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Molecular and Clinical Study of Feline Infectious Peritonitis Virus in Iran Showing a Paraphyletic Tree: Emphasizing the “Internal Mutation” Hypothesis | ||
Iranian Journal of Veterinary Medicine | ||
مقاله 2، دوره 19، شماره 2، تیر 2025، صفحه 179-190 اصل مقاله (1.62 M) | ||
نوع مقاله: Original Articles | ||
شناسه دیجیتال (DOI): 10.32598/ijvm.19.2.1005247 | ||
نویسندگان | ||
Shahram Jamshidi1؛ Farnoosh Momeni1؛ Iradj Ashrafi Tamai2؛ Omid Madadgar* 2 | ||
1Department of Clinical Sciences, Faculty of Veterinary Medicine, University of Tehran, Tehran, Iran. | ||
2Department of Microbiology and Immunology, Faculty of Veterinary Medicine, University of Tehran, Tehran, Iran. | ||
چکیده | ||
Background: Feline infectious peritonitis (FIP) is a severe and often fatal disease affecting feline species. Despite the high prevalence of feline coronavirus (FCoV) infections, the manifestation of FIP occurs in only a small percentage (1%-5%) of cases. The intricate aspects of FIP differential diagnosis persist, and a comprehensive understanding of the molecular mechanisms driving FIP pathogenesis remains elusive. Objectives: This study aims to thoroughly investigate the characteristics of Iranian feline infectious peritonitis viruses (FIPV), encompassing sequence analysis and detailed examination of laboratory and clinical findings. The primary objective is to unravel the hypothesized genesis of the FIP virus, with a specific focus on the membrane (M) gene level. Methods: Our methodology involved examining abdominal or thoracic fluids from 17 cats suspected of having FIP, utilizing biochemical tests, such as total serum protein, albumin to globulin (A/G) ratio, and the Rivalta test. A molecular approach utilizing reverse transcription-polymerase chain reaction (RT-PCR) based on the M gene was employed. Sequence analysis of five crucial residues in the M genes and subsequent construction of a phylogenetic tree using the five sequenced viruses further enriched our investigation. Results: The study confirmed FIP in 6 of 17 cats through the Rivalta test, guiding subsequent evaluations. Significant gender disparities in FIP occurrence were observed among young cats (9-30 months old), with males exhibiting a two-fold higher incidence than females. Affected cats within the 9-30 months age range consistently exhibited an albumin to globulin (A/G) ratio below 0.66 and total serum protein exceeding 0.43 g/dL. Cavity fluid cytology indicated non-degenerated macrophages and neutrophils against a basophilic background due to a high protein percentage, confirming FIP diagnosis. Importantly, sequence analysis of five M protein amino acid hotspots revealed negligible differences in nucleotide sequences between feline enteric coronavirus (FECoV) and FIPV, aligning with their biotypic patterns. Conclusion: The phylogenetic tree generated in this study displayed a paraphilic pattern, emphasizing the “internal mutation” hypothesis, suggesting that viral mutations occur within the cat’s body and no significant differences are observed in FECoV and FIPV-generating viruses. These results provide valuable insights into the discourse surrounding FIP pathogenesis, potentially guiding future diagnostic and therapeutic approaches. | ||
کلیدواژهها | ||
Biochemical tests؛ Feline infectious peritonitis viruses (FIPV)؛ Iran؛ Phylogenetic analysis؛ Rivalta test | ||
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اصل مقاله | ||
Introduction
PCR
