Prevalence of Infection with Porcine Circovirus Types 2 and 3 in the Wild Boar Population in the Campania Region (Southern Italy)
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Ethical Approval
2.2. Study Area and Sample Site
2.3. Materials
2.4. Viral Nucleic Acid Extraction Procedures
2.5. Real-Time PCR for the Differential Detection and Quantification of PCV-2 and PCV-3
2.6. Statistical Analysis
3. Results
3.1. PCV-2 and PCV-3 Detection
3.2. PCV-2 and PCV-3 Quantification
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
- Allan, G.M.; Ellis, J.A. Porcine Circoviruses: A Review. J. Veter. Diagn. Investig. 2000, 12, 3–14. [Google Scholar] [CrossRef] [PubMed]
- Allan, G.; Krakowka, S.; Ellis, J.; Charreyre, C. Discovery and evolving history of two genetically related but phenotypically different viruses, porcine circoviruses 1 and 2. Virus Res. 2012, 164, 4–9. [Google Scholar] [CrossRef]
- Phan, T.; Giannitti, F.; Rossow, S.; Marthaler, D.; Knutson, T.P.; Li, L.; Deng, X.; Resende, T.; Vannucci, F.; Delwart, E. Detection of a novel circovirus PCV3 in pigs with cardiac and multi-systemic inflammation. Virol. J. 2016, 13, 1–8. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Palinski, R.; Piñeyro, P.; Shang, P.; Yuan, F.; Guo, R.; Fang, Y.; Byers, E.; Hause, B.M. A Novel Porcine Circovirus Distantly Related to Known Circoviruses Is Associated with Porcine Dermatitis and Nephropathy Syndrome and Reproductive Failure. J. Virol. 2017, 91, e01879-16. [Google Scholar] [CrossRef] [Green Version]
- Zhang, H.H.; Hu, W.Q.; Li, J.Y.; Liu, T.N.; Zhou, J.Y.; Opriessnig, T.; Xiao, C.T. Novel circovirus species identified in farmed pigs designated as Porcine circovirus 4, Hunan province, China. Transbound. Emerg. Dis. 2020, 67, 1057–1061. [Google Scholar] [CrossRef] [PubMed]
- Tischer, I.; Rasch, R.; Tochtermann, G. Characterization of papovavirus-and picornavirus-like particles in permanent pig kidney cell lines. Zentralbl. Bakteriol. Orig. A 1974, 226, 153–156. [Google Scholar]
- Segalés, J. Porcine circovirus type 2 (PCV2) infections: Clinical signs, pathology and laboratory diagnosis. Virus Res. 2012, 164, 10–19. [Google Scholar] [CrossRef] [PubMed]
- Segalés, J.; Domingo, M. Postweaning multisystemic wasting syn-drome (PMWS) in pigs. A review. Vet. Q. 2002, 24, 109–124. [Google Scholar] [CrossRef] [PubMed]
- Segalés, J.; Kekarainen, T.; Cortey, M. The natural history of porcine circovirus type 2: From an inoffensive virus to a devastating swine disease? Veter. Microbiol. 2013, 165, 13–20. [Google Scholar] [CrossRef]
- Brunborg, I.M.; Moldal, T.; Jonassen, C.M. Quantitation of porcine circovirus type 2 isolated from serum/plasma and tissue samples of healthy pigs and pigs with postweaning multisystemic wasting syndrome using a TaqMan-based real-time PCR. J. Virol. Methods 2004, 122, 171–178. [Google Scholar] [CrossRef] [PubMed]
- Prinz, C.; Stillfried, M.; Neubert, L.K.; Denner, J. Detection of PCV3 in German wild boars. Virol. J. 2019, 16, 1–7. [Google Scholar] [CrossRef] [Green Version]
