Completion of the Genome Sequence of a Historic CDV Vaccine Strain, Rockborn: Evolutionary and Epidemiologic Implications
Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Sequencing
2.2. Genome Assembly and Annotation
2.3. Phylogenetic Analysis
2.4. Recombination Detection
2.5. Sequence Deposition
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Sourimant, J.; Plemper, R.K. Organization, Function, and Therapeutic Targeting of the Morbillivirus RNA-Dependent RNA Polymerase Complex. Viruses 2016, 8, 251. [Google Scholar] [CrossRef] [Scilit]
- Barrett, T.; Shrimpton, S.B.; Russell, S.E.H. Nucleotide Sequence of the Entire Protein Coding Region of Canine Distemper Virus Polymerase-Associated (P) Protein MRNA. Virus Res. 1985, 3, 367–372. [Google Scholar] [CrossRef] [Scilit]
- Röthlisberger, A.; Wiener, D.; Schweizer, M.; Peterhans, E.; Zurbriggen, A.; Plattet, P. Two Domains of the V Protein of Virulent Canine Distemper Virus Selectively Inhibit STAT1 and STAT2 Nuclear Import. J. Virol. 2010, 84, 6328–6343. [Google Scholar] [CrossRef] [Scilit]
- Siering, O.; Sawatsky, B.; Pfaller, C.K. C Protein Is Essential for Canine Distemper Virus Virulence and Pathogenicity in Ferrets. J. Virol. 2021, 95, 4. [Google Scholar] [CrossRef] [Scilit]
- Dietzel, E.; Anderson, D.E.; Castan, A.; von Messling, V.; Maisner, A. Canine Distemper Virus Matrix Protein Influences Particle Infectivity, Particle Composition, and Envelope Distribution in Polarized Epithelial Cells and Modulates Virulence. J. Virol. 2011, 85, 7162–7168. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Anderson, D.E.; von Messling, V. Region between the Canine Distemper Virus M and F Genes Modulates Virulence by Controlling Fusion Protein Expression. J. Virol. 2008, 82, 10510–10518. [Google Scholar] [CrossRef] [Scilit]
- von Messling, V.; Cattaneo, R. Amino-Terminal Precursor Sequence Modulates Canine Distemper Virus Fusion Protein Function. J. Virol. 2002, 76, 4172–4180. [Google Scholar] [CrossRef] [Scilit]
- Plattet, P.; Cherpillod, P.; Wiener, D.; Zipperle, L.; Vandevelde, M.; Wittek, R.; Zurbriggen, A. Signal Peptide and Helical Bundle Domains of Virulent Canine Distemper Virus Fusion Protein Restrict Fusogenicity. J. Virol. 2007, 81, 11413–11425. [Google Scholar] [CrossRef] [Scilit]
- Pratakpiriya, W.; Seki, F.; Otsuki, N.; Sakai, K.; Fukuhara, H.; Katamoto, H.; Hirai, T.; Maenaka, K.; Techangamsuwan, S.; Lan, N.T.; et al. Nectin4 Is an Epithelial Cell Receptor for Canine Distemper Virus and Involved in Neurovirulence. J. Virol. 2012, 86, 10207–10210. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Alves, L.; Khosravi, M.; Avila, M.; Ader-Ebert, N.; Bringolf, F.; Zurbriggen, A.; Vandevelde, M.; Plattet, P. SLAM- and Nectin-4-Independent Noncytolytic Spread of Canine Distemper Virus in Astrocytes. J. Virol. 2015, 89, 5724–5733. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhao, J.; Ren, Y. Multiple Receptors Involved in Invasion and Neuropathogenicity of Canine Distemper Virus: A Review. Viruses 2022, 14, 1520. [Google Scholar] [CrossRef] [Scilit]
- MacLachlan, N.; Dubovi, E.; Fenner, F. Paramyxoviridae. In Fenner’s Veterinary Virology; Academic Press: Boston, MA, USA, 2011; pp. 299–325. [Google Scholar]
