Navigating the Pandemic Response Life Cycle: Molecular Diagnostics and Immunoassays in the Context of COVID-19 Management
暂无分享,去创建一个
Mingxia Yu | Junqiu Yue | Baback Gharizadeh | Daru Lu | D. Lu | B. Gharizadeh | Mingxia Yu | Yue Liu | Meiying Zhou | Jingwei Zhang | Junqiu Yue | Jingwei Zhang | Mei-Fen Zhou | Yue Liu
[1] Sanjay Tyagi,et al. The PCR Revolution : Basic Technologies and Applications , 2012 .
[2] Shibo Jiang,et al. The First Disease X is Caused by a Highly Transmissible Acute Respiratory Syndrome Coronavirus , 2020, Virologica Sinica.
[3] Georg Schett,et al. COVID-19: risk for cytokine targeting in chronic inflammatory diseases? , 2020, Nature Reviews Immunology.
[4] D. Garling,et al. Minimizing the time required for DNA amplification by efficient heat transfer to small samples. , 1990, Analytical biochemistry.
[5] S. Nundy,et al. Self-Service Diagnosis of COVID-19-Ready for Prime Time? , 2020, JAMA health forum.
[6] LAMP-Seq: Population-Scale COVID-19 Diagnostics Using a Compressed Barcode Space , 2020 .
[7] J. Quackenbush,et al. The kinetic requirements of extreme qPCR , 2019, Biomolecular detection and quantification.
[8] Malik Peiris,et al. Molecular Diagnosis of a Novel Coronavirus (2019-nCoV) Causing an Outbreak of Pneumonia , 2020, Clinical chemistry.
[9] N. Hanson,et al. Rapid Screening of Transformants Using the Streck Philisa® Thermal Cycler , 2013 .
[10] Olaf Piepenburg,et al. DNA Detection Using Recombination Proteins , 2006, PLoS biology.
[11] Wasun Chantratita,et al. Exploring the limits of ultrafast polymerase chain reaction using liquid for thermal heat exchange: A proof of principle. , 2010, Applied physics letters.
[12] Zhigang Wu,et al. Patient-derived mutations impact pathogenicity of SARS-CoV-2 , 2020, medRxiv.
[13] Kyle W. Hukari,et al. Microfluidic purification and preconcentration of mRNA by flow-through polymeric monolith. , 2007, Analytical chemistry.
[14] Thomas C Evans,et al. Visual detection of isothermal nucleic acid amplification using pH-sensitive dyes. , 2015, BioTechniques.
[15] J P Landers,et al. Polymerase chain reaction in polymeric microchips: DNA amplification in less than 240 seconds. , 2001, Analytical biochemistry.
[16] Hyonchol Kim,et al. Homogenous measurement during a circulation-water-based ultrahigh-speed polymerase chain reaction and melting curve analysis device , 2014 .
[17] P. Vollmar,et al. Virological assessment of hospitalized patients with COVID-2019 , 2020, Nature.
[18] E. Holmes,et al. A new coronavirus associated with human respiratory disease in China , 2020, Nature.
[19] Jennifer A. Doudna,et al. CRISPR-Cas12a target binding unleashes indiscriminate single-stranded DNase activity , 2018, Science.
[20] F. Qiu,et al. [Laboratory testing techniques for SARS-CoV-2]. , 2020, Nan fang yi ke da xue xue bao = Journal of Southern Medical University.
[21] K. Eilbeck,et al. Unbiased Detection of Respiratory Viruses by Use of RNA Sequencing-Based Metagenomics: a Systematic Comparison to a Commercial PCR Panel , 2016, Journal of Clinical Microbiology.
[22] Kristin B Cederquist,et al. An ultrasensitive universal detector based on neutralizer displacement. , 2012, Nature chemistry.
[23] R. Charrel,et al. Laboratory readiness and response for novel coronavirus (2019-nCoV) in expert laboratories in 30 EU/EEA countries, January 2020 , 2020, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[24] Minli You,et al. Plasmon-Driven Ultrafast Photonic PCR. , 2019, Trends in biochemical sciences.
[25] Bernhard Liebl,et al. Rapid establishment of laboratory diagnostics for the novel coronavirus SARS-CoV-2 in Bavaria, Germany, February 2020 , 2020, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[26] Guixia Yu,et al. Rapid Detection of 2019 Novel Coronavirus SARS-CoV-2 Using a CRISPR-based DETECTR Lateral Flow Assay , 2020, medRxiv.
[27] Xiong Ding,et al. All-in-One Dual CRISPR-Cas12a (AIOD-CRISPR) Assay: A Case for Rapid, Ultrasensitive and Visual Detection of Novel Coronavirus SARS-CoV-2 and HIV virus , 2020, bioRxiv.
