Rapid and quantitative detection of Crimean-Congo hemorrhagic fever virus by one-step real-time reverse transcriptase-PCR

被引:0
|
作者
Yapar, M
Aydogan, H
Pahsa, A
Besirbellioglu, BA
Bodur, H
Basustaoglu, AC
Guney, C
Avci, IY
Sener, K
Abu Setteh, MH
Kubar, A [1 ]
机构
[1] Gulhane Mil Med Acad, Dept Virol, TR-06018 Ankara, Turkey
[2] Gulhane Mil Med Acad, Dept Microbiol & Clin Microbiol, TR-06018 Ankara, Turkey
[3] Gulhane Mil Med Acad, Dept Infect Dis & Clin Microbiol, TR-06018 Ankara, Turkey
[4] Ankara Numune Training & Res Hosp, Infect Dis & Clin Microbiol Clin, Ankara, Turkey
[5] King Hussein Med Ctr, Princess Eman Res Ctr Lab Sci, Amman, Jordan
关键词
D O I
暂无
中图分类号
R51 [传染病];
学科分类号
100401 ;
摘要
In this article, the development of a new TaqMan-based one-step real-time reverse transcriptase-polymerase chain reaction (RT-PCR) assay for detection and quantification of Crimean-Congo hemorrhagic fever virus (CCHFV) RNA is described. Selected oligos targeting the highly conserved S region of CCHFV were designed by using our oligo design and analysis software, Oligoware 1.0. None of the primer sequences showed genomic cross-reactivity with other viruses or cells in a BLAST (NCBI) search analysis. The sensitivity and specificity of the primers and the probe were tested using 18 serum samples from patients from EastAnatolian who were suspected of having CCHFV, including 2 samples that had already been confirmed to be positive for CCHFV. Among the 16 previously unconfirmed samples, 5 were positive by TaqMan-based one-step real-time RT-PCR and 1 was positive by non-nested RT-PCR, and these results were confirmed with DNA sequencing analysis. The 2 previously confirmed CCHFV RNA samples were also positive by both TaqMan-based one-step real-time RT-PCR and non-nested RT-PCR tests. To ensure the quantitative reproducibility of TaqMan-based one-step real-time RT-PCR, the procedure was repeated several times and the same results were obtained (SD = 0.84 [maximum value]). The developed assay was able to sensitively quantify the concentration of CCHFV RNA, which ranged from 10(2) to 10(7) copies/ml per reaction, using plasmid standards generated from the CCHFV RNA (correlation coefficiency = 0.989). The results of the one-step real-time RT-PCR assay were more sensitive than those of the non-nested RT-PCR assay. It can be concluded that our one-step real-time RT-PCR assay is a reliable, reproducible, specific, sensitive and simple tool for the detection and quantification of CCHFV.
引用
收藏
页码:358 / 362
页数:5
相关论文
共 50 条
  • [31] A one-step reverse transcription real-time PCR assay for the detection and quantitation of Grapevine fanleaf virus
    Cepin, Urska
    Gutierrez-Aguirre, Ion
    Balazic, Leonida
    Pompe-Novak, Marusa
    Gruden, Kristina
    Ravnikar, Maja
    JOURNAL OF VIROLOGICAL METHODS, 2010, 170 (1-2) : 47 - 56
  • [32] Detection and quantification of canine influenza virus by one-step real-time reverse transcription PCR.
    Spindel, M. E.
    Lunn, K. F.
    Dillion, S.
    Landolt, G. A.
    JOURNAL OF VETERINARY INTERNAL MEDICINE, 2007, 21 (03) : 576 - 576
  • [33] Serosurvey and molecular detection of Crimean-Congo hemorrhagic fever virus (CCHFV) in northern Turkey
    Albayrak, Harun
    Ozan, Emre
    Kurt, Mitat
    TROPICAL ANIMAL HEALTH AND PRODUCTION, 2012, 44 (07) : 1667 - 1671
  • [34] Detection of Crimean-Congo hemorrhagic fever virus in ticks collected from South Russia
    Tsapko, Nikolay, V
    Volynkina, Anna S.
    Evchenko, Anna Yu
    Lisitskaya, Yana, V
    Shaposhnikova, Ludmila, I
    TICKS AND TICK-BORNE DISEASES, 2022, 13 (02)
  • [35] Widespread Detection of Multiple Strains of Crimean-Congo Hemorrhagic Fever Virus in Ticks, Spain
    Paz Sanchez-Seco, Maria
    Jose Sierra, Maria
    Estrada-Pena, Agustin
    Valcarcel, Felix
    Molina, Ricardo
    Ramirez de Arellano, Eva
    Sonia Olmeda, Angeles
    Garcia San Miguel, Lucia
    Jimenez, Maribel
    Romero, Luis J.
    Negredo, Anabel
    EMERGING INFECTIOUS DISEASES, 2022, 28 (02) : 394 - 402
  • [36] First molecular detection of crimean-congo hemorrhagic fever virus in ticks from Turkey
    Whitehouse, Chris A.
    Hottel, Hannah
    Vatansever, Zati
    Deniz, Ahmet
    Ergonul, Onder
    Paragas, Jason
    Garrison, Aura
    Kondig, John P.
    Wasieloski, Leonard P.
    AMERICAN JOURNAL OF TROPICAL MEDICINE AND HYGIENE, 2006, 75 (05): : 274 - 275
  • [37] Detection of Crimean-Congo Hemorrhagic Fever Virus Antibodies in Cattle in Plateau State, Nigeria
    Dzikwi-Emennaa, Asabe A.
    Meseko, Clement
    Emennaa, Paulinus
    Adeyinka, Adedeji J.
    Adamu, Andrew M.
    Adegboye, Oyelola A.
    VIRUSES-BASEL, 2022, 14 (12):
  • [38] Crimean-Congo Hemorrhagic Fever Virus-Specific Antibody Detection in Cattle in Mauritania
    Sas, Miriam A.
    Mertens, Marc
    Isselmou, Ekaterina
    Reimer, Nicole
    El Mamy, Bezeid O.
    Doumbia, Baba
    Groschup, Martin H.
    VECTOR-BORNE AND ZOONOTIC DISEASES, 2017, 17 (08) : 582 - 587
  • [39] Molecular detection of Crimean-Congo hemorrhagic fever virus in ticks, Greece, 2012–2014
    Anna Papa
    Anastasia Kontana
    Katerina Tsioka
    Ilias Chaligiannis
    Smaragda Sotiraki
    Parasitology Research, 2017, 116 : 3057 - 3063
  • [40] A Simple-Probe® real-time PCR assay for genotyping reassorted and non-reassorted isolates of Crimean-Congo hemorrhagic fever virus in southern Africa
    Kondiah, Kulsum
    Swanepoel, Robert
    Paweska, Janusz T.
    Burt, Felicity J.
    JOURNAL OF VIROLOGICAL METHODS, 2010, 169 (01) : 34 - 38