- Fu, X.; Fang, B.; Ma, J.; Liu, Y.; Bu, D.; Zhou, P.; Wang, H.; Jia, K.; Zhang, G. Insights into the epidemic characteristics and evolutionary history of the novel porcine circovirus type 3 in southern China. Transbound. Emerg. Dis. 2018, 65, e296–e303. [Google Scholar] [CrossRef] [PubMed]
- Saraiva, G.L.; Vidigal, P.M.P.; Assao, V.S.; Fajardo, M.L.M.; Lorto, J.L.R.; Bressan, G.C.; Lobato, Z.I.P.; Almeida, M.R.; Silva, J.A. Retrospective detection and genetic characterization of porcine circo virus 3 (PCV-3) strains identified between 2006 and 2007 in Brasil. Viruses 2019, 11, 201. [Google Scholar] [CrossRef] [Green Version]
- Giudici, S.D.; Presti, A.L.; Bonelli, P.; Angioi, P.P.; Sanna, G.; Zinellu, S.; Balzano, F.; Salis, F.; Ciccozzi, M.; Oggiano, A. Phylogenetic analysis of porcine circovirus type 2 in Sardinia, Italy, shows genotype 2d circulation among domestic pigs and wild boars. Infect. Genet. Evol. 2019, 71, 189–196. [Google Scholar] [CrossRef]
- Nguyen, V.; Do, H.; Huynh, T.; Park, Y.; Park, B.; Chung, H. Molecular-based detection, genetic characterization and phylogenetic analysis of porcine circovirus 4 from Korean domestic swine farms. Transbound. Emerg. Dis. 2021, 00, 1–11. [Google Scholar] [CrossRef]
- Tan, C.Y.; Opaskornkul, K.; Thanawongnuwech, R.; Arshad, S.S.; Hassan, L.; Ooi, P.T. First molecular detection and complete sequence analysis of porcine circovirus type 3 (PCV3) in Peninsular Malaysia. PLoS ONE 2020, 15, e0235832. [Google Scholar] [CrossRef]
- Franzo, G.; Ruiz, A.; Grassi, L.; Sibila, M.; Drigo, M.; Segalés, J. Lack of Porcine circovirus 4 Genome Detection in Pig Samples from Italy and Spain. Pathogens 2020, 9, 433. [Google Scholar] [CrossRef]
- Meng, X.J.; Lindsay, D.S.; Sriranganathan, N. Wild boars as sources for infectious diseases in livestock and humans. Philos. Trans. R. Soc. B Biol. Sci. 2009, 364, 2697–2707. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Montagnaro, S.; D’Ambrosi, F.; Petruccelli, A.; Ferrara, G.; D’Alessio, N.; Iovane, V.; Veneziano, V.; Fioretti, A.; Pagnini, U. A Serological Survey of Brucellosis in Eurasian Wild Boar (Sus scrofa) in Campania Region, Italy. J. Wildl. Dis. 2020, 56, 424. [Google Scholar] [CrossRef]
- Iovane, V.; Ferrara, G.; Petruccelli, A.; Veneziano, V.; D’Alessio, N.; Ciarcia, R.; Fioretti, A.; Pagnini, U.; Montagnaro, S. Prevalence of serum antibodies against the Mycobacterium tuberculosis complex in wild boar in Campania region, Italy. Eur. J. Wildl. Res. 2020, 66, 1–5. [Google Scholar] [CrossRef]
- Moennig, V. The control of classical swine fever in wild boar. Front. Microbiol. 2015, 6, 1211. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ruiz-Fons, F.; Segalés, J.; Gortázar, C. A review of viral diseases of the European wild boar: Effects of population dynamics and reservoir rôle. Veter. J. 2008, 176, 158–169. [Google Scholar] [CrossRef] [PubMed]
- Ruiz-Fons, F.; Vicente, J.; Vidal, D.; Höfle, U.; Villanúa, D.; Gauss, C.; Segalés, J.; Almería, S.; Montoro, V.; Gortázar, C. Se-roprevalence of six reproductive pathogens in European wild boar (Sus scrofa) from Spain: The effect on wild boar female re-productive performance. Theriogenology 2006, 1, 731–743. [Google Scholar] [CrossRef] [Green Version]