Addie, D. D., Toth, S., Murray, G. D., & Jarrett, O. (1995). Risk of feline infectious peritonitis in cats naturally infected with feline coronavirus. American Journal of Veterinary Research, 56(4), 429–434. [DOI:10.2460/ajvr.1995.56.04.429] [PMID] Aksono, E. B., Iradatya, K. R., Sucipto, T. H., Fajar, N. S., & Yuniarti, W. M. (2023). Phylogenetic analysis of feline infectious peritonitis virus, feline enteric coronavirus, and severe acute respiratory syndrome coronavirus 2 of cats in Surabaya, Indonesia. Veterinary World, 16(1), 76–81. [PMID] Hajijafari Anaraki, M., Sheikhi, N., Haghbin Nazarpak, H., & Nikbahkt Brujeni, G. (2022). Real time detection of different variant strains of infectious bronchitis virus in trachea, lung and kidney of infected broiler chickens. Iranian Journal of Veterinary Medicine. 16(1), 57-63. [DOI:10.22059/IJVM.2021.321594.1005165] André, N. M., Cossic, B., Davies, E., Miller, A. D., & Whittaker, R. (2019). Distinct mutation in the feline coronavirus spike protein cleavage activation site in a cat with feline infectious peritonitis-associated meningoencephalomyelitis. JFMS Open Reports, 5(1), 2055116919856103.[DOI:10.1177/2055116919856103][PMID] Barker, E. N., Tasker, S., Gruffydd-Jones, T. J., Tuplin, C. K., Burton, K., & Porter, E., et al. (2013). Phylogenetic analysis of feline coronavirus strains in an epizootic outbreak of feline infectious peritonitis. Journal of Veterinary Internal Medicine, 27(3), 445-450. [DOI:10.1111/jvim.12058][PMID] Brown, M. A., Troyer, J. L., Pecon-Slattery, J., Roelke, M. E., & O’Brien, S. J. (2009). Genetics and pathogenesis of feline infectious peritonitis virus. Emerging Infectious Diseases, 15(9), 1445-1452. [DOI:10.3201/eid1509.081573][PMID] Chang, H. W., de Groot, R. J., Egberink, H. F., & Rottier, P. J. (2010). Feline infectious peritonitis: Insights into feline coronavirus pathobiogenesis and epidemiology based on genetic analysis of the viral 3c gene. The Journal of General Virology, 91(Pt 2), 415–420. [DOI:10.1099/vir.0.016485-0] [PMID] Chang, H. W., Egberink, H. F., Halpin, R., Spiro, D. J., & Rottier, P. J. (2012). Spike protein fusion peptide and feline coronavirus virulence. Emerging Infectious Diseases, 18(7), 1089-1095. [DOI:10.3201/eid1807.120143][PMID] Decaro, N., Mari, V., Lanave, G., Lorusso, E., Lucente, M. S., & Desario, , et al. (2021). Mutation analysis of the spike protein in Italian feline infectious peritonitis virus and feline enteric coronavirus sequences. Research in Veterinary Science, 135, 15-19. [DOI:10.1016/j.rvsc.2020.12.023] [PMID] Doenges, S. J., Weber, K., Dorsch, R., Fux, R., Fischer, A., & Matiasek, L. A., et al. (2016). Detection of feline coronavirus in cerebrospinal fluid for diagnosis of feline infectious peritonitis in cats with and without neurological signs. Journal of Feline Medicine and Surgery, 18(2), 104-109. [DOI:10.1177/1098612X15574757][PMID] Duthie, S., Eckersall, P. D., Addie, D. D., Lawrence, C. E., & Jarrett, O. (1997). Value of α1‐acid glycoprotein in the diagnosis of feline infectious peritonitis. The Veterinary Record, 141(12), 299– [DOI:10.1136/vr.141.12.299] [PMID] Farsijani, F., Safi, S., & Shirazi Beheshtiha, S. H. (2023). Comparison of the performance of bioresonance, electrophoresis, and RT-PCR in the diagnosis of feline infectious peritonitis. Archives of Razi Institute, 78(3), 1077–1085. [DOI:10.22092/ARI.2023.360790.2606] Felten, S., & Hartmann, K. (2019). Diagnosis of feline infectious peritonitis: A review of the current literature. Viruses, 11(11), 1068. [DOI:10.3390/v11111068][PMID] Felten, S., Weider, K., Doenges, S., Gruendl, S., Matiasek, K., & Hermanns, W., et al. (2017). Detection of feline coronavirus spike gene mutations as a tool to diagnose feline infectious peritonitis. Journal of Feline Medicine and Surgery, 19(4), 321-335. [DOI:10.1177/1098612X15623824][PMID] Gamble, D. A., Lobbiani, A., Gramegna, M., Moore, L. E., & Colucci, G. (1997). Development of a nested PCR assay for detection of feline infectious peritonitis