Submitted:
12 September 2025
Posted:
15 September 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Geographical Distribution of Sample Collection Sites
2.2. Isolation of Blood Cells and DNA Extraction
2.3. PCR Diagnostics and Obtaining Sequences of the Env Gene Fragment for Sequencing
2.4. DNA Sequencing and Analysis of Nucleotide and Amino Acid Sequences
3. Results
3.1. Prevalence of BLV Among Cattle in Individual and Commercial Farms of Kochenyovo District of Novosibirsk Region
3.2. Phylogenetic Analysis of BLV Strains Spreading in the Novosibirsk Region

3.3. Analysis of Nucleotide and Amino Acid Sequences of the BLV


3.4. Mutation Analysis of the Studied Sequences of BLV Isolates

4. Discussion
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| BLV | Bovine leukemia virus |
| LLC | Limited Liability Company |
| FLK | Fetal Lamb Kidney |
| EBL | Enzootic bovine leukosis |
References
- Altaner, Č.; Zajac, V.; Bán, J. A Simple and Inexpensive Method for Detection of BLV Infected Cattle Based on a Modified ELISA Principle. Zentralblatt für Veterinärmedizin Reihe B 2010, 29, 583–590. [Google Scholar] [CrossRef]
- Lefkowitz, E.J.; Dempsey, D.M.; Hendrickson, R.C.; Orton, R.J.; Siddell, S.G.; Smith, D.B. Virus Taxonomy: The Database of the International Committee on Taxonomy of Viruses (ICTV). Nucleic Acids Research 2018, 46, D708–D717. [Google Scholar] [CrossRef]
- Bartlett, P.C.; Ruggiero, V.J.; Hutchinson, H.C.; Droscha, C.J.; Norby, B.; Sporer, K.R.B.; Taxis, T.M. Current Developments in the Epidemiology and Control of Enzootic Bovine Leukosis as Caused by Bovine Leukemia Virus. Pathogens 2020, 9, 1058. [Google Scholar] [CrossRef] [PubMed]
- Polat, M.; Takeshima, S.; Aida, Y. Epidemiology and Genetic Diversity of Bovine Leukemia Virus. Virol J 2017, 14, 209. [Google Scholar] [CrossRef]
- Marawan, M.A.; Alouffi, A.; El Tokhy, S.; Badawy, S.; Shirani, I.; Dawood, A.; Guo, A.; Almutairi, M.M.; Alshammari, F.A.; Selim, A. Bovine Leukaemia Virus: Current Epidemiological Circumstance and Future Prospective. Viruses 2021, 13, 2167. [Google Scholar] [CrossRef]
- Mori, H.; Tomiyasu, T.; Nishiyama, K.; Matsumoto, M.; Osawa, Y.; Okazaki, K. L233P Mutation in the Bovine Leukemia Virus Tax Protein Depresses Endothelial Cell Recruitment and Tumorigenesis in Athymic Nude Mice. Arch Virol 2019, 164, 1343–1351. [Google Scholar] [CrossRef]
- Tajima, S.; Aida, Y. Induction of Expression of Bovine Leukemia Virus (BLV) in Blood Taken from BLV-Infected Cows without Removal of Plasma. Microbes and Infection 2005, 7, 1211–1216. [Google Scholar] [CrossRef]
- Florins, A. Cell Dynamics and Immune Response to BLV Infection: A Unifying Model. Front Biosci 2007, 12, 1520. [Google Scholar] [CrossRef]
- Panei, C.J.; Takeshima, S.; Omori, T.; Nunoya, T.; Davis, W.C.; Ishizaki, H.; Matoba, K.; Aida, Y. Estimation of Bovine Leukemia Virus (BLV) Proviral Load Harbored by Lymphocyte Subpopulations in BLV-Infected Cattle at the Subclinical Stage of Enzootic Bovine Leucosis Using BLV-CoCoMo-qPCR. BMC Vet Res 2013, 9, 95. [Google Scholar] [CrossRef] [PubMed]