- Rima, B.; Balkema-Buschmann, A.; Dundon, W.G.; Duprex, P.; Easton, A.; Fouchier, R.; Kurath, G.; Lamb, R.; Lee, B.; Rota, P.; et al. ICTV Virus Taxonomy Profile: Paramyxoviridae. J. Gen. Virol. 2019, 100, 1593–1594. [Google Scholar] [CrossRef] [Scilit]
- Blixenkrone-Möller, M.; Svansson, V.; Appel, M.; Krogsrud, J.; Have, P.; Örvell, C. Antigenic Relationships between Field Isolates of Morbilliviruses from Different Carnivores. Arch. Virol. 1992, 123, 279–294. [Google Scholar] [CrossRef] [Scilit]
- Iwatsuki, K.; Tokiyoshi, S.; Hirayama, N.; Nakamura, K.; Ohashi, K.; Wakasa, C.; Mikami, T.; Kai, C. Antigenic Differences in the H Proteins of Canine Distemper Viruses. Vet. Microbiol. 2000, 71, 281–286. [Google Scholar] [CrossRef] [Scilit]
- Martella, V.; Elia, G.; Lucente, M.; Decaro, N.; Lorusso, E.; Banyai, K.; Blixenkronemoller, M.; Lan, N.; Yamaguchi, R.; Cirone, F. Genotyping Canine Distemper Virus (CDV) by a Hemi-Nested Multiplex PCR Provides a Rapid Approach for Investigation of CDV Outbreaks. Vet. Microbiol. 2007, 122, 32–42. [Google Scholar] [CrossRef] [Scilit]
- Ke, G.-M.; Ho, C.-H.; Chiang, M.-J.; Sanno-Duanda, B.; Chung, C.-S.; Lin, M.-Y.; Shi, Y.-Y.; Yang, M.-H.; Tyan, Y.-C.; Liao, P.-C.; et al. Phylodynamic Analysis of the Canine Distemper Virus Hemagglutinin Gene. BMC Vet. Res. 2015, 11, 164. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rockborn, G. Canine Distemper Virus in Tissue Culture. Arch. Gesamte Virusforsch. 1958, 8, 485–492. [Google Scholar] [CrossRef] [Scilit]
- Cornwell, H.; Thompson, H.; McCandlish, I.; Macartney, L.; Nash, A. Encephalitis in Dogs Associated with a Batch of Canine Distemper (Rockborn) Vaccine. Vet. Rec. 1988, 122, 54–59. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gloyd, J. Vaccines Recalled. J. Am. Vet. Med. Assoc. 1995, 207, 1397. [Google Scholar]
- Martella, V.; Blixenkrone-Møller, M.; Elia, G.; Lucente, M.S.; Cirone, F.; Decaro, N.; Nielsen, L.; Bányai, K.; Carmichael, L.E.; Buonavoglia, C. Lights and Shades on an Historical Vaccine Canine Distemper Virus, the Rockborn Strain. Vaccine 2011, 29, 1222–1227. [Google Scholar] [CrossRef] [Scilit]
- Appel, M.J.G. Reversion to Virulence of Attenuated Canine Distemper Virus In Vivo and In Vitro. J. Gen. Virol. 1978, 41, 385–393. [Google Scholar] [CrossRef] [Scilit]
- Lanszki, Z.; Tóth, G.E.; Schütz, É.; Zeghbib, S.; Rusvai, M.; Jakab, F.; Kemenesi, G. Complete Genomic Sequencing of Canine Distemper Virus with Nanopore Technology during an Epizootic Event. Sci. Rep. 2022, 12, 4116. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Martin, D.P.; Murrell, B.; Golden, M.; Khoosal, A.; Muhire, B. RDP4: Detection and Analysis of Recombination Patterns in Virus Genomes. Virus Evol. 2015, 1, vev003. [Google Scholar] [CrossRef] [Scilit]
- Tamukai, K.; Minami, S.; Kurihara, R.; Shimoda, H.; Mitsui, I.; Maeda, K.; Une, Y. Molecular Evidence for Vaccine-Induced Canine Distemper Virus and Canine Adenovirus 2 Coinfection in a Fennec Fox. J. Vet. Diagn. Investig. 2020, 32, 598–603. [Google Scholar] [CrossRef] [Scilit]