[28] J. Compton,et al. Nucleic acid sequence-based amplification , 1991, Nature.
[29] Susanne Pfefferle,et al. Evaluation of a quantitative RT-PCR assay for the detection of the emerging coronavirus SARS-CoV-2 using a high throughput system , 2020, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[30] Quanyi Wang,et al. Viral load of SARS-CoV-2 in clinical samples , 2020, The Lancet Infectious Diseases.
[31] D. Normile. Airport screening is largely futile, research shows. , 2020, Science.
[32] B. Pinsky,et al. Sample Pooling as a Strategy to Detect Community Transmission of SARS-CoV-2. , 2020, JAMA.
[33] U J Balis,et al. The LightCycler: a microvolume multisample fluorimeter with rapid temperature control. , 1997, BioTechniques.
[34] Jungkyu Kim,et al. Microfluidic sample preparation: cell lysis and nucleic acid purification. , 2009, Integrative biology : quantitative biosciences from nano to macro.
[35] T. G. Drummond,et al. Electrochemical DNA sensors , 2003, Nature Biotechnology.
[36] Steven A Soper,et al. 96-well polycarbonate-based microfluidic titer plate for high-throughput purification of DNA and RNA. , 2008, Analytical chemistry.
[37] Pin-Chuan Chen,et al. Rapid PCR in a continuous flow device. , 2004, Lab on a chip.
[38] Vijay Srinivasan,et al. Development of a digital microfluidic platform for point of care testing. , 2008, Lab on a chip.
[39] Jon Cohen. Unprecedented nationwide blood studies seek to track U.S. coronavirus spread , 2020 .
[40] Juan G Santiago,et al. Bacterial RNA extraction and purification from whole human blood using isotachophoresis. , 2012, Analytical chemistry.
[41] J. Werner,et al. Copyright � 1995, American Society for Microbiology Inhibition of PCR by Aqueous and Vitreous Fluids , 1994 .
[42] Minli You,et al. Ultrafast Photonic PCR Based on Photothermal Nanomaterials. , 2020, Trends in biotechnology.
[43] T. Notomi,et al. Loop-mediated isothermal amplification of DNA. , 2000, Nucleic acids research.
[44] Harvey Friedman,et al. Smart Cup: A Minimally-Instrumented, Smartphone-Based Point-of-Care Molecular Diagnostic Device. , 2016, Sensors and actuators. B, Chemical.
[45] A. Marx,et al. Identification of Thermus aquaticus DNA polymerase variants with increased mismatch discrimination and reverse transcriptase activity from a smart enzyme mutant library , 2019, Scientific Reports.
[46] K. A. Wolfe,et al. Microchip-based purification of DNA from biological samples. , 2003, Analytical chemistry.
[47] Mehmet Toner,et al. Advancing the speed, sensitivity and accuracy of biomolecular detection using multi-length-scale engineering. , 2014, Nature nanotechnology.
[48] Annelise E Barron,et al. Purification of HIV RNA from serum using a polymer capture matrix in a microfluidic device. , 2011, Analytical chemistry.
[49] A. Fire,et al. Rolling replication of short DNA circles. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[50] Kenneth A. Mwawasi,et al. Development of a Sensitive Loop-Mediated Isothermal Amplification Assay That Provides Specimen-to-Result Diagnosis of Respiratory Syncytial Virus Infection in 30 Minutes , 2013, Journal of Clinical Microbiology.
[51] W. Al-Soud,et al. Purification and Characterization of PCR-Inhibitory Components in Blood Cells , 2001, Journal of Clinical Microbiology.
[52] Vincent Gau,et al. Matrix Effects—A Challenge toward Automation of Molecular Analysis , 2010 .
[53] H. Okano,et al. High sensitive RNA detection by one-step RT-PCR using the genetically engineered variant of DNA polymerase with reverse transcriptase activity from hyperthermophilies. , 2017, Journal of bioscience and bioengineering.
[54] C. Chiu. Cutting-Edge Infectious Disease Diagnostics with CRISPR , 2018, Cell Host & Microbe.
[55] D. Shank,et al. Isothermal in vitro amplification of DNA by a restriction enzyme/DNA polymerase system. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[56] Vitor B. Pinheiro,et al. XNA Synthesis and Reverse Transcription by Engineered Thermophilic Polymerases , 2018, Current Protocols in Chemical Biology.
[57] P. Neužil,et al. Ultra fast miniaturized real-time PCR: 40 cycles in less than six minutes , 2006, Nucleic acids research.
[58] Robert Schlaberg,et al. Validation of Metagenomic Next-Generation Sequencing Tests for Universal Pathogen Detection. , 2017, Archives of pathology & laboratory medicine.
[59] K. Mullis,et al. Primer-directed enzymatic amplification of DNA with a thermostable DNA polymerase. , 1988, Science.
