Skip to main content
Erschienen in: Archives of Virology 4/2009

01.04.2009 | Original Article

Rapid detection and non-subjective characterisation of infectious bronchitis virus isolates using high-resolution melt curve analysis and a mathematical model

verfasst von: Kylie Hewson, Amir H. Noormohammadi, Joanne M. Devlin, Karim Mardani, Jagoda Ignjatovic

Erschienen in: Archives of Virology | Ausgabe 4/2009

Einloggen, um Zugang zu erhalten

Abstract

Infectious bronchitis virus (IBV) is a coronavirus that causes upper respiratory, renal and/or reproductive diseases with high morbidity in poultry. Classification of IBV is important for implementation of vaccination strategies to control the disease in commercial poultry. Currently, the lengthy process of sequence analysis of the IBV S1 gene is considered the gold standard for IBV strain identification, with a high nucleotide identity (e.g. ≥95%) indicating related strains. However, this gene has a high propensity to mutate and/or undergo recombination, and alone it may not be reliable for strain identification. A real-time polymerase chain reaction (RT-PCR) combined with high-resolution melt (HRM) curve analysis was developed based on the 3′UTR of IBV for rapid detection and classification of IBV from commercial poultry. HRM curves generated from 230 to 435-bp PCR products of several IBV strains were subjected to further analysis using a mathematical model also developed during this study. It was shown that a combination of HRM curve analysis and the mathematical model could reliably group 189 out of 190 comparisons of pairs of IBV strains in accordance with their 3′UTR and S1 gene identities. The newly developed RT-PCR/HRM curve analysis model could detect and rapidly identify novel and vaccine-related IBV strains, as confirmed by S1 gene and 3′UTR nucleotide sequences. This model is a rapid, reliable, accurate and non-subjective system for detection of IBVs in poultry flocks.
Literatur
1.
Zurück zum Zitat Beaudette FR, Hudson CB (1937) Cultivation of the virus of infectious bronchitis. J Am Vet Med Assoc 90:51–58 Beaudette FR, Hudson CB (1937) Cultivation of the virus of infectious bronchitis. J Am Vet Med Assoc 90:51–58
2.
Zurück zum Zitat Benson DA, Karsch-Mizrachi I, Lipman DJ, Ostell J, Wheeler DL (2008) GenBank. Nucl Acids Res 36:D25–D30PubMedCrossRef Benson DA, Karsch-Mizrachi I, Lipman DJ, Ostell J, Wheeler DL (2008) GenBank. Nucl Acids Res 36:D25–D30PubMedCrossRef
3.
4.
Zurück zum Zitat Cavanagh D, Davis PJ, Mockett APA (1988) Amino acids within hypervariable region 1 of avian coronavirus IBV (Massachusetts serotype) spike glycoprotein are associated with neutralization epitopes. Virus Res 11(2):141–150PubMedCrossRef Cavanagh D, Davis PJ, Mockett APA (1988) Amino acids within hypervariable region 1 of avian coronavirus IBV (Massachusetts serotype) spike glycoprotein are associated with neutralization epitopes. Virus Res 11(2):141–150PubMedCrossRef
5.
Zurück zum Zitat Cavanagh D, Naqi SA (2003) Infectious bronchitis. In: Saif YM, Barnes HJ, Glisson JR, Fadly AM, McDougald LR, Swayne DE (eds) Diseases of poultry, 11th edn. Iowa State Press, USA, p 101–119 Cavanagh D, Naqi SA (2003) Infectious bronchitis. In: Saif YM, Barnes HJ, Glisson JR, Fadly AM, McDougald LR, Swayne DE (eds) Diseases of poultry, 11th edn. Iowa State Press, USA, p 101–119
6.
Zurück zum Zitat Cumming RB (1970) Studies on Australian infectious bronchitis virus. IV. Apparent farm-to-farm airborne transmission of infectious bronchitis virus. Avian Dis 14(1):191–195PubMedCrossRef Cumming RB (1970) Studies on Australian infectious bronchitis virus. IV. Apparent farm-to-farm airborne transmission of infectious bronchitis virus. Avian Dis 14(1):191–195PubMedCrossRef
7.
Zurück zum Zitat Estevez C, Villegas P, El-Attrache J (2003) A recombination event, induced in Ovo, between a low passage infectious bronchitis virus field isolate and a highly embryo adapted vaccine strain. Avian Dis 47:1282–1290PubMedCrossRef Estevez C, Villegas P, El-Attrache J (2003) A recombination event, induced in Ovo, between a low passage infectious bronchitis virus field isolate and a highly embryo adapted vaccine strain. Avian Dis 47:1282–1290PubMedCrossRef
8.
Zurück zum Zitat Fang SG, Shen S, Tay FPL, Liu DX (2005) Selection of and recombination between minor variants lead to the adaptation of an avian coronavirus to primate cells. Biochem Biophys Res Commun 336(2):417–423PubMedCrossRef Fang SG, Shen S, Tay FPL, Liu DX (2005) Selection of and recombination between minor variants lead to the adaptation of an avian coronavirus to primate cells. Biochem Biophys Res Commun 336(2):417–423PubMedCrossRef
9.