virus in clinical specimens. Journal of Clinical Microbiology, 35(3), 673-675. [DOI:10.1128/jcm.35.3.673-675.1997][PMID] Hartmann, K., Binder, C., Hirschberger, J., Cole, D., Reinacher, M., & Schroo, S., et al. (2003). Comparison of different tests to diagnose feline infectious peritonitis. Journal of Veterinary Internal Medicine, 17(6), 781-790. [DOI:10.1111/j.1939-1676.2003.tb02515.x][PMID] Herrewegh, A. A. P. M., Egberink, H. F., Horzinek, M. C., Rottier, P. J. M., & De Groot, R. J. (1995). Polymerase chain reaction (PCR) for the diagnosis of naturally occurring feline coronavirus infe Feline Practice. 23(3), 56-60. [Link] Kennedy, M. A. (2020). Feline infectious peritonitis: Update on pathogenesis, diagnostics, and treatment. The Veterinary Clinics of North America. Small animal practice, 50(5), 1001–1011. [DOI:10.1016/j.cvsm.2005.002] [PMID] Lorusso, E., Mari, V., Losurdo, M., Lanave, G., Trotta, A., & Dowgier, G., et al. (2019). Discrepancies between feline coronavirus antibody and nucleic acid detection in effusions of cats with suspected feline infectious peritonitis. Research in Veterinary Science, 125, 421-424. [DOI:10.1016/j.rvsc.2017.10.004][PMID] Mohammed Ibrahim, O., Bara Allawe, A., & Ali Kadhim, H. (2022). Isolation and molecular detection of feline infectious peritonitis virus. Archives of Razi Institute, 77(5), 1709-1714. [DOI:10.22092/ARI.2022.357997.2135] Avizeh, R., Mosallanejad, B. and Seyfiabad Shapouri, M. (2012). Antibody detection of feline infectious peritonitis virus (FIPV) in sera of companion cats in Ahvaz, southwest of Iran. Archives of Razi Institute, 67(1), 69-74. [DOI:10.22092/ARI.2016.103890] Paltrinieri, S., Comazzi, S., Spagnolo, V., & Giordano, A. (2002). Laboratory changes consistent with feline infectious peritonitis in cats from multicat environments. Journal of Veterinary Medicine. A, Physiology, Pathology, Clinical Medicine, 49(10), 503–510. [DOI:10.1046/j.1439-0442.2002.00494.x][PMID] Paltrinieri, S., Giordano, A., Stranieri, A., & Lauzi, S. (2021). Feline infectious peritonitis (FIP) and coronavirus disease 19 (COVID‐19): Are they similar? Transboundary and Emerging Diseases, 68(4), 1786-1799. [DOI:10.1111/tbed.13856][PMID] Pedersen, N. C. (2009). A review of feline infectious peritonitis virus infection: 1963-2008. Journal of Feline Medicine and Surgery, 11(4), 225-258. [DOI:10.1016/j.jfms.2008.09.008][PMID] Li, C., Liu, Q., Kong, F., Guo, D., Zhai, J., Su, M., & Sun, D. (2019). Circulation and genetic diversity of Feline coronavirus type I and II from clinically healthy and FIP‐suspected cats in China. Transboundary and Emerging Diseases, 66(2), 763-775. [DOI:10.1111/tbed.13081][PMID] Lutz, M., Steiner, A. R., Cattori, V., Hofmann-Lehmann, R., Lutz, H., & Kipar, A., et al. (2020). FCoV viral sequences of systemically infected healthy cats lack gene mutations previously linked to the development of FIP. Pathogens, 9(8), 603. [DOI:10.3390/pathogens9080603][PMID] Mojtahedzadeh, S. M., Jamshidi, S., Ghalyanchi Langroudi, A., Vahedi, S. M., Ashrafi Tamai, I., & Akbarein, H., et al. (2024). Molecular detection of canine distemper virus among dogs showing neurologic and non-neurologic forms of disease. Iranian Journal of Veterinary Medicine, 18(2), 203-214. [DOI:10.32598/IJVM.18.2.1005294] Myrrha, L. W., Silva, F. M. F., Vidigal, P. M. P., Resende, M., Bressan, G. C., & Fietto, J. L. R., et al. (2019). Feline coronavirus isolates from a part of Brazil: insights into molecular epidemiology and phylogeny inferred from the 7b gene. The Journal of Veterinary Medical Science, 81(10), 1455–1460. [DOI:10.1292/jvms.19-0090][PMID] Ramezanpour Eshkevari, S., Sasani, F., Shokrpoor, S., Mardjanmehr, S. H., Akbarein, H., & Ashrafi, I. (2024). A histopathological study on the changes