la caña de azúcar (SCMV), por lo que este se constituye el primer reporte de este virus en el departamento. Los resultados positivos por RT-PCR de la presencia de potyvirus en diferentes cultivos en Norte de Santander indican la necesidad apremiante de establecer sistemas de detección y control que permitan maximizar la producción, asegurar la sustentabilidad agrícola, proponer esquemas de certificación y programas de mejoramiento para reducir las pérdidas económicas. | spa |
dc.format.mimetype | application/pdf | spa |
dc.language.iso | eng | spa |
dc.publisher | Revista Colombiana De Ciencias Hortícolas | spa |
dc.relation.ispartof | Revista Colombiana De Ciencias Hortícolas | |
dc.rights | The copyright of the articles and illustrations are the property of the Revista Colombiana de Ciencias Hortícolas. The editors authorize the use of the contents under the Creative Commons license Attribution-Noncommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0). The correct citation of the content must explicitly register the name of the journal, name (s) of the author (s), year, title of the article, volume, number, page of the article and DOI. Written permission is required from publishers to publish more than a short summary of the text or figures. | eng |
dc.source | https://revistas.uptc.edu.co/index.php/ciencias_horticolas/article/view/12481 | spa |
dc.title | Presence of Potyvirus in the Norte de Santander department and molecular characterization of NIb protein in Colombian SCMV isolates | eng |
dc.type | Artículo de revista | spa |
dcterms.references | Agrios, G.N. 2005. Plant diseases caused by viruses. pp. 724-820. In: Agrios, G.N. (ed.). Plant pathology. 5th ed. Academic Press, Burlington, MA. Doi: 10.1016/ B978-0-08-047378-9.50020-8 | spa |
dcterms.references | Altschul, S.F., T.L. Madden, A.A. Schaffer, J. Zhang, Z. Zhang, W. Miller, and D.J. Lipman. 1997. Gapped BLAST and PSI-BLAST: A new generation of protein database search programs. Nucleic Acids Res. 25(17), 3389-3402. Doi: 10.1093/nar/25.17.3389 | spa |
dcterms.references | Ayala, M., P. González, P. Gutiérrez, J. Cotes, and M. Marín. 2010. Caracterización serológica y molecular de Potyvirus asociados a la virosis del tomate de árbol en Antioquia. Acta Biol. Colomb. 15(3), 145-164 | spa |
dcterms.references | Betancourt, C., C. Salomon, J. Noreno, S. Montaño, C. Salazar, P. Uribe, A. Martínez, L. Muñoz, and M. Cuervo. 2020. Primer registro del Sugarcane mosaic virus en achira (Canna edulis Ker.) en Nariño, Colombia. Rev. U.D.C.A. Act. & Div. Cient. 23(1), e1461. Doi: 10.31910/rudca.v23.n1.2020.1461 | spa |
dcterms.references | Camacho, C., G. Coulouris, V. Avagyan, N. Ma, J. Papadopoulos, K. Bealer, and T.L. Madden. 2009.BLAST+: architecture and applications. BMC Bioinform. 10, 421. Doi: 10.1186/1471-2105-10-421 | spa |
dcterms.references | Chaves-Bedoya, G. and L.Y. Ortiz-Rojas. 2012. Evidence of different phylogenetic origins of two mexican Sugarcane mosaic virus (SCMV) isolates. Acta Agron. 61(1), 79-87 | spa |
dcterms.references | Chaves-Bedoya, G. and L.Y. Ortiz-Rojas. 2015. Genetic variability of Papaya ringspot virus isolates in Norte de Santander - Colombia. Agron. Colomb. 33(2), 184- 193. Doi: 10.15446/agron.colomb.v33n2.50095 | spa |
dcterms.references | Chen, J., J. Chen, and M.J. Adams. 2001. A universal PCR primer to detect members of the Potyviridae and its use to examine the taxonomic status of several members of the family. Arch. Virol. 146(4), 757-766. Doi: 10.1007/s007050170144 | spa |
dcterms.references | Clark, K., I. Karsch-Mizrachi, D.J. Lipman, J. Ostell, and E.W. Sayers. 2016. GenBank. Nucleic Acids Res. 44(D1), 67-72. Doi: 10.1093/nar/gkv1276 | spa |
dcterms.references | Díaz, A., M. Quiñones, F. Arana, M. Soto, and A. Hernández. 2010. Potyvirus: Características generales, situación de su diagnóstico y determinación de su presencia en el cultivo de pimiento en Cuba. Rev. Prot. Veg. 25(2), 69-79 | spa |