Zurück zum Zitat Hopkins SR, Yoder HW Jr (1986) Reversion to virulence of chicken-passaged infectious bronchitis vaccine virus. Avian Dis 30(1):221–223PubMedCrossRef Hopkins SR, Yoder HW Jr (1986) Reversion to virulence of chicken-passaged infectious bronchitis vaccine virus. Avian Dis 30(1):221–223PubMedCrossRef
10.
Zurück zum Zitat Ignjatovic J, Gould G, Sapats S (2006) Isolation of a variant infectious bronchitis virus in Australia that further illustrates diversity among emerging strains. Arch Virol 151(8):1567–1585PubMedCrossRef Ignjatovic J, Gould G, Sapats S (2006) Isolation of a variant infectious bronchitis virus in Australia that further illustrates diversity among emerging strains. Arch Virol 151(8):1567–1585PubMedCrossRef
11.
Zurück zum Zitat Ignjatovic J, Sapats SI (1997) A long-term study of Australian infectious bronchitis viruses indicates a major antigenic change. Avian Pathol 26(3):535–553PubMedCrossRef Ignjatovic J, Sapats SI (1997) A long-term study of Australian infectious bronchitis viruses indicates a major antigenic change. Avian Pathol 26(3):535–553PubMedCrossRef
12.
Zurück zum Zitat Jia W, Karaca K, Parrish CR, Naqi SA (1995) A novel variant of avian infectious bronchitis virus resulting from recombination among three different strains. Arch Virol 140(2):259–271PubMedCrossRef Jia W, Karaca K, Parrish CR, Naqi SA (1995) A novel variant of avian infectious bronchitis virus resulting from recombination among three different strains. Arch Virol 140(2):259–271PubMedCrossRef
13.
Zurück zum Zitat Kottier SA, Cavanagh D, Britton P (1995) Experimental evidence of recombination in coronavirus infectious bronchitis virus. Virology 213(2):569–580PubMedCrossRef Kottier SA, Cavanagh D, Britton P (1995) Experimental evidence of recombination in coronavirus infectious bronchitis virus. Virology 213(2):569–580PubMedCrossRef
14.
Zurück zum Zitat Krypuy M, Ahmed AA, Etemadmoghadam D, Hyland SJ, Group AOCS, deFazio A, Fox SB, Brenton JD, Bowtell DD, Dobrovi CA (2007) High resolution melting for mutation scanning of TP53 exons 5–8. BMC Cancer 7:168–181PubMedCrossRef Krypuy M, Ahmed AA, Etemadmoghadam D, Hyland SJ, Group AOCS, deFazio A, Fox SB, Brenton JD, Bowtell DD, Dobrovi CA (2007) High resolution melting for mutation scanning of TP53 exons 5–8. BMC Cancer 7:168–181PubMedCrossRef
15.
Zurück zum Zitat Krypuy M, Newnham GM, Thomas DM, Conron M, Dobrovic A (2006) High resolution melting analysis for the rapid and sensitive detection of mutations in clinical samples: KRAS codon 12 and 13 mutations in non-small cell lung cancer. BMC Cancer 6:295–307PubMedCrossRef Krypuy M, Newnham GM, Thomas DM, Conron M, Dobrovic A (2006) High resolution melting analysis for the rapid and sensitive detection of mutations in clinical samples: KRAS codon 12 and 13 mutations in non-small cell lung cancer. BMC Cancer 6:295–307PubMedCrossRef
16.
Zurück zum Zitat Lai MMC (1990) Corona virus: organization, replication and expression of genome. Annu Rev Microbiol 44(1):303PubMedCrossRef Lai MMC (1990) Corona virus: organization, replication and expression of genome. Annu Rev Microbiol 44(1):303PubMedCrossRef
17.
Zurück zum Zitat Lee CW, Jackwood MW (2000) Evidence of genetic diversity generated by recombination among avian coronavirus IBV. Arch Virol 145(10):2135–2148PubMedCrossRef Lee CW, Jackwood MW (2000) Evidence of genetic diversity generated by recombination among avian coronavirus IBV. Arch Virol 145(10):2135–2148PubMedCrossRef
18.
Zurück zum Zitat Lin J-H, Tseng C-P, Chen Y-J, Lin C-Y, Chang S-S, Wu H-S, Cheng J-C (2008) Rapid differentiation of influenza a virus subtypes and genetic screening for virus variants by high-resolution melting analysis. J Clin Microbiol 46(3):1090–1097PubMedCrossRef Lin J-H, Tseng C-P, Chen Y-J, Lin C-Y, Chang S-S, Wu H-S, Cheng J-C (2008) Rapid differentiation of influenza a virus subtypes and genetic screening for virus variants by high-resolution melting analysis. J Clin Microbiol 46(3):1090–1097PubMedCrossRef
19.
Zurück zum Zitat Liu S, Han Z, Chen J, Liu X, Shao Y, Kong X, Tong G, Rong J (2007) S1 gene sequence heterogeneity of a pathogenic infectious bronchitis virus strain and its embryo-passaged, attenuated derivatives. Avian Pathol 36(3):231–234PubMedCrossRef Liu S, Han Z, Chen J, Liu X, Shao Y, Kong X, Tong G, Rong J (2007) S1 gene sequence heterogeneity of a pathogenic infectious bronchitis virus strain and its embryo-passaged, attenuated derivatives. Avian Pathol 36(3):231–234PubMedCrossRef
20.
Zurück zum Zitat Mardani K, Browning GF, Ignjatovic J, Noormohammadi AH (2006) Rapid differentiation of current infectious bronchitis virus vaccine strains and field isolates in Australia. Aust Vet J 84(1–2):59–62PubMedCrossRef Mardani K, Browning GF, Ignjatovic J, Noormohammadi AH (2006) Rapid differentiation of current infectious bronchitis virus vaccine strains and field isolates in Australia. Aust Vet J 84(1–2):59–62PubMedCrossRef
