Development and application of a canine endogenous internal positive control for use in real-time PCR assays

被引:8
作者
Modarelli, Joseph J. [1 ,2 ]
Ferro, Pamela J. [2 ]
Esteve-Gasent, Maria D. [1 ]
机构
[1] Texas A&M Univ, Coll Vet Med & Biomed Sci, Dept Vet Pathobiol, 4467 TAMU, College Stn, TX 77843 USA
[2] Texas A&M Univ, Texas A&M Vet Med Diagnost Lab, College Stn, TX USA
关键词
Dogs; quality control; real-time PCR;
D O I
10.1177/1040638718795206
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
Real-time PCR (rtPCR) tests have become a method of choice in many diagnostic settings, both animal and human. A concern remains, however, regarding rtPCR assay inhibition during nucleic acid extraction and/or rtPCR reaction process that may result in false-negative results. The use of an internal positive control, either endogenous or exogenous, to mitigate this issue has become more commonplace. We identified and standardized an endogenous internal positive control that can be utilized in rtPCR assays targeting canine-specific pathogens in either a singleplex or multiplex format. The target chosen for the endogenous internal positive control (EIPC-K9) was a highly conserved region in canine mitochondrial DNA. Samples from 240 dogs and 11 other species were screened with EIPC-K9; all canine samples were detected, and no cross-amplification with other species tested was observed. Additionally, no inhibition was noted when comparing singleplex to multiplex rtPCR formats.
引用
收藏
页码:789 / 792
页数:4
相关论文
共 50 条
[31]   Development of real-time PCR based assays for simultaneous and improved detection of citrus viruses [J].
Giuliana Loconsole ;
Maria Saponari ;
Vito Savino .
European Journal of Plant Pathology, 2010, 128 :251-259
[32]   Cloning and development of synthetic internal amplification control for Bacillus anthracis real-time polymerase chain reaction assays [J].
Sohni, Youvraj ;
Kanjilal, Sagarika ;
Kapur, Vivek .
DIAGNOSTIC MICROBIOLOGY AND INFECTIOUS DISEASE, 2008, 61 (04) :471-475
[33]   Development of real-time PCR (TaqMan®) assays for the detection and quantification of Botrytis cinerea in planta [J].
Suarez, MB ;
Walsh, K ;
Boonham, N ;
O' Neill, T ;
Pearson, S ;
Barker, I .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2005, 43 (09) :890-899
[34]   Development of Conventional and Real-Time PCR Assays to Detect Alternaria burnsii in Cumin Seed [J].
Ozer, Goksel ;
Bayraktar, Harun .
GESUNDE PFLANZEN, 2019, 71 (03) :205-212
[35]   Development of New Real-time PCR Assays for Detecting Megalocytivirus Across Multiple Genotypes [J].
Kawato, Yasuhiko ;
Cummins, David M. ;
Valdeter, Stacey ;
Mohr, Peter G. ;
Ito, Takafumi ;
Mizuno, Kaori ;
Kawakami, Hidemasa ;
Williams, Lynette M. ;
Crane, Mark St J. ;
Moody, Nicholas J. G. .
FISH PATHOLOGY, 2021, 56 (04) :177-186
[36]   Development of two real-time PCR assays for the detection of Mycoplasma hyopneumoniae in clinical samples [J].
Dubosson, CR ;
Conzelmann, C ;
Miserez, R ;
Boerlin, P ;
Frey, J ;
Zimmermann, W ;
Häni, H ;
Kuhnert, P .
VETERINARY MICROBIOLOGY, 2004, 102 (1-2) :55-65
[37]   Development of real-time PCR based assays for simultaneous and improved detection of citrus viruses [J].
Loconsole, Giuliana ;
Saponari, Maria ;
Savino, Vito .
EUROPEAN JOURNAL OF PLANT PATHOLOGY, 2010, 128 (02) :251-259
[38]   A universal heterologous internal control system for duplex real-time RT-PCR assays used in a detection system for pestiviruses [J].
Hoffmann, B. ;
Depner, K. ;
Schirrmeier, H. ;
Beer, M. .
JOURNAL OF VIROLOGICAL METHODS, 2006, 136 (1-2) :200-209
[39]   Armoured exogenous internal control for real-time PCR diagnosis of avian influenza [J].
Andreychuk, D. B. ;
Andriyasov, A., V ;
Nikonova, Z. B. ;
Kozlov, A. A. ;
Suarez, D. L. ;
Chvala, Il A. .
AVIAN PATHOLOGY, 2019, 48 (05) :492-498
[40]   Development and Application of Real-Time PCR Assay for Detection of Salmonella Abortusequi [J].
Wang, Jinhui ;
Guo, Kui ;
Li, Shuaijie ;
Liu, Diqiu ;
Chu, Xiaoyu ;
Wang, Yaoxin ;
Guo, Wei ;
Du, Cheng ;
Wang, Xiaojun ;
Hu, Zhe .
JOURNAL OF CLINICAL MICROBIOLOGY, 2023, 61 (03)