- Shi, N.; Zhang, L.; Yu, X.; Zhu, X.; Zhang, S.; Zhang, D.; Duan, M. Insight Into an Outbreak of Canine Distemper Virus Infection in Masked Palm Civets in China. Front. Vet. Sci. 2021, 8, 728238. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Freitas, L.A.; Leme, R.A.; Saporiti, V.; Alfieri, A.A.; Alfieri, A.F. Molecular Analysis of the Full-Length F Gene of Brazilian Strains of Canine Distemper Virus Shows Lineage Co-Circulation and Variability between Field and Vaccine Strains. Virus Res. 2019, 264, 8–15. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rätsep, E.; Ojkic, D. Canine Distemper Virus Infection of Vaccinal Origin in a 14-Week-Old Puppy. J. Vet. Diagn. Investig. 2024, 36, 287–290. [Google Scholar] [CrossRef] [Scilit]
- Gulliver, E.; Taylor, H.; Eames, M.; Chernyavtseva, A.; Jauregui, R.; Wilson, A.; Bestbier, M.; O’Connell, J.; Buckle, K.; Castillo-Alcala, F. Investigation of Post-Vaccinal Canine Distemper Involving the Rockborn-like Strain in Nine Puppies in New Zealand. N. Z. Vet. J. 2025, 73, 278–287. [Google Scholar] [CrossRef] [Scilit]
- Chare, E.R.; Gould, E.A.; Holmes, E.C. Phylogenetic Analysis Reveals a Low Rate of Homologous Recombination in Negative-Sense RNA Viruses. J. Gen. Virol. 2003, 84, 2691–2703. [Google Scholar] [CrossRef] [Scilit]
- Yuan, C.; Liu, W.; Wang, Y.; Hou, J.; Zhang, L.; Wang, G. Homologous Recombination Is a Force in the Evolution of Canine Distemper Virus. PLoS ONE 2017, 12, e0175416. [Google Scholar] [CrossRef] [Scilit]
- da Fontoura Budaszewski, R.; Streck, A.F.; Nunes Weber, M.; Maboni Siqueira, F.; Muniz Guedes, R.L.; Wageck Canal, C. Influence of Vaccine Strains on the Evolution of Canine Distemper Virus. Infect. Genet. Evol. 2016, 41, 262–269. [Google Scholar] [CrossRef] [Scilit]
- Sui, P.; Sun, Y.; Shi, Y.; Ran, W.; Shi, N.; Sun, D.; Zheng, J.; Zhao, J. Establishment and Evaluation of a Multiplex Real-Time RT-PCR for Quantitative and Differential Detection of Wild-Type Canine Distemper Virus from Vaccine Strains. Heliyon 2023, 9, e19344. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dong, X.Y.; Li, W.H.; Zhu, J.L.; Liu, W.J.; Zhao, M.Q.; Luo, Y.W.; Chen, J.D. Detection and Differentiation of Wild-Type and Vaccine Strains of Canine Distemper Virus by a Duplex Reverse Transcription Polymerase Chain Reaction. Iran. J. Vet. Res. 2015, 16, 172–175. [Google Scholar] [PubMed]
- Si, W.; Zhou, S.; Wang, Z.; Cui, S. A Multiplex Reverse Transcription-Nested Polymerase Chain Reaction for Detection and Differentiation of Wild-Type and Vaccine Strains of Canine Distemper Virus. Virol. J. 2010, 7, 86. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yi, L.; Cheng, S.; Xu, H.; Wang, J.; Cheng, Y.; Yang, S.; Luo, B. Development of a Combined Canine Distemper Virus Specific RT-PCR Protocol for the Differentiation of Infected and Vaccinated Animals (DIVA) and Genetic Characterization of the Hemagglutinin Gene of Seven Chinese Strains Demonstrated in Dogs. J. Virol. Methods 2012, 179, 281–287. [Google Scholar] [CrossRef] [Scilit]
- Wilkes, R.P.; Sanchez, E.; Riley, M.C.; Kennedy, M.A. Real-Time Reverse Transcription Polymerase Chain Reaction Method for Detection of Canine Distemper Virus Modified Live Vaccine Shedding for Differentiation from Infection with Wild-Type Strains. J. Vet. Diagn. Investig. 2014, 26, 27–34. [Google Scholar] [CrossRef] [Scilit]