- Risco, D.; Bravo, M.; Martínez, R.; Torres, A.; Gonçalves, P.; Cuesta, J.; García-Jiménez, W.; Cerrato, R.; Iglesias, R.; Galapero, J.; et al. Vaccination Against Porcine Circovirus-2 Reduces Severity of Tuberculosis in Wild Boar. Ecohealth 2018, 15, 388–395. [Google Scholar] [CrossRef]
- Risco, D.; Martínez, R.; Bravo, M.; Fernández Llario, P.; Cerrato, R.; Garcia-Jiménez, W.L.; Gonçalves, P.; García, A.; Barquero-Pérez, Ó.; Quesada, A.; et al. Nasal shedding of Mycobacterium tuberculosis in wild boar is re-lated to generalised tuberculosis and concomitant infections. Vet. Rec. 2019, 185, 629. [Google Scholar] [CrossRef] [Green Version]
- Czyżewska-Dors, E.; Núñez, J.I.; Saporiti, V.; Huerta, E.; Riutord, C.; Cabezón, O.; Segalés, J.; Sibila, M. Detection of Porcine Circovirus 3 in Wildlife Species in Spain. Pathogens 2020, 9, 341. [Google Scholar] [CrossRef]
- Franzo, G.; Grassi, L.; Tucciarone, C.M.; Drigo, M.; Martini, M.; Pasotto, D.; Mondin, A.; Menandro, M.L. A wild circulation: High presence of Porcine circovirus 3 in different mammalian wild hosts and ticks. Transbound. Emerg. Dis. 2019, 66, 1548–1557. [Google Scholar] [CrossRef]
- Vicente, J.; Domingo, M.; Segalés, J.; Höfle, U.; Balasch, M.; Plana-Durán, J.; Gortázar, C. Epidemiological study on porcine circovirus type 2 (PCV2) infection in the European wild boar (Sus scrofa). Veter. Res. 2004, 35, 243–253. [Google Scholar] [CrossRef] [Green Version]
- Franzo, G.; Tucciarone, C.M.; Drigo, M.; Cecchinato, M.; Martini, M.; Mondin, A.; Menandro, M.L. First report of wild boar susceptibility to Porcine circovirus type 3: High prevalence in the Colli Euganei Regional Park (Italy) in the absence of clinical signs. Transbound. Emerg. Dis. 2018, 65, 957–962. [Google Scholar] [CrossRef] [PubMed]
- Zhai, S.-L.; Lu, S.-S.; Wei, W.-K.; Lv, D.-H.; Wen, X.-H.; Zhai, Q.; Chen, Q.-L.; Sun, Y.-W.; Xi, Y. Reservoirs of Porcine Circoviruses: A Mini Review. Front. Veter. Sci. 2019, 6, 319. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Thrustfield, M. Veterinary Epidemiology, 3rd ed.; Blackwell Science Ltd: London, UK, 1995; pp. 138–188. [Google Scholar]
- Saporiti, V.; Huerta, E.; Correa-Fiz, F.; Liesner, B.G.; Duran, O.; Segalés, J.; Sibila, M. Detection and genotyping of Porcine circovirus 2 (PCV-2) and detection of Porcine circovirus 3 (PCV-3) in sera from fattening pigs of different European countries. Transbound. Emerg. Dis. 2020, 67, 2521–2531. [Google Scholar] [CrossRef]
- Tofani, S.; Ianiro, G.; De Sabato, L.; Monini, M.; Angeloni, G.; Ponterio, E.; D’Agostino, C.; Di Bari, M.A.; Valeri, M.; Di Bartolo, I. Detection and whole genome sequencing of murine norovirus in animal facility in Italy. Anim. Biotechnol. 2021, 29, 1–8. [Google Scholar] [CrossRef]
- Baaert, L.; Wobus, C.E.; Van Coillie, E.; Thackray, L.B.; Debevere, J.; Uyttendaele, M. Detection of murine norovirus 1 by using plaque assay, transfection assay, and real-time reverse transcription-PCR before and after heat exposure. Appl. Environ. Mi-crobiol. 2008, 74, 543–546. [Google Scholar] [CrossRef] [Green Version]