[60] K. Ryan,et al. Rolling-Circle RNA Synthesis: Circular Oligonucleotides as Efficient Substrates for T7 RNA Polymerase. , 1995, Journal of the American Chemical Society.
[61] P. Winichakoon,et al. Negative Nasopharyngeal and Oropharyngeal Swabs Do Not Rule Out COVID-19 , 2020, Journal of Clinical Microbiology.
[62] Raymond Mariella,et al. Sample preparation: the weak link in microfluidics-based biodetection , 2008, Biomedical microdevices.
[63] V. Demidov,et al. Rolling-circle amplification in DNA diagnostics: the power of simplicity , 2002, Expert review of molecular diagnostics.
[64] Anne Kopf-Sill,et al. Novel isothermal, linear nucleic acid amplification systems for highly multiplexed applications. , 2005, Clinical chemistry.
[65] Vincent Studer,et al. A nanoliter-scale nucleic acid processor with parallel architecture , 2004, Nature Biotechnology.
[66] Nichollas E. Scott,et al. Direct RNA sequencing and early evolution of SARS-CoV-2 , 2020, bioRxiv.
[67] Yasuyoshi Mori,et al. Loop-mediated isothermal amplification (LAMP) of gene sequences and simple visual detection of products , 2008, Nature Protocols.
[68] Thomas F. Smith,et al. Effectiveness of Patient-Collected Swabs for Influenza Testing , 2012, Mayo Clinic Proceedings.
[69] Christina D Diaz,et al. Pulmonary Illness Related to E-Cigarette Use. , 2019, The New England journal of medicine.
[70] J. Xiang,et al. Evaluation of Enzyme-Linked Immunoassay and Colloidal Gold- Immunochromatographic Assay Kit for Detection of Novel Coronavirus (SARS-Cov-2) Causing an Outbreak of Pneumonia (COVID-19) , 2020, medRxiv.
[71] Henry A. Erlich,et al. The polymerase chain reaction. , 1989, Trends in genetics : TIG.
[72] Jonathan R. McDaniel,et al. Identification of tumor-reactive B cells and systemic IgG in breast cancer based on clonal frequency in the sentinel lymph node , 2017, bioRxiv.
[73] Yan Bai,et al. Presumed Asymptomatic Carrier Transmission of COVID-19. , 2020, JAMA.
[74] D. Richman,et al. Isothermal, in vitro amplification of nucleic acids by a multienzyme reaction modeled after retroviral replication. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[75] M. Cohn,et al. The Mechanism of the Alkaline Hydrolysis of Ribonucleic Acids , 1954 .
[76] T. Dellit,et al. Impact of rapid influenza PCR testing on hospitalization and antiviral use: A retrospective cohort study , 2015, Journal of medical virology.
[77] Qiu-Xiang Cheng,et al. CRISPR-Cas12a-assisted nucleic acid detection , 2018, Cell Discovery.
[78] Shana O Kelley,et al. Ultrasensitive electrocatalytic DNA detection at two- and three-dimensional nanoelectrodes. , 2004, Journal of the American Chemical Society.
[79] J P Landers,et al. Noncontact infrared-mediated thermocycling for effective polymerase chain reaction amplification of DNA in nanoliter volumes. , 2000, Analytical chemistry.
[80] B. Singer,et al. Impact of international travel and border control measures on the global spread of the novel 2019 coronavirus outbreak , 2020, Proceedings of the National Academy of Sciences.
[81] C. Wittwer,et al. Influence of PCR reagents on DNA polymerase extension rates measured on real-time PCR instruments. , 2014, Clinical chemistry.
[82] Christine A. Hara,et al. Under-three minute PCR: probing the limits of fast amplification. , 2011, The Analyst.
[83] Huanhuan Gao,et al. Proteomic and Metabolomic Characterization of COVID-19 Patient Sera , 2020, Cell.
[84] Dylan H. Morris,et al. Aerosol and Surface Stability of SARS-CoV-2 as Compared with SARS-CoV-1 , 2020, The New England journal of medicine.
[85] Kei Iida,et al. Next-generation sequencing-based analysis of reverse transcriptase fidelity. , 2017, Biochemical and biophysical research communications.
[86] Jian Wu,et al. A fast and visual method for duplex shrimp pathogens detection with high specificity using rapid PCR and molecular beacon. , 2018, Analytica chimica acta.
[87] Jing Jiang,et al. Cellphone based Portable Bacteria Pre-Concentrating microfluidic Sensor and Impedance Sensing System , 2013, 1312.0329.
[88] Jae Hyeon Park,et al. Nanoplasmonic sensors for detecting circulating cancer biomarkers☆ , 2017, Advanced drug delivery reviews.
