Evaluation of a real-time mobile PCR device (PCR 1100) for the detection of the rabies gene in field samples
暂无分享,去创建一个
A. Nishizono | B. Quiambao | D. Manalo | M. Y. Chu | K. Kimitsuki | C. Demetria | T. Yahiro | N. Saito | Sakirul Khan | Takehiro Hashimoto | M. Mananggit
[1] M. R. Mananggit,et al. Lateral flow devices for samples collected by straw sampling method for postmortem canine rabies diagnosis , 2021, PLoS neglected tropical diseases.
[2] A. Wyllie,et al. Evaluation of the Liberty16 Mobile Real Time PCR Device for Use With the SalivaDirect Assay for SARS-CoV-2 Testing , 2021, Frontiers in Cellular and Infection Microbiology.
[3] M. R. Mananggit,et al. Background and descriptive features of rabies-suspected animals in Central Luzon, Philippines , 2021, Tropical Medicine and Health.
[4] T. Inglis,et al. Development, deployment and in-field demonstration of mobile coronavirus SARS-CoV-2 Nucleic acid amplification test , 2021, Journal of medical microbiology.
[5] M. R. Mananggit,et al. Evaluation of the diagnostic accuracy of lateral flow devices as a tool to diagnose rabies in post-mortem animals , 2020, PLoS neglected tropical diseases.
[6] K. Shirato,et al. An ultra-rapid real-time RT-PCR method using the PCR1100 to detect Severe Acute Respiratory Syndrome Coronavirus-2. , 2020, Japanese journal of infectious diseases.
[7] M. Gourlaouen,et al. Field Postmortem Rabies Rapid Immunochromatographic Diagnostic Test for Resource-Limited Settings with Further Molecular Applications. , 2020, Journal of visualized experiments : JoVE.
[8] Akira Noguchi,et al. Follicle-sinus complexes in muzzle skin of domestic and wild animals as diagnostic material for detection of rabies , 2020, The Journal of veterinary medical science.
[9] K. Shirato,et al. An ultra-rapid real-time RT-PCR method for detecting human orthopneumovirus using PCR1100. , 2020, Japanese journal of infectious diseases.
[10] E. Yap,et al. Rapid Direct Nucleic Acid Amplification Test without RNA Extraction for SARS-CoV-2 Using a Portable PCR Thermocycler , 2020, bioRxiv.
[11] S. Finke,et al. Further Evidence of Inadequate Quality in Lateral Flow Devices Commercially Offered for the Diagnosis of Rabies , 2020, Tropical medicine and infectious disease.
[12] M. Poljak,et al. Portable molecular diagnostic instruments in microbiology: current status. , 2020, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[13] K. Shirato,et al. An ultra-rapid real-time RT-PCR method for detecting Middle East respiratory syndrome coronavirus using a mobile PCR device, PCR1100. , 2019, Japanese journal of infectious diseases.
[14] F. Cliquet,et al. An inter-laboratory comparison to evaluate the technical performance of rabies diagnosis Lateral Flow Assays. , 2019, Journal of virological methods.
[15] S. Kong,et al. Development of a Direct-Reverse Transcription-Quantitative PCR (dirRT-qPCR) assay for Clinical Zika Diagnosis. , 2019, International journal of infectious diseases : IJID : official publication of the International Society for Infectious Diseases.
[16] I. Handel,et al. Evaluation of an Immunochromatographic Assay as a Canine Rabies Surveillance Tool in Goa, India , 2019, Viruses.
[17] K. Kain,et al. A Direct from Blood/Plasma Reverse Transcription-Polymerase Chain Reaction for Dengue Virus Detection in Point-of-Care Settings. , 2019, The American journal of tropical medicine and hygiene.
[18] Di Wu,et al. Battery Powered Portable Thermal Cycler for Continuous-Flow Polymerase Chain Reaction Diagnosis by Single Thermostatic Thermoelectric Cooler and Open-Loop Controller , 2019, Sensors.
[19] S. Inoue,et al. Statistical analysis of the usefulness of follicle-sinus complexes as a novel diagnostic material for canine rabies , 2018, Journal of Veterinary Medical Science.
[20] R. Franka,et al. Rabies diagnosis and surveillance in animals in the era of rabies elimination. , 2018, Revue scientifique et technique.