- Kim, H.R.; Park, Y.R.; Lim, D.R.; Park, M.J.; Park, J.Y.; Kim, S.H.; Lee, K.K.; Lyoo, Y.S.; Park, C.K. Multiplex real-time poly-merase chain reaction for the differential detection of porcine circovirus 2 and 3. J. Virol. Methods 2017, 250, 11–16. [Google Scholar] [CrossRef] [PubMed]
- Franzo, G.; Legnardi, M.; Centelleghe, C.; Tucciarone, C.M.; Cecchinato, M.; Cortey, M.; Segalés, J.; Drigo, M. Development and validation of direct PCR and quantitative PCR assays for the rapid, sensitive, and economical detection of porcine circovirus 3. J. Veter. Diagn. Investig. 2018, 30, 538–544. [Google Scholar] [CrossRef] [Green Version]
- Xia, D.; Huang, L.; Xie, Y.; Zhang, X.; Wei, Y.; Liu, D.; Zhu, H.; Bian, H.; Feng, L.; Liu, C. The prevalence and genetic diversity of porcine circovirus types 2 and 3 in Northeast China from 2015 to 2018. Arch. Virol. 2019, 164, 2435–2449. [Google Scholar] [CrossRef] [PubMed]
- Klaumann, F.; Franzo, G.; Sohrmann, M.; Correa-Fiz, F.; Drigo, M.; Núñez, J.I.; Sibila, M.; Segalés, J. Retrospective detection of Porcine circovirus 3 (PCV-3) in pig serum samples from Spain. Transbound. Emerg. Dis. 2018, 65, 1290–1296. [Google Scholar] [CrossRef] [Green Version]
- Kim, S.-C.; Nazki, S.; Kwon, S.; Juhng, J.-H.; Mun, K.-H.; Jeon, D.-Y.; Jeong, C.-G.; Khatun, A.; Kang, S.-J.; Kim, W.-I. The prevalence and genetic characteristics of porcine circovirus type 2 and 3 in Korea. BMC Veter. Res. 2018, 14, 294. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Dei Giudici, S.; D’Avino, C.; Salaris, A.A.; Sulas, A.; Madrau, M.P.; Sanna, M.L.; Oggiano, A. Caratterizzazione molecolare di PCV2 nei suini selvatici e domestici in Sardegna. In Proceedings of the XIV Congresso Nazionale S.I.Di.L.V, Sorrento, Italy, 24–26 October 2012. [Google Scholar]
- Bhide, K.; Csank, T.; Pistl, J.; Ciberej, J. Prevalence of porcine circovirus 2 and virus-specific antibodies in wild boars (Sus scrofa) in Slovakia. Acta Virol. 2014, 58, 386–388. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sliz, I.; Vlasakova, M.; Jackova, A.; Vilcek, S. Characterization of Porcine Parvovirus type 3 and Porcine Circovirus Type 2 in Wild Boars (Sus scorfa) in Slovakia. J. Wildl. Dis. 2015, 51, 703–711. [Google Scholar] [CrossRef]
- Hammer, R.; Ritzmann, M.; Palzer, A.; Lang, C.; Hammer, B.; Pesch, S.; Ladinig, A. Porcine reproductive and respiratory syndrome virus and porcine circovirus type 2 infections in wild boar (Sus scrofa) in Southwestern Germany. J. Wildl. Dis. 2012, 48, 87–94. [Google Scholar] [CrossRef] [Green Version]
- Nisavic, J.; Milic, N.; Radalj, A.; Mirilovic, M.; Vejnovic, B.; Cosic, M.; Knezevic, A.; Veljovic, L.; Zivulj, A. Detection and characterization of porcine circoviruses in wild boars in Northeastern Serbia. Vet. Med. 2021, 32. Available online: https://www.agriculturejournals.cz/web/vetmed.htm?type=article&id=32_2021–VETMED (accessed on 29 October 2021).
