Supplementary Partial European Search Report in European Application No. 14779852.4, mailed Feb. 11, 2016. |
Anderson, J.C. et al.(2008) “Thermally-Actuated Microfluidic Systems,” JALA 13:65-72. |
Beyor, N. et al. (2008) “Immunomagnetic bead-based cell concentration microdevice for dilute pathogen detection,” Biomed Microdevices 10:909-917. |
Cecchet, F. et al. (2006) “Redox Mediation at 11-Mercaptoundecanoic Acid Self-Assembled Monolayers on Gold,” J. Phys. Chem. B 110:2241-2248. |
Chen, Z. et al. (2005) “Thermally-actuated, phase change flow control for microfluidic systems,” Lab Chip 5:1277-1285. |
Cho, H. et al. (2007) “How the capillary burst microvalve works,” Journal of Colloid and Interface Science 306:379-385. |
Clinical IVD Products: Liat™ Analyzer; IQuum, Inc.: http://www.iquum.com/products/analyzer.shtml. Last accessed May 5, 2014. |
Fan, R. et al. (2008) “Integrated barcode chips for rapid, multiplexed analysis of proteins in microliter quantities of blood,” Nature Biotechnology 26(12):1373-1378. |
Ferguson, B.S. et al. (2009) “Integrated Microfluidic Electrochemical DNA Sensor,” Anal. Chem. 81:6503-6508. |
Henares, T.G. et al. (2007) “Integration of Multianalyte Sensing Functions on a Capillary-Assembled Microchip: Simultaneous Determination of Ion Concentrations and Enzymatic Activities by a “Drop-and-Sip” Technique,” Anal. Chem. 79:908-915. |
Jagannathan, H. et al. (2001) “Micro-Fluidic Channels with Integrated Ultrasonic Transducers,” IEEE Ultrasonics Symposium:859-862. |
Kaigala, G.V. et al. (2008) “Electrically controlled microvalves to integrate microchip polymerase chain reaction and capillary electrophoresis,” Lab Chip 8:1071-1078. |
Kim, D. et al. (2007) “A Bi-Polymer Micro One-Way Valve,” Sensors and Actuators A 136:426-433. |
Kinoshita, T. et al. (2007) “Functionalization of Magnetic Gold/Iron-Oxide Composite Nanoparticles with Oligonucleotides and Magnetic Separation of Specific Target,” J. of Magnetism and Magnetic Materials 311:255-258. |
Kwakye, S. et al. (2006) “Electrochemical Microfluidic Biosensor for Nucleic Acid Detection with Integrated Minipotentiostat,” Biosensors and Bioelectronics 21: 2217-2223. |
Laschi, S. et al. (2010) “A New Gravity-Driven Microfluidic-Based Electrochemical Assay Coupled to Magnetic Beads for Nucleic Acid Detection,” Electrophoresis 31: 3727-3736. |
Lawi, W. et al. (2009) “A Microfluidic Cartridge System for Multiplexed Clinical Analysis,” J. Assoc. Laboratory Automation 14(6):407-412. |
Lee, C.S. et al. (2001) “Microelectromagnets for the Control of Magnetic Nanoparticles,” Applied Physics Letters 79(20):3308-3310. |
Lillehoj, P.B. et al. (2010) “A Self-Pumping Lab-on-a-Chip for Rapid Detection of Botulinum Toxin,” Lab Chip 10: 2265-2270. |
Liu, R.H. et al. (2004) “Self-Contained, Fully Integrated Biochip for Sample Preparation, Polymerase Chain Reaction Amplification, and DNA Microarray Detection,” Analytical Chemistry 76(7):1824-1831. |
Liu, R.H. et al. (2004) “Single-use, Thermally Actuated Paraffin Valves for Microfluidic Applications,” Sensors and Actuators B 98:328-336. |
Lomas, N. (2014) “Cue Is a Connected Lab-In-A-Box for On-Demand Health Testing At Home,” TechCrunch. |
Marentis, T.C. et al. (2005) “Microfluidic Sonicator for Real-Time Disruption of Eukaryotic Cells and Bacterial Spores for DNA Analysis,” Ultrasound in Med. & Biol. 31(9):1265-1277. |
Mrksich, M. et al. (1997) “Using Self-Assembled Monolayers that Present Oligo(ethylene glycol) Groups to Control the Interactions of Proteins with Surfaces,” American Chemical Society Symposium Series 680:361-373. |
Prindle, D. (2014) “Sick? Need more vitamin D? Testosterone? Lick a stick and Cue fills you in,” www.digitaltrends.com. |
Rida, A. et al. (2004) “Manipulation of Self-Assembled Structures of Magnetic Beads for Microfluidic Mixing and Assaying,” Analytical Chemistry 76(21):6239-6246. |
Roderee, K. et al. (2011) “DNA Hybridization Enhancement Using Piezoelectric Microagitation through a Liquid Coupling Medium,” Lab Chip, doi:10.1039/C0LC00419G. |