in the central nervous system of dead cats with neurological symptoms. Iranian Journal of Veterinary Medicine, 18(4), 545-554 [DOI: 10.32598/ijvm.18.4.1005436] Rasooli, A., Nouri, M., Seyfi Abad Shapouri, M. R., Mohseni-Parsa, S., Baghbanian, H. R., & Lotfi, M., et al. (2023). Serological detection of SRMV, BVDV, BHV-1and BEFV in camels (Camelus dromedarius) in southwest Iran. Iranian Journal of Veterinary Medicine, 17(2) 139-147. [DOI:10.32598/ijvm.17.2.1005239] Rohrbach, B. W., Legendre, A. M., Baldwin, C. A., Lein, D. H., Reed, W. M., & Wilson, R. B. (2001). Epidemiology of feline infectious peritonitis among cats examined at veterinary medical teaching hospitals. Journal of the American Veterinary Medical Association, 218(7), 1111-11 [DOI:10.2460/javma.2001.218.1111] [PMID] Sangl, L., Matiasek, K., Felten, S., Gründl, S., Bergmann, M., & Balzer, H. J., et al. (2019). Detection of feline coronavirus mutations in paraffin-embedded tissues in cats with feline infectious peritonitis and controls. Journal of Feline Medicine and Surgery, 21(2), 133-142. [DOI:10.1177/1098612X18762883][PMID] Shelly, S. M., Scarlett-Kranz, J., & Blue, J. T. (1988). Protein electrophoresis on effusions from cats as a diagnostic test for feline infectious pe Journal of the American Animal Hospital Association, 24(5), 495-500. [Link] Tasker, S. (2018). Diagnosis of feline infectious peritonitis: Update on evidence supporting available tests. Journal of Feline Medicine and Surgery, 20(3), 228-243. [DOI: 10.1177/1098612X18758592][PMID] Tekes, G., & Thiel, H. J. (2016). Feline coronaviruses: Pathogenesis of feline infectious peritonitis. Advances in Virus Research, 96, 193-218. [DOI:10.1016/bs.aivir.2016.08.002] [PMID] | ||
مراجع | ||
Addie, D. D., Toth, S., Murray, G. D., & Jarrett, O. (1995). Risk of feline infectious peritonitis in cats naturally infected with feline coronavirus. American Journal of Veterinary Research, 56(4), 429–434. [DOI:10.2460/ajvr.1995.56.04.429] [PMID]
Aksono, E. B., Iradatya, K. R., Sucipto, T. H., Fajar, N. S., & Yuniarti, W. M. (2023). Phylogenetic analysis of feline infectious peritonitis virus, feline enteric coronavirus, and severe acute respiratory syndrome coronavirus 2 of cats in Surabaya, Indonesia. Veterinary World, 16(1), 76–81. [PMID]
Hajijafari Anaraki, M., Sheikhi, N., Haghbin Nazarpak, H., & Nikbahkt Brujeni, G. (2022). Real time detection of different variant strains of infectious bronchitis virus in trachea, lung and kidney of infected broiler chickens. Iranian Journal of Veterinary Medicine. 16(1), 57-63. [DOI:10.22059/IJVM.2021.321594.1005165]
André, N. M., Cossic, B., Davies, E., Miller, A. D., & Whittaker, R. (2019). Distinct mutation in the feline coronavirus spike protein cleavage activation site in a cat with feline infectious peritonitis-associated meningoencephalomyelitis. JFMS Open Reports, 5(1), 2055116919856103.[DOI:10.1177/2055116919856103][PMID]
Barker, E. N., Tasker, S., Gruffydd-Jones, T. J., Tuplin, C. K., Burton, K., & Porter, E., et al. (2013). Phylogenetic analysis of feline coronavirus strains in an epizootic outbreak of feline infectious peritonitis. Journal of Veterinary Internal Medicine, 27(3), 445-450. [DOI:10.1111/jvim.12058][PMID]
Brown, M. A., Troyer, J. L., Pecon-Slattery, J., Roelke, M. E., & O’Brien, S. J. (2009). Genetics and pathogenesis of feline infectious peritonitis virus. Emerging Infectious Diseases, 15(9), 1445-1452. [DOI:10.3201/eid1509.081573][PMID]
Chang, H. W., de Groot, R. J., Egberink, H. F., & Rottier, P. J. (2010). Feline infectious peritonitis: Insights into feline coronavirus pathobiogenesis and epidemiology based on genetic analysis of the viral 3c gene. The Journal of General Virology, 91(Pt 2), 415–420. [DOI:10.1099/vir.0.016485-0] [PMID]
