Development of a Real-Time Reverse Transcriptase PCR Assay for Type A Influenza Virus and the Avian H5 and H7 Hemagglutinin Subtypes
暂无分享,去创建一个
K. Lohman | L. Garber | D. Suarez | D. Senne | M. Perdue | Erica Spackman | Dennis A. Senne | T. J. Myers | Leslie L. Bulaga | Lindsey P. Garber | Michael L. Perdue | Kenton Lohman | Luke T. Daum | David L. Suarez | L. Daum | E. Spackman | L. Bulaga
[1] R. Abramson,et al. Detection of specific polymerase chain reaction product by utilizing the 5'----3' exonuclease activity of Thermus aquaticus DNA polymerase. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[2] M. S. Lee,et al. Identification and subtyping of avian influenza viruses by reverse transcription-PCR. , 2001, Journal of virological methods.
[3] D. Senne,et al. Epizootiology of avian influenza: effect of season on incidence in sentinel ducks and domestic turkeys in Minnesota , 1985, Applied and environmental microbiology.
[4] G. Fichtner. Problems associated with lethal avian influenza eradication. , 1984 .
[5] K. Livak,et al. Oligonucleotides with fluorescent dyes at opposite ends provide a quenched probe system useful for detecting PCR product and nucleic acid hybridization. , 1995, PCR methods and applications.
[6] C. Naeve,et al. Is virulence of H5N2 influenza viruses in chickens associated with loss of carbohydrate from the hemagglutinin? , 1984, Virology.
[7] K. Handberg,et al. Detection and subtyping (H5 and H7) of avian type A influenza virus by reverse transcription-PCR and PCR-ELISA , 2001, Archives of Virology.
[8] R. Webster,et al. Origin and molecular changes associated with emergence of a highly pathogenic H5N2 influenza virus in Mexico. , 1995, Virology.
[9] S. Sauleda,et al. High-Throughput Real-Time Reverse Transcription-PCR Quantitation of Hepatitis C Virus RNA , 1999, Journal of Clinical Microbiology.
[10] G. K. Hirst,et al. Mechanism of influenza recombination. II. Virus aggregation and its effect on plaque formation by so-called noninfective virus. , 1973, Virology.
[11] S. B. Hitchner,et al. A Laboratory Manual for the Isolation and Identification of Avian Pathogens , 1990 .
[12] G. K. Hirst. Mechanism of influenza recombination. I. Factors influencing recombination rates between temperature-sensitive mutants of strain WSN and the classification of mutants into complementation--recombination groups. , 1973, Virology.
[13] P. Dall’Ara,et al. Avian influenza epidemic in Italy due to serovar H7N1. , 2001, Avian diseases.
[14] D. Suarez,et al. Multiple alignment comparison of the non-structural genes of influenza A viruses. , 1998, Virus research.
[15] L. Reed,et al. A SIMPLE METHOD OF ESTIMATING FIFTY PER CENT ENDPOINTS , 1938 .
[16] Maricarmen García,et al. Heterogeneity in the haemagglutinin gene and emergence of the highly pathogenic phenotype among recent H5N2 avian influenza viruses from Mexico. , 1996, The Journal of general virology.
[17] R. Dietzgen,et al. Real-time RT-PCR fluorescent detection of tomato spotted wilt virus. , 2000, Journal of virological methods.
[18] 中村 悟. Amplification and detection of a single molecule of human immunodeficiency virus RNA , 1992 .
[19] D. Suarez,et al. Phylogenetic Analysis of H7 Avian Influenza Viruses Isolated from the Live Bird Markets of the Northeast United States , 1999, Journal of Virology.
[20] I. Capua,et al. Changes in the haemagglutinin and the neuraminidase genes prior to the emergence of highly pathogenic H7N1 avian influenza viruses in Italy , 2001, Archives of Virology.
[21] E. Starick,et al. Type- and subtype-specific RT-PCR assays for avian influenza A viruses (AIV). , 2000, Journal of veterinary medicine. B, Infectious diseases and veterinary public health.
[22] P. Schipper,et al. Simultaneous Detection of Influenza Viruses A and B Using Real-Time Quantitative PCR , 2001, Journal of Clinical Microbiology.