- Henriques, A.M.; Duarte, M.; Fagulha, T.; Ramos, F.; Barros, S.C.; Luís, T.; Fevereiro, M. Molecular study of porcine circovirus type 2 circulating in Portugal. Infect. Genet. Evol. 2011, 11, 2162–2172. [Google Scholar] [CrossRef] [PubMed]
- Cságola, A.; Kecskeméti, S.; Kardos, G.; Kiss, I.; Tuboly, T. Genetic characterization of type 2 porcine circoviruses detected in Hungarian wild boars. Arch. Virol. 2006, 151, 495–507. [Google Scholar] [CrossRef] [PubMed]
- Fabisiak, M.; Szczotka, A.; Podgórska, K.; Stadejek, T. Prevalence of infection and genetic diversity of porcine circovirus type 2 (pcv2) in wild boar (Sus scrofa) in Poland. J. Wildl. Dis. 2012, 48, 612–618. [Google Scholar] [CrossRef] [Green Version]
- Cadar, D.; Cságola, A.; Spinu, M.; Dán, A.; Ursu, K.; Lorincz, M.; Tuboly, T. Prevalence of porcine circoviruses in Transylva-nian wild boars, detected by real-time PCR—Short communication. Acta Vet. Hung. 2010, 58, 475–481. [Google Scholar] [CrossRef]
- Klaumann, F.; Dias-Alves, A.; Cabezón, O.; Mentaberre, G.; Castillo-Contreras, R.; López-Béjar, M.; Casas-Díaz, E.; Sibila, M.; Correa-Fiz, F.; Segalés, J. Porcine circovirus 3 is highly prevalent in serum and tissues and may persistently infect wild boar (Sus scrofa scrofa). Transbound. Emerg. Dis. 2019, 66, 91–101. [Google Scholar] [CrossRef] [Green Version]
- Franzo, G.; Legnardi, M.; Tucciarone, C.M.; Drigo, M.; Klaumann, F.; Sohrmann, M.; Segalés, J. Porcine circovirus type 3: A threat to the pig industry? Veter. Rec. 2018, 182, 83. [Google Scholar] [CrossRef] [Green Version]
- Marsan, A.; Mattioli, S. Il Cinghiale (in Italian). Il Piviere (Collana Fauna Selvatica. Biologia e Gestione); Il Piviere: Gavi, Italy, 2013; ISBN 978-88-96348-178. [Google Scholar]
- Alomar, J.; Saporiti, V.; Pérez, M.; Gonçalvez, D.; Sibila, M.; Segalés, J. Multisystemic lymphoplasmacytic inflammation asso-ciated with PCV-3 in wasting pigs. Transbound. Emerg. Dis. 2021, 30, 1–6. [Google Scholar]
Sample Size | No. of Infected Boars | Prevalence | SE | CI 95% * | |
---|---|---|---|---|---|
Total | 148 | 110 | 74.32% | 7.04 | 67.29–81.36 |
PCV-2 | 70 | 47.30% | 8.04 | 39.25–55.34 | |
PCV-3 | 73 | 49.32% | 8.05 | 41.27–57.38 | |
PCV-2/3 | 33 | 22.30% | 6.71 | 15.59–29.0 |
Factor | n | Positive | % | SE % § | CI 95% * | χ2 | P | OR # | CI 95% * |
---|---|---|---|---|---|---|---|---|---|
Total | 148 | 110 | 74.32 | 7.04 | 67.29–81.36 | ||||
Gender | |||||||||
Female | 62 | 57 | 91.94 | 6.78 | 85.16–98.71 | ||||
18.466 | <0.0001 | 8.29 | 2.98–23.02 | ||||||
