Microfluidic Chip for Molecular Amplification of Influenza A RNA in Human Respiratory Specimens

A rapid, low cost, accurate point-of-care (POC) device to detect influenza virus is needed for effective treatment and control of both seasonal and pandemic strains. We developed a single-use microfluidic chip that integrates solid phase extraction (SPE) and molecular amplification via a reverse transcription polymerase chain reaction (RT-PCR) to amplify influenza virus type A RNA. We demonstrated the ability of the chip to amplify influenza A RNA in human nasopharyngeal aspirate (NPA) and nasopharyngeal swab (NPS) specimens collected at two clinical sites from 2008–2010. The microfluidic test was dramatically more sensitive than two currently used rapid immunoassays and had high specificity that was essentially equivalent to the rapid assays and direct fluorescent antigen (DFA) testing. We report 96% (CI 89%,99%) sensitivity and 100% (CI 95%,100%) specificity compared to conventional (bench top) RT-PCR based on the testing of n = 146 specimens (positive predictive value = 100%(CI 94%,100%) and negative predictive value = 96%(CI 88%,98%)). These results compare well with DFA performed on samples taken during the same time period (98% (CI 91%,100%) sensitivity and 96%(CI 86%,99%) specificity compared to our gold standard testing). Rapid immunoassay tests on samples taken during the enrollment period were less reliable (49%(CI 38%,61%) sensitivity and 98%(CI 98%,100%) specificity). The microfluidic test extracted and amplified influenza A RNA directly from clinical specimens with viral loads down to 103 copies/ml in 3 h or less. The new test represents a major improvement over viral culture in terms of turn around time, over rapid immunoassay tests in terms of sensitivity, and over bench top RT-PCR and DFA in terms of ease of use and portability.

[1]  Bruce Gale,et al.  Continuous-flow thermal gradient PCR , 2008, Biomedical microdevices.

[2]  J. Kirby,et al.  Ruling out novel H1N1 influenza virus infection with direct fluorescent antigen testing. , 2009, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.

[3]  A. Baker,et al.  Improved microRNA quantification in total RNA from clinical samples. , 2010, Methods.

[4]  Rodrigo Lopez,et al.  Clustal W and Clustal X version 2.0 , 2007, Bioinform..

[5]  Fang Wang,et al.  Performance of nanoliter-sized droplet-based microfluidic PCR , 2009, Biomedical microdevices.

[6]  M. A. Northrup,et al.  DNA Amplification with a Microfabricated Reaction Chamber , 1993 .

[7]  C. Klapperich,et al.  Plastic microfluidic chip for continuous-flow polymerase chain reaction: simulations and experiments. , 2011, Biotechnology journal.

[8]  J. Farrar,et al.  Influenza A viral loads in respiratory samples collected from patients infected with pandemic H1N1, seasonal H1N1 and H3N2 viruses , 2010, Virology Journal.

[9]  R. Selvarangan,et al.  Evaluation of Three Influenza A and B Real-Time Reverse Transcription-PCR Assays and a New 2009 H1N1 Assay for Detection of Influenza Viruses , 2010, Journal of Clinical Microbiology.

[10]  S. S. Sherman,et al.  Rapid-test sensitivity for novel swine-origin influenza A (H1N1) virus in humans. , 2009, The New England journal of medicine.

[11]  C. Klapperich,et al.  Cell lysis and DNA extraction of gram-positive and gram-negative bacteria from whole blood in a disposable microfluidic chip. , 2009, Lab on a chip.

[12]  Guojun Zhang,et al.  Multiplexed detection and differentiation of the DNA strains for influenza A (H1N1 2009) using a silicon-based microfluidic system. , 2011, Biosensors & bioelectronics.

[13]  D. Henley,et al.  Real-Time Detection of Influenza A, Influenza B, and Respiratory Syncytial Virus A and B in Respiratory Specimens by Use of Nanoparticle Probes , 2010, Journal of Clinical Microbiology.

[14]  Yonghao Zhang,et al.  Microfluidic DNA amplification--a review. , 2009, Analytica chimica acta.

[15]  A Manz,et al.  Chemical amplification: continuous-flow PCR on a chip. , 1998, Science.

[16]  Michael G. Roper,et al.  A fully integrated microfluidic genetic analysis system with sample-in–answer-out capability , 2006, Proceedings of the National Academy of Sciences.

[17]  B. Patterson,et al.  Diagnostic tests for influenza and other respiratory viruses: determining performance specifications based on clinical setting , 2010, Journal of infection and chemotherapy : official journal of the Japan Society of Chemotherapy.

[18]  Minqiang Bu,et al.  The SmartBioPhone, a point of care vision under development through two European projects: OPTOLABCARD and LABONFOIL. , 2009, Lab on a chip.

[19]  A. Manz,et al.  Miniaturized total chemical analysis systems: A novel concept for chemical sensing , 1990 .

[20]  O. Ruuskanen,et al.  Report of a Workshop on Respiratory Viral Infections: Epidemiology, Diagnosis, Treatment, and Prevention , 1993, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.

[21]  Daniel Malamud,et al.  A Microfluidic System for Saliva‐Based Detection of Infectious Diseases , 2007, Annals of the New York Academy of Sciences.

