Molecular Detection and Phylogenetic Characterization of Soybean Mosaic Virus Infecting Soybean (Glycine max L.)
DOI:
https://doi.org/10.37134/jsml.vol14.3.8.2026Keywords:
Soybean mosaic virus, Coat protein gene, RT-PCR, Phylogenetic analysis, SoybeanAbstract
Soybean (Glycine max L.) is one of the world's most important legume crops, valued for its high protein content and extensive applications in food, feed, and industrial products. However, soybean production is frequently threatened by Soybean mosaic virus (SMV), one of the most destructive viral pathogens affecting crop yield and seed quality. This study aimed to detect and molecularly characterize SMV infecting soybean in Uzbekistan. During the 2023 growing season, leaf samples were collected from 35 soybean varieties exhibiting typical virus-like symptoms, including mosaic, yellowing, stunting, and leaf deformation, from the experimental field of the Institute of Genetics and Experimental Plant Biology of the Republic of Uzbekistan. Total RNA was extracted from symptomatic plants and subjected to RT-PCR using SMV-specific primers targeting the coat protein (CP) gene. A DNA fragment of approximately 756 bp was successfully amplified from infected samples, confirming the presence of SMV. The amplified CP gene was sequenced and analyzed to determine its genetic relationship with previously reported SMV isolates. Phylogenetic analysis showed that the Uzbek isolate TH-UZB1 (GenBank accession no. OQ385206.1) clustered closely with Korean SMV isolates and shared high nucleotide identity with the Serbian isolate NDS_21, indicating a high degree of genetic similarity. The molecular detection and characterization of SMV reported in this study provide valuable information on the occurrence and genetic identity of the virus in Uzbekistan. These findings contribute to a better understanding of the genetic diversity of SMV and provide a scientific basis for disease surveillance, resistance breeding, and the development of effective management strategies for sustainable soybean production.
Downloads
References
Benarba B, Belhouala K, Korkmaz C, Taş-Küçükaydin M, Küçükaydın S, Duru ME. (2025). Phytochemical composition and biological activities of Ephedra alata Decne.: Antioxidant, anti-inflammatory and anticancer potentials. Journal of Science and Mathematics Letters, 13(2), 33-47. doi:10.37134/jsml.vol13.2.3.2025
Bohn T, Cuhra M, Traavik T, Sanden M, Fagan J, Primicerio R. (2013). Compositional differences in soybeans on the market: Glyphosate accumulates in Roundup Ready GM soybeans. Food Chemistry, 153, 207-215. doi:10.1016/j.foodchem.2013.12.054
Che Z, Liu H, Yi F, Cheng H, Yang Y, Wang L, Du J, Zhang P, Wang J, Yu D. (2017). Genome-wide association study reveals novel loci for SC7 resistance in a soybean mutant panel. Frontiers in Plant Science, 8, 1771. doi:10.3389/fpls.2017.01771
Cui X, Chen X, Wang A. (2011). Detection, understanding and control of soybean mosaic virus. In InTech eBooks. doi:10.5772/14298
Domier LL, Steinlage TA, Hobbs HA, Wang Y, Herrera-Rodriguez G, Haudenshield JS, McCoppin NK, Hartman GL. (2007). Similarities in seed and aphid transmission among Soybean mosaic virus isolates. Plant Disease, 91(5), 546-550. doi:10.1094/PDIS-91-5-0546
Eid MA, Momeh GN, El-Shanshoury AER, Allam NG, Gaafar RM. (2023). Comprehensive analysis of soybean cultivars' response to SMV infection: genotypic association, molecular characterization, and defense gene expressions. Journal of Genetic Engineering and Biotechnology, 21(1), 102. doi:10.1186/s43141-023-00558-x
Elmore MG, Groves CL, Hajimorad MR, Stewart TP, Gaskill MA, Wise KA, Sikora E, Kleczewski NM, Smith DL, Mueller DS, Whitham SA. (2022). Detection and discovery of plant viruses in soybean by metagenomic sequencing. Virology Journal, 19(1), 149. doi:10.1186/s12985-022-01872-5
Fang H, Gao L, Michaud JP, Chen H, Liu X, Zhang S, Li Z. (2024). Virus-induced changes in host plant phenotype cue behavioral changes in Aphis glycines that enhance acquisition and transmission of soybean mosaic virus. Journal of Pest Science, 97(3), 1541-1556. doi:10.1007/s10340-023-01718-1
Gambley C, Nimmo P, Persley D, Steele V, Sharman M, Campbell P. (2022). Cowpea mild mottle virus, a sometimes problem for French bean crops. Australasian Plant Pathology, 51(6), 565-576. doi:10.1007/s13313-022-00884-7
Hajimorad MR, Domier LL, Tolin SA, Whitham SA, Maroof MAS. (2017). Soybean mosaic virus: a successful potyvirus with a wide distribution but restricted natural host range. Molecular Plant Pathology, 19(7), 1563-1579. doi:10.1111/mpp.12644
Hill JH, Whitham SA. (2014). Control of virus diseases in soybeans. Advances in Virus Research, 90, 355-390. doi:10.1016/B978-0-12-801246-8.00007-X
Hill JH. (1999). Soybean mosaic virus. In: Compendium of Soybean Diseases, 3rd ed., Hartman GL, Sinclair JB, Rupe JC, Eds., American Phytopathological Society, St. Paul, MN, USA, p. 70-71.