- Gillet, N.; Florins, A.; Boxus, M.; Burteau, C.; Nigro, A.; Vandermeers, F.; Balon, H.; Bouzar, A.-B.; Defoiche, J.; Burny, A.; et al. Mechanisms of Leukemogenesis Induced by Bovine Leukemia Virus: Prospects for Novel Anti-Retroviral Therapies in Human. Retrovirology 2007, 4, 18. [Google Scholar] [CrossRef]
- Forletti, A.; Lützelschwab, C.M.; Cepeda, R.; Esteban, E.N.; Gutiérrez, S.E. Early Events Following Bovine Leukaemia Virus Infection in Calves with Different Alleles of the Major Histocompatibility Complex DRB3 Gene. Vet Res 2020, 51, 4. [Google Scholar] [CrossRef]
- Rodriguez, S.M.; Golemba, M.D.; Campos, R.H.; Trono, K.; Jones, L.R. Bovine Leukemia Virus Can Be Classified into Seven Genotypes: Evidence for the Existence of Two Novel Clades. Journal of General Virology 2009, 90, 2788–2797. [Google Scholar] [CrossRef]
- Balić, D.; Lojkić, I.; Periškić, M.; Bedeković, T.; Jungić, A.; Lemo, N.; Roić, B.; Čač, Ž.; Barbić, L.; Madić, J. Identification of a New Genotype of Bovine Leukemia Virus. Arch Virol 2012, 157, 1281–1290. [Google Scholar] [CrossRef]
- Polat, M.; Takeshima, S.; Hosomichi, K.; Kim, J.; Miyasaka, T.; Yamada, K.; Arainga, M.; Murakami, T.; Matsumoto, Y.; De La Barra Diaz, V.; et al. A New Genotype of Bovine Leukemia Virus in South America Identified by NGS-Based Whole Genome Sequencing and Molecular Evolutionary Genetic Analysis. Retrovirology 2016, 13, 4. [Google Scholar] [CrossRef]
- Lee, E.; Kim, E.-J.; Ratthanophart, J.; Vitoonpong, R.; Kim, B.-H.; Cho, I.-S.; Song, J.-Y.; Lee, K.-K.; Shin, Y.-K. Molecular Epidemiological and Serological Studies of Bovine Leukemia Virus (BLV) Infection in Thailand Cattle. Infection, Genetics and Evolution 2016, 41, 245–254. [Google Scholar] [CrossRef] [PubMed]
- Polat, M.; Moe, H.H.; Shimogiri, T.; Moe, K.K.; Takeshima, S.; Aida, Y. The Molecular Epidemiological Study of Bovine Leukemia Virus Infection in Myanmar Cattle. Arch Virol 2017, 162, 425–437. [Google Scholar] [CrossRef] [PubMed]
- Yu, C.; Wang, X.; Zhou, Y.; Wang, Y.; Zhang, X.; Zheng, Y. Genotyping Bovine Leukemia Virus in Dairy Cattle of Heilongjiang, Northeastern China. BMC Vet Res 2019, 15, 179. [Google Scholar] [CrossRef]
- Sultanov, A.; Rola-Łuszczak, M.; Mamanova, S.; Ryło, A.; Osiński, Z.; Saduakassova, M.A.; Bashenova, E.; Kuźmak, J. Molecular Characterization of Bovine Leukemia Virus with the Evidence of a New Genotype Circulating in Cattle from Kazakhstan. Pathogens 2022, 11, 180. [Google Scholar] [CrossRef]
- Le, D.T.; Yamashita-Kawanishi, N.; Okamoto, M.; Nguyen, S.V.; Nguyen, N.H.; Sugiura, K.; Miura, T.; Haga, T. Detection and Genotyping of Bovine Leukemia Virus (BLV) in Vietnamese Cattle. J. Vet. Med. Sci. 2020, 82, 1042–1050. [Google Scholar] [CrossRef] [PubMed]
- Frommelt, Drew The Economic Impact of Bovine Leukemia Virus on Michigan Dairies, [object Object].