dcterms.references | Gibbs, A. and A. Mackenzie. 1997. A primer pair for amplifying part of the genome of all potyvirids by RTPCR. J. Virol. Methods 63(1-2), 9-16. Doi: 10.1016/ S0166-0934(96)02103-9 | spa |
dcterms.references | Gutiérrez, P. and M. Marín. 2018. Identificación molecular de potyvirus infectando cultivos de papa en el Oriente de Antioquia. Acta Biol. Colomb. 23(1), 39-50. Doi: 10.15446/abc.v23n1.65683 | spa |
dcterms.references | Ha, C., S. Coombs, P.A. Revill, R.M. Harding, M. Vu, and J.L. Dale. 2008. Design and application of two novel degenerate primer pairs for the detection and complete genomic characterization of potyviruses. Arch. Virol. 153(1), 25-36. Doi: 10.1007/s00705-007-1053-7 | spa |
dcterms.references | Hong, Y. and A.G. Hunt. 1996. RNA polymerase activity catalyzed by a potyvirus-encoded RNA-dependent RNA polymerase. Virology 226(1), 146-151. Doi: 10.1006/viro.1996.0639 | spa |
dcterms.references | ICTV, International Committee on Taxonomy of Viruses. 2020. ICTV virus taxonomy profile: Genus Potyvirus. In: https://talk.ictvonline.org/ictv-reports/ ictv_online_report/positive-sense-rna-viruses/w/potyviridae/572/genus-potyvirus; consulted: February, 2020 | spa |
dcterms.references | Joo-Jin, J., J. Ho-Joung, and N. Jaejong. 2014. A review of detection methods for the plant viruses. Res. Plant Dis. 20, 173-181. Doi: 10.5423/RPD.2014.20.3.173 | spa |
dcterms.references | Juarez, M., M.P. Rabadan, L.D. Martinez, M. Tayahi, A. Grande-Perez, and P. Gomez. 2019. Natural hosts and genetic diversity of the emerging Tomato leaf curl New Delhi virus in Spain. Front Microbiol. 10, 140. Doi: 10.3389/fmicb.2019.00140 | spa |
dcterms.references | Langeveld, S.A., J.M. Dore, J. Memelink, A.F. Derks, C.I. van der Vlugt, C.J. Asjes, and J.F. Bol. 1991. Identification of potyviruses using the polymerase chain reaction with degenerate primers. J. Gen. Virol. 72(Pt 7), 1531-1541. Doi: 10.1099/0022-1317-72-7-1531 | spa |
dcterms.references | Mirmajlessi, S.M., M. Destefanis, R.A. Gottsberger, M. Mand, and E. Loit. 2015. PCR-based specific techniques used for detecting the most important pathogens on strawberry: a systematic review. Syst. Rev. 4, 9. Doi: 10.1186/2046-4053-4-9 | spa |
dcterms.references | Morales, F.J., I. Lozano, R. Sedano, M. Castaño, and J. Arroyave. 2002. Partial characterization of a potyvirus infecting African oil palm in South America. J. Phytopathol. 150, 297-301. Doi: 10.1046/j.1439-0434.2002.00749.x | spa |
dcterms.references | Nigam, D., K. LaTourrette, P.F.N. Souza, and H. Garcia-Ruiz. 2019. Genome-wide variation in Potyviruses. Front Plant Sci. 10, 1439. Doi: 10.3389/fpls.2019.01439 | spa |
dcterms.references | Ortiz-Rojas, L.Y. and G. Chaves-Bedoya. 2017. Molecular characterization of two papaya ringspot virus isolates that cause devastating symptoms in Norte de Santander, Colombia. Eur. J. Plant Pathol. 148, 883- 894. Doi: 10.1007/s10658-016-1143-z | spa |
dcterms.references | Pappu, S.S., R. Brand, H.R. Pappu, E.P. Rybicki, K.H. Gough, M.J. Frenkel, and C.L. Niblett. 1993. A polymerase chain reaction method adapted for selective amplification and cloning of 3’ sequences of potyviral genomes: application to dasheen mosaic virus. J. Virol. Methods 41(1), 9-20. Doi: 10.1016/0166-0934(93)90158-N | spa |
dcterms.references | Ranabhat, N.B., T. Seipel, E.A. Lehnhoff, Z.J. Miller, K.E. Owen, F.D. Menalled, and M.E. Burrows. 2018. Temperature and alternative hosts influence Aceria tosichella infestation and Wheat streak mosaic virus infection. Plant Dis. 102(3), 546-551. Doi: 10.1094/ PDIS-06-17-0782-RE | spa |
dcterms.references | Revers, F. and J.A. Garcia. 2015. Molecular biology of potyviruses. Adv. Virus Res. 92, 101-199. Doi: 10.1016/ bs.aivir.2014.11.006 | spa |