21.
Zurück zum Zitat Mardani K, Noormohammadi AH, Hooper P, Ignjatovic J, Browning GF (2008) Infectious bronchitis viruses with a novel genomic organization. J Virol 82(4):2013–2024PubMedCrossRef Mardani K, Noormohammadi AH, Hooper P, Ignjatovic J, Browning GF (2008) Infectious bronchitis viruses with a novel genomic organization. J Virol 82(4):2013–2024PubMedCrossRef
22.
Zurück zum Zitat Mardani K, Noormohammadi AH, Ignatovic J, Browning GF (2006) Typing infectious bronchitis virus strains using reverse transcription-polymerase chain reaction and restriction fragment length polymorphism analysis to compare the 3′ 7.5 kb of their genomes. Avian Pathol 35(1):63–69PubMedCrossRef Mardani K, Noormohammadi AH, Ignatovic J, Browning GF (2006) Typing infectious bronchitis virus strains using reverse transcription-polymerase chain reaction and restriction fragment length polymorphism analysis to compare the 3′ 7.5 kb of their genomes. Avian Pathol 35(1):63–69PubMedCrossRef
23.
Zurück zum Zitat Price EP, Smith H, Huygens F, Giffard PM (2007) High-resolution DNA melt curve analysis of the clustered, regularly interspaced short-palindromic-repeat locus of Campylobacter jejuni. Appl Environ Microbiol 73(10):3431–3436PubMedCrossRef Price EP, Smith H, Huygens F, Giffard PM (2007) High-resolution DNA melt curve analysis of the clustered, regularly interspaced short-palindromic-repeat locus of Campylobacter jejuni. Appl Environ Microbiol 73(10):3431–3436PubMedCrossRef
24.
Zurück zum Zitat Ratanasethakul C, Cumming RB (1983) Immune response of chickens to various routes of administration of Australian infectious bronchitis vaccine. Aust Vet J 60(7):214–216PubMedCrossRef Ratanasethakul C, Cumming RB (1983) Immune response of chickens to various routes of administration of Australian infectious bronchitis vaccine. Aust Vet J 60(7):214–216PubMedCrossRef
25.
Zurück zum Zitat Reed GH, Wittwer CT (2004) Sensitivity and specificity of single-nucleotide polymorphism scanning by high-resolution melting analysis. Clin Chem 50(10):1748–1754PubMedCrossRef Reed GH, Wittwer CT (2004) Sensitivity and specificity of single-nucleotide polymorphism scanning by high-resolution melting analysis. Clin Chem 50(10):1748–1754PubMedCrossRef
26.
Zurück zum Zitat Sapats SI, Ashton F, Wright PJ, Ignjatovic J (1996) Sequence analysis of the S1 glycoprotein of infectious bronchitis viruses: identification of a novel genotypic group in Australia. J Gen Virol 77(3):413–418PubMedCrossRef Sapats SI, Ashton F, Wright PJ, Ignjatovic J (1996) Sequence analysis of the S1 glycoprotein of infectious bronchitis viruses: identification of a novel genotypic group in Australia. J Gen Virol 77(3):413–418PubMedCrossRef
27.
Zurück zum Zitat Vandersteen JG, Bayrak-Toydemir P, Palais RA, Wittwer CT (2007) Identifying common genetic variants by high-resolution melting. Clin Chem 53(7):1191–1198PubMedCrossRef Vandersteen JG, Bayrak-Toydemir P, Palais RA, Wittwer CT (2007) Identifying common genetic variants by high-resolution melting. Clin Chem 53(7):1191–1198PubMedCrossRef
28.
Zurück zum Zitat Wadey CN, Faragher JT (1981) Australian infectious bronchitis viruses: identification of nine subtypes by a neutralisation test. Res Vet Sci 30:70–74PubMed Wadey CN, Faragher JT (1981) Australian infectious bronchitis viruses: identification of nine subtypes by a neutralisation test. Res Vet Sci 30:70–74PubMed
29.
Zurück zum Zitat Wang L, Junker D, Collisson EW (1993) Evidence of natural recombination within the S1 gens of infectious bronchitis virus. Virology 192(2):710–716PubMedCrossRef Wang L, Junker D, Collisson EW (1993) Evidence of natural recombination within the S1 gens of infectious bronchitis virus. Virology 192(2):710–716PubMedCrossRef
30.
Zurück zum Zitat Williams AK, Wang L, Sneed LW, Collisson EW (1993) Analysis of a hypervariable region in the 3′ non-coding end of the infectious bronchitis virus genome. Virus Res 28(1):19–27PubMedCrossRef Williams AK, Wang L, Sneed LW, Collisson EW (1993) Analysis of a hypervariable region in the 3′ non-coding end of the infectious bronchitis virus genome. Virus Res 28(1):19–27PubMedCrossRef
Metadaten
Titel
Rapid detection and non-subjective characterisation of infectious bronchitis virus isolates using high-resolution melt curve analysis and a mathematical model
verfasst von
Kylie Hewson
Amir H. Noormohammadi
Joanne M. Devlin
Karim Mardani
Jagoda Ignjatovic
Publikationsdatum
01.04.2009
Verlag
Springer Vienna
Erschienen in
Archives of Virology / Ausgabe 4/2009
Print ISSN: 0304-8608
Elektronische ISSN: 1432-8798
DOI
https://doi.org/10.1007/s00705-009-0357-1