Sharma, V. et al. (2007) “Surface Characterization of Plasma-Treated and PEG-Grafted PDMS for Micro Fluidic Applications,” Vacuum 81:1094-1100. |
Shin, Y.S. et al. (2010) “Chemistries for Patterning Robust DNA MicroBarcodes Enable Multiplex Assays of Cytoplasm Proteins from Single Cancer Cells,” ChemPhysChem 11:3063-3069. |
Simplexa™ Flu A/B & RSV Direct Kit; Focus Diagnostics, Inc.: https://www.focusdx.com/product/MOL2650. Last accessed May 5, 2014. |
Taylor, M.T. et al. (2001) “Lysing Bacterial Spores by Sonication through a Flexible Interface in a Microfluidic System,” Analytical Chemistry 73(3):492-496. |
The FilmArray System; Biofire Diagnostics, Inc.: http://filmarray.com/the-panels/. Last accessed May 5, 2014. |
Wang, J. (2002) “Portable Electrochemical Systems,” Trends in Analytical Chemistry 21(4):226-232. |
Wang, J. et al. (2005) “Self-Actuated, Thermo-Responsive Hydrogel Valves for Lab on a Chip,” Biomedical Microdevices 7(4):313-322. |
Wang, J. et al. (2010) “A Self-Powered, One-Step Chip for Rapid, Quantitative and Multiplexed Detection of Proteins from Pinpricks of Whole Blood,” Lab Chip 10:3157-3162. |
Wu, C. et al. (2011) “Ultrasonication on a Microfluidic Chip to Lyse Single and Multiple Pseudo-Nitzschia for Marine Biotoxin Analysis,” Biotechnology Journal 6:150-155. |
Xpert® Flu; Cepheid: http://www.cepheid.com/us/cepheid-solutions/clinical-ivd-tests/critical-infectious-diseases/xpert-flu. Last accessed May 5, 2014. |
Yoshioka, K. et al. (2010) “Suppression of Non-specific Adsorption Using Densified Tri(ethylene glycol) Alkanethiols: Monolayer Characteristics Evaluated by Electrochemical Measurements,” Analytical Sciences 26:33-37. |
Ziegler, J. et al. (2008) “High-Performance Immunoassays Based on Through-Stencil Patterned Antibodies and Capillary Systems,” Analytical Chemistry 80(5):1763-1769. |
Non-Final Office Action in U.S. Appl. No. 14/205,146, mailed Sep. 26, 2014. |
Final Office Action in U.S. Appl. No. 14/205,146, mailed Apr. 3, 2015. |
Notice of Allowance in U.S. Appl. No. 14/205,146, mailed Oct. 22, 2015. |
Non-Final Office Action in U.S. Appl. No. 14/479,149, mailed Jan. 13, 2015. |
Notice of Allowance in U.S. Appl. No. 14/479,149, mailed Mar. 6, 2015. |
Non-Final Office Action in U.S. Appl. No. 14/543,842, mailed Feb. 12, 2015. |
Notice of Allowance in U.S. Appl. No. 14/543,842, mailed Apr. 24, 2015. |
Notice of Allowance in U.S. Appl. No. 14/599,365, mailed May 1, 2015. |
Restriction Requirement in U.S. Appl. No. 14/599,369, mailed May 7, 2015. |
Non-Final Office Action in U.S. Appl. No. 14/599,369, mailed Aug. 18, 2015. |
Final Office Action in U.S. Appl. No. 14/599,369, mailed Jan. 4, 2016. |
Non-Final Office Action in U.S. Appl. No. 14/599,372, mailed Mar. 27, 2015. |
Notice of Allowance in U.S. Appl. No. 14/599,372, mailed Sep. 14, 2015. |
Non-Final Office Action in U.S. Appl. No. 14/599,375, mailed Jun. 19, 2015. |
Notice of Allowance in U.S. Appl. No. 14/599,375, mailed Aug. 26, 2015. |
Non-Final Office Action in U.S. Appl. No. 14/954,817, mailed Feb. 2, 2016. |
Office Action in Design U.S. Appl. No. 29/490,660, mailed Jun. 25, 2014. |
Restriction Requirement in Design U.S. Appl. No. 29/490,660, mailed Jun. 2, 2015. |
Notice of Allowance in Design U.S. Appl. No. 29/490,660, mailed Aug. 20, 2015. |
International Search Report and Written Opinion (ISA/EP) for International Application No. PCT/US2015/049439, mailed Dec. 7, 2015. |
International Search Report and Written Opinion (ISA/KR) for International Application No. PCT/US2014/023821, mailed Jul. 7, 2014. |
Non-Final Office Action in U.S. Appl. No. 14/205,146, mailed Apr. 6, 2016. |
Notice of Allowance in U.S. Appl. No. 14/599,369, mailed Apr. 22, 2016. |
Corrected Notice of Allowability in U.S. Appl. No. 14/599,369, mailed May 11, 2016. |
Final Office Action in U.S. Appl. No. 14/954,817, mailed May 23, 2016. |
Extended European Search Report in European Patent Application No. 14779852.4, mailed Jul. 20, 2016. |