- Corredor-Figueroa, A.P.; Salas, S.; Olaya-Galán, N.N.; Quintero, J.S.; Fajardo, Á.; Soñora, M.; Moreno, P.; Cristina, J.; Sánchez, A.; Tobón, J.; et al. Prevalence and Molecular Epidemiology of Bovine Leukemia Virus in Colombian Cattle. Infection, Genetics and Evolution 2020, 80, 104171. [Google Scholar] [CrossRef]
- Gulyukin, M.I.; Ivanova, L.A.; Stepanova, T.V.; Barabanov, I.I.; Kozyreva, N.G. CONTROL AND TRENDS IN THE EPIZOOTIC SITUATION OF BOVINE LEUKEMIA IN 2000-2016. RJOAS 2017, 71, 530–537. [Google Scholar] [CrossRef]
- Kuzmin, V.; Gulyukin, M.; Gulyukin, A.; Metlin, A.; Prosvirnin, G.; Tsyganov, A.; Orekhov, D.; Makavchik, S.; Khakhaev, I.; Evglevskiy, D. Spread Dynamics of Leucosis in Cattle in Livestock Farms of the Russian Federation for 2000–2018. KLS 2019. [Google Scholar] [CrossRef]
- Rulka J Evaluation of the Nested-PCR Method for the Diagnosis of Bovine Leukaemia Virus (BLV) Infection. BULLETIN-VETERINARY INSTITUTE IN PULAWY 2001, 45, 11–19.
- Tamura, K.; Stecher, G.; Peterson, D.; Filipski, A.; Kumar, S. MEGA6: Molecular Evolutionary Genetics Analysis Version 6.0. Molecular Biology and Evolution 2013, 30, 2725–2729. [Google Scholar] [CrossRef]
- Trifinopoulos, J.; Nguyen, L.-T.; von Haeseler, A.; Minh, B.Q. W-IQ-TREE: A Fast Online Phylogenetic Tool for Maximum Likelihood Analysis. Nucleic Acids Res 2016, 44, W232–W235. [Google Scholar] [CrossRef]
- Muhire, B.M.; Varsani, A.; Martin, D.P. SDT: A Virus Classification Tool Based on Pairwise Sequence Alignment and Identity Calculation. PLoS ONE 2014, 9, e108277. [Google Scholar] [CrossRef]
- Carroll, D.S.; Emerson, G.L.; Li, Y.; Sammons, S.; Olson, V.; Frace, M.; Nakazawa, Y.; Czerny, C.P.; Tryland, M.; Kolodziejek, J.; et al. Chasing Jenner’s Vaccine: Revisiting Cowpox Virus Classification. PLoS ONE 2011, 6, e23086. [Google Scholar] [CrossRef] [PubMed]
- Zhao, X.; Buehring, G.C. Natural Genetic Variations in Bovine Leukemia Virus Envelope Gene: Possible Effects of Selection and Escape. Virology 2007, 366, 150–165. [Google Scholar] [CrossRef] [PubMed]
- Gulyukin, A.; Kuzmin, V.; Fogel, L.; Tsyganov, A. Epizootic Situation with Bovine Leukemia in the Central Federal District of the Russian Federation in 2012–2016. BIO Web Conf. 2020, 27, 00097. [Google Scholar] [CrossRef]
- Lv, G.; Wang, J.; Lian, S.; Wang, H.; Wu, R. The Global Epidemiology of Bovine Leukemia Virus: Current Trends and Future Implications. Animals 2024, 14, 297. [Google Scholar] [CrossRef]
- Rola-Łuszczak, M.; Sakhawat, A.; Pluta, A.; Ryło, A.; Bomba, A.; Bibi, N.; Kuźmak, J. Molecular Characterization of the Env Gene of Bovine Leukemia Virus in Cattle from Pakistan with NGS-Based Evidence of Virus Heterogeneity. Pathogens 2021, 10, 910. [Google Scholar] [CrossRef] [PubMed]