Weitere Artikel der Ausgabe 4/2009

Archives of Virology 4/2009 Zur Ausgabe

Leitlinien kompakt für die Innere Medizin

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Bei Herzinsuffizienz muss „Eisenmangel“ neu definiert werden!

16.05.2024 Herzinsuffizienz Nachrichten

Bei chronischer Herzinsuffizienz macht es einem internationalen Expertenteam zufolge wenig Sinn, die Diagnose „Eisenmangel“ am Serumferritin festzumachen. Das Team schlägt vor, sich lieber an die Transferrinsättigung zu halten.

Herzinfarkt mit 85 – trotzdem noch intensive Lipidsenkung?

16.05.2024 Hypercholesterinämie Nachrichten

Profitieren nach einem akuten Myokardinfarkt auch Betroffene über 80 Jahre noch von einer intensiven Lipidsenkung zur Sekundärprävention? Um diese Frage zu beantworten, wurden jetzt Registerdaten aus Frankreich ausgewertet.

ADHS-Medikation erhöht das kardiovaskuläre Risiko

16.05.2024 Herzinsuffizienz Nachrichten

Erwachsene, die Medikamente gegen das Aufmerksamkeitsdefizit-Hyperaktivitätssyndrom einnehmen, laufen offenbar erhöhte Gefahr, an Herzschwäche zu erkranken oder einen Schlaganfall zu erleiden. Es scheint eine Dosis-Wirkungs-Beziehung zu bestehen.

Erstmanifestation eines Diabetes-Typ-1 bei Kindern: Ein Notfall!

16.05.2024 DDG-Jahrestagung 2024 Kongressbericht

Manifestiert sich ein Typ-1-Diabetes bei Kindern, ist das ein Notfall – ebenso wie eine diabetische Ketoazidose. Die Grundsäulen der Therapie bestehen aus Rehydratation, Insulin und Kaliumgabe. Insulin ist das Medikament der Wahl zur Behandlung der Ketoazidose.

Update Innere Medizin

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.