Chang, H. W., Egberink, H. F., Halpin, R., Spiro, D. J., & Rottier, P. J. (2012). Spike protein fusion peptide and feline coronavirus virulence. Emerging Infectious Diseases, 18(7), 1089-1095. [DOI:10.3201/eid1807.120143][PMID]
Decaro, N., Mari, V., Lanave, G., Lorusso, E., Lucente, M. S., & Desario, , et al. (2021). Mutation analysis of the spike protein in Italian feline infectious peritonitis virus and feline enteric coronavirus sequences. Research in Veterinary Science, 135, 15-19. [DOI:10.1016/j.rvsc.2020.12.023] [PMID]
Doenges, S. J., Weber, K., Dorsch, R., Fux, R., Fischer, A., & Matiasek, L. A., et al. (2016). Detection of feline coronavirus in cerebrospinal fluid for diagnosis of feline infectious peritonitis in cats with and without neurological signs. Journal of Feline Medicine and Surgery, 18(2), 104-109. [DOI:10.1177/1098612X15574757][PMID]
Duthie, S., Eckersall, P. D., Addie, D. D., Lawrence, C. E., & Jarrett, O. (1997). Value of α1‐acid glycoprotein in the diagnosis of feline infectious peritonitis. The Veterinary Record, 141(12), 299– [DOI:10.1136/vr.141.12.299] [PMID]
Farsijani, F., Safi, S., & Shirazi Beheshtiha, S. H. (2023). Comparison of the performance of bioresonance, electrophoresis, and RT-PCR in the diagnosis of feline infectious peritonitis. Archives of Razi Institute, 78(3), 1077–1085. [DOI:10.22092/ARI.2023.360790.2606]
Felten, S., & Hartmann, K. (2019). Diagnosis of feline infectious peritonitis: A review of the current literature. Viruses, 11(11), 1068. [DOI:10.3390/v11111068][PMID]
Felten, S., Weider, K., Doenges, S., Gruendl, S., Matiasek, K., & Hermanns, W., et al. (2017). Detection of feline coronavirus spike gene mutations as a tool to diagnose feline infectious peritonitis. Journal of Feline Medicine and Surgery, 19(4), 321-335. [DOI:10.1177/1098612X15623824][PMID]
Gamble, D. A., Lobbiani, A., Gramegna, M., Moore, L. E., & Colucci, G. (1997). Development of a nested PCR assay for detection of feline infectious peritonitis virus in clinical specimens. Journal of Clinical Microbiology, 35(3), 673-675. [DOI:10.1128/jcm.35.3.673-675.1997][PMID]
Hartmann, K., Binder, C., Hirschberger, J., Cole, D., Reinacher, M., & Schroo, S., et al. (2003). Comparison of different tests to diagnose feline infectious peritonitis. Journal of Veterinary Internal Medicine, 17(6), 781-790. [DOI:10.1111/j.1939-1676.2003.tb02515.x][PMID]
Herrewegh, A. A. P. M., Egberink, H. F., Horzinek, M. C., Rottier, P. J. M., & De Groot, R. J. (1995). Polymerase chain reaction (PCR) for the diagnosis of naturally occurring feline coronavirus infe Feline Practice. 23(3), 56-60. [Link]
Kennedy, M. A. (2020). Feline infectious peritonitis: Update on pathogenesis, diagnostics, and treatment. The Veterinary Clinics of North America. Small animal practice, 50(5), 1001–1011. [DOI:10.1016/j.cvsm.2005.002] [PMID]
Lorusso, E., Mari, V., Losurdo, M., Lanave, G., Trotta, A., & Dowgier, G., et al. (2019). Discrepancies between feline coronavirus antibody and nucleic acid detection in effusions of cats with suspected feline infectious peritonitis. Research in Veterinary Science, 125, 421-424. [DOI:10.1016/j.rvsc.2017.10.004][PMID]
Mohammed Ibrahim, O., Bara Allawe, A., & Ali Kadhim, H. (2022). Isolation and molecular detection of feline infectious peritonitis virus. Archives of Razi Institute, 77(5), 1709-1714. [DOI:10.22092/ARI.2022.357997.2135]
Avizeh, R., Mosallanejad, B. and Seyfiabad Shapouri, M. (2012). Antibody detection of feline infectious peritonitis virus (FIPV) in sera of companion cats in Ahvaz, southwest of Iran. Archives of Razi Institute, 67(1), 69-74. [DOI:10.22092/ARI.2016.103890]