- Liu, D.-F.; Liu, C.-G.; Tian, J.; Jiang, Y.-T.; Zhang, X.-Z.; Chai, H.-L.; Yang, T.-K.; Yin, X.-C.; Zhang, H.-Y.; Liu, M.; et al. Establishment of Reverse Transcription Loop-Mediated Isothermal Amplification for Rapid Detection and Differentiation of Canine Distemper Virus Infected and Vaccinated Animals. Infect. Genet. Evol. 2015, 32, 102–106. [Google Scholar] [CrossRef] [Scilit]


| Gene | GenBank Entry, nt Identity | Origin | ||
|---|---|---|---|---|
| Host Species | Geographic | Year | ||
| Whole genome | MT448054, 98.8% | Masked civet | China | 2019 |
| KF640687, 98.5% | Dog | United States | 1970s * | |
| AF164967, 98.4% | Dog | United States * | 1975 * | |
| EU716337, 98.2% | Dog | United States | 2004 | |
| N | EU072200, 99.5% | vaccine | - | 2006 |
| AY649446, 99.1% | Raccoon | United States | 2001 | |
| P | EU072201, 99.7% | vaccine | - | 2006 |
| KF640687, 99.1% | Dog | United States | 1970s * | |
| MT448054, 99.1% | Masked civet | China | 2019 | |
| M | EU072199, 99.7% | vaccine | - | 2006 |
| F | KY057355, 99.8% | Dog | Brazil | 2015 |
| EU072198, 99.3% | vaccine | - | 2006 | |
| MT448054, 99.3% | Masked civet | China | 2019 | |
| H | GU810819, 99.9% | Rockborn, 46th cell passage | - | 2011 |
| LC498611, 99.8% | Fennec fox | Japan | 2017 | |
| GU266280, 99.8% | vaccine | - | 2011 | |
| FJ705238, 99.8% | vaccine | - | 2010 | |
| EF095750, 99.8% | vaccine | - | 2010 | |
| FJ461702, 99.7% | vaccine | - | 2008 | |
| MT448054, 99.6% | Masked civet | China | 2019 | |
| AF178039, 99.5% | Lesser panda | China | 1999 | |
| OQ282897, 99.8% | Dog | China | 2021 | |
| OQ282900, 99.7% | Dog | China | 2021 | |
| OQ282902, 99.6% | Dog | China | 2021 | |
| JX912968, 99.3% | Dog | Brazil | 2008 | |
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Lanszki, Z.; Bányai, K.; Bogdán, Á.; Kemenesi, G.; Diakoudi, G.; Lanave, G.; Pellegrini, F.; Decaro, N.; Martella, V. Completion of the Genome Sequence of a Historic CDV Vaccine Strain, Rockborn: Evolutionary and Epidemiologic Implications. Vet. Sci. 2026, 13, 81. https://doi.org/10.3390/vetsci13010081
Lanszki Z, Bányai K, Bogdán Á, Kemenesi G, Diakoudi G, Lanave G, Pellegrini F, Decaro N, Martella V. Completion of the Genome Sequence of a Historic CDV Vaccine Strain, Rockborn: Evolutionary and Epidemiologic Implications. Veterinary Sciences. 2026; 13(1):81. https://doi.org/10.3390/vetsci13010081
Chicago/Turabian StyleLanszki, Zsófia, Krisztián Bányai, Ágnes Bogdán, Gábor Kemenesi, Georgia Diakoudi, Gianvito Lanave, Francesco Pellegrini, Nicola Decaro, and Vito Martella. 2026. "Completion of the Genome Sequence of a Historic CDV Vaccine Strain, Rockborn: Evolutionary and Epidemiologic Implications" Veterinary Sciences 13, no. 1: 81. https://doi.org/10.3390/vetsci13010081
APA StyleLanszki, Z., Bányai, K., Bogdán, Á., Kemenesi, G., Diakoudi, G., Lanave, G., Pellegrini, F., Decaro, N., & Martella, V. (2026). Completion of the Genome Sequence of a Historic CDV Vaccine Strain, Rockborn: Evolutionary and Epidemiologic Implications. Veterinary Sciences, 13(1), 81. https://doi.org/10.3390/vetsci13010081

