Detection of infectious bronchitis virus by real-time reverse transcriptase-polymerase chain reaction and identification of a quasispecies in the Beaudette strain

被引:33
|
作者
Jackwood, MW [1 ]
Hilt, DA [1 ]
Callison, SA [1 ]
机构
[1] Univ Georgia, Coll Vet Med, Dept Avian Med, Poultry Diagnost & Res Ctr, Athens, GA 30602 USA
关键词
infectious bronchitis virus; real-time reverse transcriptase-polymerase chain; reaction; diagnosis; quasispecies;
D O I
10.1637/6075
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
In this report, we describe a real-time reverse transcriptase-polymerase chain reaction (RRT-PCR) diagnostic test for infectious bronchitis virus (IBV) with the use of fluorescence resonance energy transfer (FRET) technology. Two primers that amplify a 383-base pair product between nucleotide positions 703 and 1086 relative to the start codon for the S1 gene of the Massachusetts 41 virus were designed and used to amplify the Beaudette, Massachusetts 41, Florida 18288, Connecticut, Iowa 97, Arkansas DPI, CA/NE95/99, DE/072/92, and GA/0470/98 strains of IBV. The primers were specific and did not amplify New Castle disease virus, Mycoplasma spp., or infectious laryngotracheitis virus. For RRT-PCR by FRET, an anchor probe conjugated to fluorescein and a detection probe conjugated to a red fluorophore were designed to anneal to a hypervariable region within the 383-base pair product. The level of sensitivity was 1 x 10(4) RNA molecules used as starting template. After amplification, a melting curve analysis was conducted to specifically identify IBV types. Because of sequence differences in the annealing position of the detection probe, the Arkansas, Connecticut, Beaudette, and Massachusetts 41 strains could be differentiated. No fluorescence was observed for the DE/072/ 92 and GA/0470/98 viruses with the anchor and detection probes. When the Beaudette strain was examined, two melting peaks were observed at 44 C and 51 C, indicating a quasispecies in that laboratory strain of IBV. Routine typing of vaccine strains of IBV was possible with this technology, but high standard deviations associated with the melting curve analysis of the FRET probes described herein made it difficult to use this test reliably for routine typing of IBV field isolates.
引用
收藏
页码:718 / 724
页数:7
相关论文
共 50 条
  • [21] Multiplex reverse transcriptase-polymerase chain reaction applied to virus detection in globe artichoke
    Grieco, F
    Gallitelli, D
    JOURNAL OF PHYTOPATHOLOGY-PHYTOPATHOLOGISCHE ZEITSCHRIFT, 1999, 147 (03): : 183 - 185
  • [22] Microbial quality of wastewater: detection of hepatitis A virus by reverse transcriptase-polymerase chain reaction
    Morace, G
    Aulicino, FA
    Angelozzi, C
    Costanzo, L
    Donadio, F
    Rapicetta, M
    JOURNAL OF APPLIED MICROBIOLOGY, 2002, 92 (05) : 828 - 836
  • [23] Effect of template on generating a standard curve for absolute quantification of an RNA virus by real-time reverse transcriptase-polymerase chain reaction
    Bowers, Robert M.
    Dhar, Arun K.
    MOLECULAR AND CELLULAR PROBES, 2011, 25 (01) : 60 - 64
  • [24] Redesign of primer and application of the reverse transcriptase-polymerase chain reaction and restriction fragment length polymorphism test to the DE072 strain of infectious bronchitis virus
    Lee, CW
    Hilt, DA
    Jackwood, MW
    AVIAN DISEASES, 2000, 44 (03) : 650 - 654
  • [25] Detection of infectious hepatitis A virus by integrated cell culture/strand-specific reverse transcriptase-polymerase chain reaction
    Jiang, YJ
    Liao, GY
    Zhao, W
    Sun, MB
    Qian, Y
    Bian, CX
    Jiang, SD
    JOURNAL OF APPLIED MICROBIOLOGY, 2004, 97 (05) : 1105 - 1112
  • [26] Reverse transcriptase-polymerase chain reaction to detect avian encephalomyelitis virus
    Xie, ZQ
    Khan, MI
    Girshick, T
    Xie, ZX
    AVIAN DISEASES, 2005, 49 (02) : 227 - 230
  • [27] First Detection of SARS-CoV-2 by Real-Time Reverse Transcriptase-Polymerase Chain Reaction Assay in Pleural Fluid
    Mei, Federico
    Bonifazi, Martina
    Menzo, Stefano
    Berardino, Alessandro Di Marco
    Sediari, Michele
    Paolini, Luca
    Re, Antonina
    Gonnelli, Francesca
    Duranti, Claudia
    Grilli, Martina
    Vennarucci, Giacomo Spurio
    Latini, Maria Agnese
    Zuccatosta, Lina
    Gasparini, Stefano
    CHEST, 2020, 158 (04) : E143 - E146
  • [28] Detection of SYT-SSX fusion transcripts in archival synovial sarcomas by real-time reverse transcriptase-polymerase chain reaction
    Bijwaard, KE
    Fetsch, JF
    Przygodzki, R
    Taubenberger, JK
    Lichy, JH
    JOURNAL OF MOLECULAR DIAGNOSTICS, 2002, 4 (01): : 59 - 64
  • [29] Real-time quantitative reverse transcriptase-polymerase chain reaction analysis of melanoma progression-associated genes
    Rafferty, Mairin
    Faller, William J.
    Moss, Catherine
    McCormack, Janet
    Malandsmo, Gunhild M.
    Easty, David J.
    Gallagher, William M.
    ANTICANCER RESEARCH, 2007, 27 (3A) : 1301 - 1307
  • [30] Reverse transcriptase-polymerase chain reaction detection in chicken flocks in Iran
    Abtahi, N.
    Kalami, H.
    Torab, S.
    INTERNATIONAL JOURNAL OF ADVANCED AND APPLIED SCIENCES, 2015, 2 (02): : 34 - 37