- Yang, Y.; Chen, L.; Dong, M.; Huang, W.; Hao, X.; Peng, Y.; Gong, Z.; Qin, A.; Shang, S.; Yang, Z. Molecular Characterization of Bovine Leukemia Virus Reveals Existence of Genotype 4 in Chinese Dairy Cattle. Virol J 2019, 16, 108. [Google Scholar] [CrossRef] [PubMed]
- Asmal, M.; Hellmann, I.; Liu, W.; Keele, B.F.; Perelson, A.S.; Bhattacharya, T.; Gnanakaran, S.; Daniels, M.; Haynes, B.F.; Korber, B.T.; et al. A Signature in HIV-1 Envelope Leader Peptide Associated with Transition from Acute to Chronic Infection Impacts Envelope Processing and Infectivity. PLoS ONE 2011, 6, e23673. [Google Scholar] [CrossRef]
- Pluta, A.; Albritton, L.M.; Rola-Łuszczak, M.; Kuźmak, J. Computational Analysis of Envelope Glycoproteins from Diverse Geographical Isolates of Bovine Leukemia Virus Identifies Highly Conserved Peptide Motifs. Retrovirology 2018, 15, 2. [Google Scholar] [CrossRef] [PubMed]


| Localities where cow blood samples were collected |
Kochenyovo * |
Shagalovo * | Kazakovo * | Prokudskoe * | Svetly* | Razdolnoye ** | Total |
| Number of samples | 12 | 18 | 19 | 38 | 30 | 200 | 317 |
| Average age of animals (years) | 3.5 | 3.2 | 4.4 | 3 | 4.1 | 6.4 | 4.1 |
| DNA of the BLV «+» | 1 | 0 | 13 | 30 | 4 | 143 | 191 |
| G4/G7 genotypes of the BLV | 1/0 | 0 | 13/0 | 21/9 | 4/0 | 126/17 | 165/26 |
| DNA of the BLV «-» | 11 | 18 | 6 | 8 | 26 | 57 | 126 |
| % of infected animals | 8.3% | 0% | 68.4% | 79.0% | 13.3% | 71.5% | 60.3% |
| Origin of Sample | Number of sequences | Breed |
Age (y) |
Genotype G4 | Genotypes G7 |
| Dovolnoye district (Dov) | 17 | Steppe | 3.6–5.0 | 11 (64.7%) | 6 (35.3%) |
| Barabinsk district (Bar) | 35 | Black and White | 2.3–7.0 | 33 (94.3%) | 2 (5.7%) |
| Tatarsk district (Tat) | 54 | Steppe, Black and White | 4.5 | 39 (70%) | 15 (30%) |
| Toguchin district (Tog) | 45 | Semental, Black and White | 3-4.5 | 9 (21,7%) | 36 (78,3%) |
| Bolotnoye district (Bol) | 55 | Steppe, Black and White | 3.5-5.6 | 55 (100%) | 0 |
| Kochenyovo district (Koch, Razd) | 190 | Black and White, Steppe, Simmental | 2-12 | 161 (84.7%) | 29 (15.3%) |
| Name of districts and distance between them | Kochenyovo | Bolotnoye | Tatarsk | Toguchin | Kochenyovo /Bolotnoye /180 km | Kochenyovo /Tatarsk /400 km | Kochenyovo /Toguchin /170 km | Bolotnoye / Tatarsk /600 km |
Bolotnoye/ Toguchin /60 km |
Tatarsk / Toguchin /600 km |
| Total samples | 190 | 55 | 54 | 45 | 245 | 244 | 235 | 109 | 100 | 99 |
| Number of identical BLVs within genotype G4 | 9 | 13 | 7 | 0 | 6\8 | 3\3 | 0 | 10\6 | 12\4 | 3\6 |
| Number of identical BLVs within genotype G7 | 8 | 0 | 8 | 3 | 0 | 2\2 | 1\1 | 0 | 0 | 0 |
| Total samples | 190 | 55 | 54 | 45 | 245 | 244 | 235 | 109 | 100 | 99 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).