Male | 76 | 44 | 57.89 | 11.1 | 46.79–69.0 | ||||
n/a | 10 | 9 | 90.0 | 18.59 | 71.4–100.0 | ||||
Province | |||||||||
Caserta | 32 | 29 | 90.6 | 10.1 | 80.53–100.0 | Ref $ | |||
Avellino | 30 | 20 | 66.6 | 16.87 | 49.8–83.54 | 4.83 | 1.17–19.8 | ||
Benevento | 12 | 9 | 75.0 | 24.5 | 50.5–99.5 | 6.018 | 0.1108 | 3.22 | 0.55–18.84 |
Salerno | 74 | 52 | 70.27 | 0.104 | 59.86–80.68 | 4.09 | 1.12–14.8 |
Sample | Sample Size | N. Infected Samples | Circoviruses Positivity (%) (PCV-2/PCV-3) | 95% CI * | PCV-2 (%) | PCV-3 (%) | Coinfected (%) |
---|---|---|---|---|---|---|---|
Brain | 104 | 60 | 57.7 | 48.20–67.19 | 20.2 | 20.2 | 17.3 |
Heart | 119 | 67 | 56.3 | 47.39–65.21 | 16.8 | 21.8 | 17.6 |
Liver | 136 | 89 | 65.4 | 57.45–73.43 | 22.1 | 21.3 | 22.1 |
Spleen | 126 | 91 | 72.2 | 64.4–80.04 | 23.0 | 24.6 | 24.6 |
Sample | PCV-2 Average Quantity (Copies/µL) | PCV-3 Average Quantity (Copies/µL) |
---|---|---|
Brain | 4.98 × 103 | 1 × 101 |
Heart | 7.66 × 103 | 1.5 × 101 |
Liver | 1.69 × 104 | 2.0 × 101 |
Spleen | 4.98 × 106 | 2 × 103 |
Lymphnode | 4.71 × 103 * | 2.96 × 103 * |
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Amoroso, M.G.; Serra, F.; Esposito, C.; D’Alessio, N.; Ferrara, G.; Cioffi, B.; Anzalone, A.; Pagnini, U.; De Carlo, E.; Fusco, G.; et al. Prevalence of Infection with Porcine Circovirus Types 2 and 3 in the Wild Boar Population in the Campania Region (Southern Italy). Animals 2021, 11, 3215. https://doi.org/10.3390/ani11113215
Amoroso MG, Serra F, Esposito C, D’Alessio N, Ferrara G, Cioffi B, Anzalone A, Pagnini U, De Carlo E, Fusco G, et al. Prevalence of Infection with Porcine Circovirus Types 2 and 3 in the Wild Boar Population in the Campania Region (Southern Italy). Animals. 2021; 11(11):3215. https://doi.org/10.3390/ani11113215
Chicago/Turabian StyleAmoroso, Maria Grazia, Francesco Serra, Claudia Esposito, Nicola D’Alessio, Gianmarco Ferrara, Barbara Cioffi, Antonietta Anzalone, Ugo Pagnini, Esterina De Carlo, Giovanna Fusco, and et al. 2021. "Prevalence of Infection with Porcine Circovirus Types 2 and 3 in the Wild Boar Population in the Campania Region (Southern Italy)" Animals 11, no. 11: 3215. https://doi.org/10.3390/ani11113215
APA StyleAmoroso, M. G., Serra, F., Esposito, C., D’Alessio, N., Ferrara, G., Cioffi, B., Anzalone, A., Pagnini, U., De Carlo, E., Fusco, G., & Montagnaro, S. (2021). Prevalence of Infection with Porcine Circovirus Types 2 and 3 in the Wild Boar Population in the Campania Region (Southern Italy). Animals, 11(11), 3215. https://doi.org/10.3390/ani11113215