[22]  Gwo-Bin Lee,et al.  Automatic bio-sampling chips integrated with micro-pumps and micro-valves for disease detection. , 2005, Biosensors & bioelectronics.

[23]  Catherine M. Klapperich,et al.  Microfluidics-based extraction of viral RNA from infected mammalian cells for disposable molecular diagnostics , 2008 .

[24]  C. Klapperich,et al.  Mechanical and chemical analysis of plasma and ultraviolet-ozone surface treatments for thermal bonding of polymeric microfluidic devices. , 2007, Lab on a chip.

[25]  Aeron C. Hurt,et al.  Performance of influenza rapid point‐of‐care tests in the detection of swine lineage A(H1N1) influenza viruses , 2009, Influenza and other respiratory viruses.

[26]  C. Klapperich,et al.  Thermoplastic microfluidic device for on-chip purification of nucleic acids for disposable diagnostics. , 2006, Analytical chemistry.

[27]  Keiji Fukuda,et al.  Influenza-associated hospitalizations in the United States. , 2004, JAMA.

[28]  Y. Guan,et al.  Analytical sensitivity of rapid influenza antigen detection tests for swine-origin influenza virus (H1N1). , 2009, Journal of clinical virology : the official publication of the Pan American Society for Clinical Virology.

[29]  Tasuku Yotoriyama,et al.  Point-of-care testing system enabling 30 min detection of influenza genes. , 2011, Lab on a chip.

[30]  M. Hawkes,et al.  Sensitivity of Rapid Influenza Diagnostic Testing for Swine-Origin 2009 A (H1N1) Influenza Virus in Children , 2010, Pediatrics.

[31]  Aaron Rulison,et al.  Nucleic acid amplification of individual molecules in a microfluidic device. , 2008, Analytical chemistry.

[32]  Keiji Fukuda,et al.  Mortality associated with influenza and respiratory syncytial virus in the United States. , 2003, JAMA.

[33]  P. Palese,et al.  Influenza: old and new threats , 2004, Nature Medicine.

[34]  James P Landers,et al.  An integrated, valveless system for microfluidic purification and reverse transcription-PCR amplification of RNA for detection of infectious agents. , 2011, Lab on a chip.

[35]  Numrin Thaitrong,et al.  Integrated microfluidic bioprocessor for single-cell gene expression analysis , 2008, Proceedings of the National Academy of Sciences.

[36]  D. Skowronski,et al.  Field Performance of a Rapid Diagnostic Test for Influenza in an Ambulatory Setting , 2009, Journal of Clinical Microbiology.

[37]  Larry J Kricka,et al.  Surface Effects on PCR Reactions in Multichip Microfluidic Platforms , 2004, Biomedical microdevices.

[38]  Da Xing,et al.  Single-molecule DNA amplification and analysis using microfluidics. , 2010, Chemical reviews.

[39]  J. Embree,et al.  Comparison of nasopharyngeal aspirate and nasopharyngeal swab specimens for respiratory syncytial virus diagnosis by cell culture, indirect immunofluorescence assay, and enzyme-linked immunosorbent assay , 1987, Journal of clinical microbiology.

[40]  G. Hayden,et al.  Rapid Diagnostic Testing for Influenza , 2007 .

[41]  W. Al-Soud,et al.  Purification and Characterization of PCR-Inhibitory Components in Blood Cells , 2001, Journal of Clinical Microbiology.

[42]  M. Haslina,et al.  Preliminary evaluation of various rapid influenza diagnostic test methods for the detection of the novel influenza A (H1N1) in Universiti Kebangsaan Malaysia Medical Centre. , 2010, The Medical journal of Malaysia.

[43]  T. Wichelhaus,et al.  Removal of PCR Inhibitors by Silica Membranes: Evaluating the Amplicor Mycobacterium tuberculosisKit , 2001, Journal of Clinical Microbiology.

[44]  W. Liu,et al.  Clinical and immunological characteristics of patients with 2009 pandemic influenza A (H1N1) virus infection after vaccination. , 2010, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.

[45]  Da Xing,et al.  Miniaturized PCR chips for nucleic acid amplification and analysis: latest advances and future trends , 2007, Nucleic acids research.

[46]  Ren Sun,et al.  Genetic analysis of H1N1 influenza virus from throat swab samples in a microfluidic system for point-of-care diagnostics. , 2011, Journal of the American Chemical Society.

[47]  Tiechuan Zuo,et al.  Micro Flow-through PCR in a PMMA Chip Fabricated by KrF Excimer Laser , 2005, Biomedical microdevices.

[48]  J. M. Crawford,et al.  Evaluation of multiple test methods for the detection of the novel 2009 influenza A (H1N1) during the New York City outbreak , 2009, Journal of Clinical Virology.

[49]  R. Mathies,et al.  Design and operation of a portable scanner for high performance microchip capillary array electrophoresis. , 2010, The Review of scientific instruments.

[50]  Andre Sharon,et al.  Low cost and manufacturable complete microTAS for detecting bacteria. , 2009, Lab on a chip.

[51]  Gwo-Bin Lee,et al.  Integrated reverse transcription polymerase chain reaction systems for virus detection. , 2007, Biosensors & bioelectronics.

[52]  T. Tatusova,et al.  The Influenza Virus Resource at the National Center for Biotechnology Information , 2007, Journal of Virology.