Li K, Yang QH, Zhi HJ, Gai JY. (2010). Identification and distribution of Soybean mosaic virus strains in southern China. Plant Disease, 94(3), 351-357. doi:10.1094/PDIS-94-3-0351
Lin F, Chhapekar SS, Vieira CC, Da Silva MP, Rojas A, Lee D, Liu N, Pardo EM, Lee Y, Dong Z, Pinheiro JB, Ploper LD, Rupe J, Chen P, Wang D, Nguyen HT. (2022). Breeding for disease resistance in soybean: a global perspective. Theoretical and Applied Genetics, 135(11), 3773-3872. doi:10.1007/s00122-022-04101-3
Liu J, Fang Y, Pang H. (2016). The current status of the soybean-soybean mosaic virus (SMV) pathosystem. Frontiers in Microbiology, 7, 1906. doi:10.3389/fmicb.2016.01906
Liu L, Han R, Yu N, Zhang W, Xing L, Xie D, Peng D. (2018). A method for extracting high-quality total RNA from plant rich in polysaccharides and polyphenols using Dendrobium huoshanense. PLoS One, 13(5), e0196592. doi:10.1371/journal.pone.0196592
Molina-Jauregui PP, Mérida-Reyes MS, Da Silva AJR, Sabino JFP. (2025). Unveiling the phytochemical richness of Guatemalan spondias: comparative analysis of phenolics, flavonoids and antioxidant potential. Journal of Science and Mathematics Letters, 13(2), 174-183. doi:10.37134/jsml.vol13.2.13.2025
Miao G, Zhang L, Zhang J, Ge S, Xia N, Qian S, Yu D, Qiu X. (2020). Free convective PCR: from principle study to commercial applications - a critical review. Analytica Chimica Acta, 1108, 177-197. doi:10.1016/j.aca.2020.01.069
Ministry of Agriculture of the Republic of Uzbekistan. (2023). Development of soybean cultivation in Uzbekistan. Retrieved from minagri.uz
Narmukhamedova M, Khusanov T, Kadirova G, Jumayorov S, Akhmedova Z, Kadirova Z. (2025). An extracellular ribonuclease from Bacillus subtilis TM and Bacillus velezensis TM with antiviral activity against TMV. Microbiology and Biotechnology Letters, 53(2), 253-260. doi:10.48022/mbl.2503.03005
Narmukhamedova M, Khusanov T, Kadirova G, Jumayorov S, Kalandarova M. (2024). Isolation and identification of Bacillus subtilis and its potential in biocontrol of phytopathogenic fungi. E3S Web of Conferences, 539, 02017. doi:10.1051/e3sconf/202453902017
Rani R, Raza G, Ashfaq H, Rizwan M, Razzaq MK, Waheed MQ, Shimelis H, Babar AD, Arif M. (2023). Genome-wide association study of soybean (Glycine max [L.] Merr.) germplasm for dissecting the quantitative trait nucleotides and candidate genes underlying yield-related traits. Frontiers in Plant Science, 14, 1229495. doi:10.3389/fpls.2023.1229495
Rehman FU, Kalsoom M, Adnan M, Naz N, Nasir TA, Ali H, Shafique T, Murtaza G, Anwar S, Arshad MA. (2021). Soybean mosaic disease (SMD): a review. Egyptian Journal of Basic and Applied Sciences, 8(1), 12-16. doi:10.1080/2314808X.2021.1881245
Salmanova M, Hasanova G, Karimov A, Hasanova S, Nuriyeva S. (2026). Electrophoretic polymorphism of globulin proteins and its association with nutritional and physicochemical traits in Chickpea (Cicer arietinum L.). Journal of Science and Mathematics Letters, 14(2), 294-307. doi:10.37134/jsml.vol14.2.10.2026
Wang Y, Hobbs HA, Hill CB, Domier LL, Hartman GL, Nelson RL. (2005). Evaluation of ancestral lines of U.S. soybean cultivars for resistance to four soybean viruses. Crop Science, 45(2), 639-644. doi:10.2135/cropsci2005.0639
Yao L, Yang B, Ma X, Wang S, Guan Z, Wang B, Jiang Y. (2020). A genome-wide view of transcriptional responses during Aphis glycines infestation in soybean. International Journal of Molecular Sciences, 21(15), 5191. doi:10.3390/ijms21155191
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Shuhrat Jumayorov, Tohir Xusanov, Zakhro Akhmedova, Zukhra Kadirova, Abdirasul Vaxobov, Xasan Sagdiyev, Nigora Nazarova, Masudjon Sattarov

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.