dcterms.references | Riascos, M., P.A. Gutiérrez, and M.A. Marín. 2017. Identificación molecular de Potyvirus infectando cultivos de papa en el oriente de Antioquia (Colombia). Acta Biol. Colomb. 23(1), 39-50. Doi: 10.15446/abc.v23n1.65683 | spa |
dcterms.references | Rivera-Toro, D.M., K. López-López, and J.C. Vaca-Vaca. 2021. First molecular characterization of pepper severe mottle virus infecting chili pepper crops in Colombia. J. Plant Pathol. 321-325. Doi: 10.1007/ s00705-004-0440-6 | spa |
dcterms.references | Scholthof, K.B. 2007. The disease triangle: pathogens, the environment and society. Nat. Rev. Microbiol. 5(2), 152-156. Doi: 10.1038/nrmicro1596 | spa |
dcterms.references | Shen, W., Y. Shi, Z. Dai, and A. Wang. 2020. The RNA-dependent RNA polymerase NIb of Potyviruses plays multifunctional, contrasting roles during viral infection. Viruses 12(1). Doi: 10.3390/v12010077 | spa |
dcterms.references | Srinivasan, R., F. Cervantes, and J. Alvarez. 2013. Aphid-borne virus dynamics in the popato-weed pathosystem. pp. 311-337. In: Alyokhin, A., C. Vincent, and P. Giordanengo (eds.). Insect pests of potato. Elsevier, Oxford (UK). Doi: 10.1016/ B978-0-12-386895-4.00011-9 | spa |
dcterms.references | Stover, B.C. and K.F. Muller. 2010. TreeGraph 2: combining and visualizing evidence from different phylogenetic analyses. BMC Bioinform. 11, 7. Doi: 10.1186/1471-2105-11-7 | spa |
dcterms.references | Thompson, J.R., S. Wetzel, M.M. Klerks, D. Vaskova, C.D. Schoen, J. Spak, and W. Jelkmann. 2003. Multiplex RTPCR detection of four aphid-borne strawberry viruses in Fragaria spp. in combination with a plant mRNA specific internal control. J. Virol. Methods 111(2), 85- 93. Doi: 10.1016/S0166-0934(03)00164-2 | spa |
dcterms.references | Zheng, L., B.C. Rodoni, M.J. Gibbs, and A.J. Gibbs. 2010. A novel pair of primers for the detection of potyviruses. Plant Pathol. 59(2), 211-220. Doi: 10.1111/j.1365-3059.2009.02201.x | spa |
dc.coverage.region | Norte de Santander , Colombia | |
dc.identifier.doi | https://doi.org/10.17584/rcch.2021v15i2.12481 | |
dc.relation.citationedition | Vol.15 No.2.(2021) | spa |
dc.relation.citationendpage | 12481 | spa |
dc.relation.citationissue | 2 (2021) | spa |
dc.relation.citationstartpage | 12481 | spa |
dc.relation.citationvolume | 15 | spa |
dc.relation.cites | Chaves-Bedoya, G., & Ortíz-Rojas, L. Y. (2021). Presence of Potyvirus in the Norte de Santander department and molecular characterization of NIb protein in Colombian SCMV isolates. Revista Colombiana de Ciencias Hortícolas, 15(2), e12481. https://doi.org/10.17584/rcch.2021v15i2.12481 | |
dc.relation.ispartofjournal | Revista Colombiana De Ciencias Hortícolas | spa |
dc.rights.accessrights | info:eu-repo/semantics/openAccess | spa |
dc.rights.creativecommons | Atribución-NoComercial-CompartirIgual 4.0 Internacional (CC BY-NC-SA 4.0) | spa |
dc.subject.proposal | molecular diagnosis | eng |
dc.subject.proposal | phytopathology | eng |
dc.subject.proposal | plant virus | eng |
dc.subject.proposal | Potyvirus | eng |
dc.subject.proposal | diagnóstico molecular | spa |
dc.subject.proposal | fitopatología | spa |
dc.subject.proposal | virus vegetal | eng |
dc.title.translated | Presencia de Potyvirus en el departamento de Norte de Santander y caracterización molecular de la proteína NIb en aislamientos colombianos de SCMV | |
dc.type.coar | http://purl.org/coar/resource_type/c_6501 | spa |
dc.type.content | Text | spa |
dc.type.driver | info:eu-repo/semantics/article | spa |
dc.type.redcol | http://purl.org/redcol/resource_type/ART | spa |
oaire.accessrights | http://purl.org/coar/access_right/c_abf2 | spa |
oaire.version | http://purl.org/coar/version/c_970fb48d4fbd8a85 | spa |
dc.type.version | info:eu-repo/semantics/publishedVersion | spa |