Paltrinieri, S., Comazzi, S., Spagnolo, V., & Giordano, A. (2002). Laboratory changes consistent with feline infectious peritonitis in cats from multicat environments. Journal of Veterinary Medicine. A, Physiology, Pathology, Clinical Medicine, 49(10), 503–510. [DOI:10.1046/j.1439-0442.2002.00494.x][PMID]
Paltrinieri, S., Giordano, A., Stranieri, A., & Lauzi, S. (2021). Feline infectious peritonitis (FIP) and coronavirus disease 19 (COVID‐19): Are they similar? Transboundary and Emerging Diseases, 68(4), 1786-1799. [DOI:10.1111/tbed.13856][PMID]
Pedersen, N. C. (2009). A review of feline infectious peritonitis virus infection: 1963-2008. Journal of Feline Medicine and Surgery, 11(4), 225-258. [DOI:10.1016/j.jfms.2008.09.008][PMID]
Li, C., Liu, Q., Kong, F., Guo, D., Zhai, J., Su, M., & Sun, D. (2019). Circulation and genetic diversity of Feline coronavirus type I and II from clinically healthy and FIP‐suspected cats in China. Transboundary and Emerging Diseases, 66(2), 763-775. [DOI:10.1111/tbed.13081][PMID]
Lutz, M., Steiner, A. R., Cattori, V., Hofmann-Lehmann, R., Lutz, H., & Kipar, A., et al. (2020). FCoV viral sequences of systemically infected healthy cats lack gene mutations previously linked to the development of FIP. Pathogens, 9(8), 603. [DOI:10.3390/pathogens9080603][PMID]
Mojtahedzadeh, S. M., Jamshidi, S., Ghalyanchi Langroudi, A., Vahedi, S. M., Ashrafi Tamai, I., & Akbarein, H., et al. (2024). Molecular detection of canine distemper virus among dogs showing neurologic and non-neurologic forms of disease. Iranian Journal of Veterinary Medicine, 18(2), 203-214. [DOI:10.32598/IJVM.18.2.1005294]
Myrrha, L. W., Silva, F. M. F., Vidigal, P. M. P., Resende, M., Bressan, G. C., & Fietto, J. L. R., et al. (2019). Feline coronavirus isolates from a part of Brazil: insights into molecular epidemiology and phylogeny inferred from the 7b gene. The Journal of Veterinary Medical Science, 81(10), 1455–1460. [DOI:10.1292/jvms.19-0090][PMID]
Ramezanpour Eshkevari, S., Sasani, F., Shokrpoor, S., Mardjanmehr, S. H., Akbarein, H., & Ashrafi, I. (2024). A histopathological study on the changes in the central nervous system of dead cats with neurological symptoms. Iranian Journal of Veterinary Medicine, 18(4), 545-554 [DOI: 10.32598/ijvm.18.4.1005436]
RRasooli, A., Nouri, M., Seyfi Abad Shapouri, M. R., Mohseni-Parsa, S., Baghbanian, H. R., & Lotfi, M., et al. (2023). Serological detection of SRMV, BVDV, BHV-1and BEFV in camels (Camelus dromedarius) in southwest Iran. Iranian Journal of Veterinary Medicine, 17(2) 139-147. [DOI:10.32598/ijvm.17.2.1005239]
Rohrbach, B. W., Legendre, A. M., Baldwin, C. A., Lein, D. H., Reed, W. M., & Wilson, R. B. (2001). Epidemiology of feline infectious peritonitis among cats examined at veterinary medical teaching hospitals. Journal of the American Veterinary Medical Association, 218(7), 1111-11 [DOI:10.2460/javma.2001.218.1111] [PMID]
Sangl, L., Matiasek, K., Felten, S., Gründl, S., Bergmann, M., & Balzer, H. J., et al. (2019). Detection of feline coronavirus mutations in paraffin-embedded tissues in cats with feline infectious peritonitis and controls. Journal of Feline Medicine and Surgery, 21(2), 133-142. [DOI:10.1177/1098612X18762883][PMID]
Shelly, S. M., Scarlett-Kranz, J., & Blue, J. T. (1988). Protein electrophoresis on effusions from cats as a diagnostic test for feline infectious pe Journal of the American Animal Hospital Association, 24(5), 495-500. [Link]
Tasker, S. (2018). Diagnosis of feline infectious peritonitis: Update on evidence supporting available tests. Journal of Feline Medicine and Surgery, 20(3), 228-243. [DOI: 10.1177/1098612X18758592][PMID]
Tekes, G., & Thiel, H. J. (2016). Feline coronaviruses: Pathogenesis of feline infectious peritonitis. Advances in Virus Research, 96, 193-218. [DOI:10.1016/bs.aivir.2016.08.002] [PMID] | ||
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