[21] Kendra N. Pesko,et al. Multi-site evaluation of the LN34 pan-lyssavirus real-time RT-PCR assay for post-mortem rabies diagnostics , 2018, PloS one.
[22] N. Hegde,et al. Application and Comparative Evaluation of Fluorescent Antibody, Immunohistochemistry and Reverse Transcription Polymerase Chain Reaction Tests for the Detection of Rabies Virus Antigen or Nucleic Acid in Brain Samples of Animals Suspected of Rabies in India , 2018, Veterinary sciences.
[23] A. Velasco-Villa,et al. A Pan-Lyssavirus Taqman Real-Time RT-PCR Assay for the Detection of Highly Variable Rabies virus and Other Lyssaviruses , 2017, PLoS neglected tropical diseases.
[24] S. Inoue,et al. Localization of the rabies virus antigen in Merkel cells in the follicle-sinus complexes of muzzle skins of rabid dogs. , 2016, Journal of virological methods.
[25] J. Zinsstag,et al. Validation of a Rapid Rabies Diagnostic Tool for Field Surveillance in Developing Countries , 2016, PLoS neglected tropical diseases.
[26] Yoshihisa Hagihara,et al. Development of an on-site rapid real-time polymerase chain reaction system and the characterization of suitable DNA polymerases for TaqMan probe technology , 2016, Analytical and Bioanalytical Chemistry.
[27] B. Hoffmann,et al. Evaluation of Six Commercially Available Rapid Immunochromatographic Tests for the Diagnosis of Rabies in Brain Material , 2016, PLoS neglected tropical diseases.
[28] Matthew L. Johnston,et al. Portable real-time PCR system using tablet-based fluorescence imaging , 2016, 2016 IEEE EMBS International Student Conference (ISC).
[29] P. Buchy,et al. Laboratory diagnostics in dog-mediated rabies: an overview of performance and a proposed strategy for various settings. , 2016, International journal of infectious diseases : IJID : official publication of the International Society for Infectious Diseases.
[30] Yonghao Zhang,et al. A review on continuous-flow microfluidic PCR in droplets: Advances, challenges and future. , 2016, Analytica chimica acta.
[31] L. Knopf,et al. Surveillance of Human Rabies by National Authorities – A Global Survey , 2015, Zoonoses and public health.
[32] R. Zadoks,et al. Direct RT-PCR from serum enables fast and cost-effective phylogenetic analysis of bovine viral diarrhoea virus. , 2013, Journal of virological methods.
[33] L. Nel. Discrepancies in Data Reporting for Rabies, Africa , 2013, Emerging infectious diseases.
[34] A. Nishizono,et al. Serial passage of a street rabies virus in mouse neuroblastoma cells resulted in attenuation: potential role of the additional N-glycosylation of a viral glycoprotein in the reduced pathogenicity of street rabies virus. , 2012, Virus research.
[35] A. Nishizono,et al. Evaluation of a monoclonal antibody-based rapid immunochromatographic test for direct detection of rabies virus in the brain of humans and animals. , 2012, The American journal of tropical medicine and hygiene.
[36] F. Cliquet,et al. Evaluation of a Rapid Immunochromatographic Diagnostic Test for the detection of rabies from brain material of European mammals. , 2012, Biologicals : journal of the International Association of Biological Standardization.
[37] M. Beer,et al. Improved Safety for Molecular Diagnosis of Classical Rabies Viruses by Use of a TaqMan Real-Time Reverse Transcription-PCR “Double Check” Strategy , 2010, Journal of Clinical Microbiology.
[38] S. Wakida,et al. ULTRA-FAST AND HIGHLY-EFFICIENT FLOW-THROUGH PCR MICROFLUIDICS USING VAPOR PRESSURE AND ITS APPLICATION TO RAPID FIELD DETECTION , 2010 .
[39] Kamruddin Ahmed,et al. A simple and rapid immunochromatographic test kit for rabies diagnosis , 2008, Microbiology and immunology.
[40] J. Oh,et al. Evaluation of a rapid immunodiagnostic test kit for rabies virus. , 2007, Journal of virological methods.
[41] Y. Stram,et al. Rabies virus detection by RT-PCR in decomposed naturally infected brains. , 2002, Veterinary microbiology.