[89] Xin Li,et al. Rapid colorimetric detection of COVID-19 coronavirus using a reverse tran-scriptional loop-mediated isothermal amplification (RT-LAMP) diagnostic plat-form: iLACO , 2020, medRxiv.
[90] David Issadore,et al. Ultra-high throughput detection (1 million droplets per second) of fluorescent droplets using a cell phone camera and time domain encoded optofluidics. , 2017, Lab on a chip.
[91] Oon Tek Ng,et al. Air, Surface Environmental, and Personal Protective Equipment Contamination by Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) From a Symptomatic Patient. , 2020, JAMA.
[92] J. Smith,et al. The structure of ribonucleic acid. I. Cyclic nucleotides produced by ribonuclease and by alkaline hydrolysis. , 1952, The Biochemical journal.
[93] Shawn Rynearson,et al. Taxonomer: an interactive metagenomics analysis portal for universal pathogen detection and host mRNA expression profiling , 2016, Genome Biology.
[94] G. Walker,et al. Strand displacement amplification--an isothermal, in vitro DNA amplification technique. , 1992, Nucleic acids research.
[95] Y. Lo,et al. Stability of endogenous and added RNA in blood specimens, serum, and plasma. , 2002, Clinical chemistry.
[96] Juan G Santiago,et al. Purification of nucleic acids using isotachophoresis. , 2014, Journal of chromatography. A.
[97] M. Kunitski,et al. Double-slit photoelectron interference in strong-field ionization of the neon dimer , 2018, Nature Communications.
[98] S. Wakida,et al. A Practical Liquid Plug Flow-through Polymerase Chain-Reaction System Based on a Heat-Resistant Resin Chip , 2011, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[99] R. Fair,et al. Electrowetting-based actuation of liquid droplets for microfluidic applications , 2000 .
[100] Aviv Regev,et al. Nucleic acid detection with CRISPR-Cas13a/C2c2 , 2017, Science.
[101] C. Wittwer. Portable Nanopore Sequencing for Viral Surveillance. , 2016, Clinical chemistry.
[102] Stefano Volpi,et al. On the Alert for Cytokine Storm: Immunopathology in COVID‐19 , 2020, Arthritis & rheumatology.
[103] L. Blanco,et al. Engineering human PrimPol into an efficient RNA-dependent-DNA primase/polymerase , 2017, Nucleic acids research.
[104] James J. Collins,et al. Multiplexed and portable nucleic acid detection platform with Cas13, Cas12a, and Csm6 , 2018, Science.
[105] James P Landers,et al. Advances in polymerase chain reaction on microfluidic chips. , 2005, Analytical chemistry.
[106] Jerome P Ferrance,et al. A simple, valveless microfluidic sample preparation device for extraction and amplification of DNA from nanoliter-volume samples. , 2006, Analytical chemistry.
[107] W Hampton Henley,et al. A microfluidic chip integrating DNA extraction and real-time PCR for the detection of bacteria in saliva. , 2013, Lab on a chip.
[108] James P Landers,et al. Microchip-based solid-phase purification of RNA from biological samples. , 2008, Analytical chemistry.
[109] Xingxia Yu,et al. COVID‐19 transmission through asymptomatic carriers is a challenge to containment , 2020, Influenza and other respiratory viruses.
[110] A. Ellington,et al. Evolution of a Thermophilic Strand-Displacing Polymerase Using High-Temperature Isothermal Compartmentalized Self-Replication. , 2018, Biochemistry.
[111] N. Tanner,et al. Rapid Molecular Detection of SARS-CoV-2 (COVID-19) Virus RNA Using Colorimetric LAMP , 2020, medRxiv.
[112] Luke P. Lee,et al. Ultrafast photonic PCR , 2015, Light: Science & Applications.
[113] Daniel S. Chertow,et al. Next-generation diagnostics with CRISPR , 2018, Science.
[114] K. Hanson,et al. Fatal Zika Virus Infection with Secondary Nonsexual Transmission. , 2016, The New England journal of medicine.
[115] Lin Wang,et al. Advances in Smartphone-Based Point-of-Care Diagnostics , 2015, Proceedings of the IEEE.
[116] J. Chaput,et al. Engineered Polymerases with Altered Substrate Specificity: Expression and Purification , 2017, Current protocols in nucleic acid chemistry.
[117] R. Eggo,et al. Effectiveness of airport screening at detecting travellers infected with novel coronavirus (2019-nCoV) , 2020, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[118] J. Robson,et al. Self-collection: An appropriate alternative during the SARS-CoV-2 pandemic , 2020, Journal of Clinical Virology.
[119] Qiu-Xiang Cheng,et al. CRISPR-Cas12a has both cis- and trans-cleavage activities on single-stranded DNA , 2018, Cell Research.
[120] Jinzhao Song,et al. Smartphone-Based Mobile Detection Platform for Molecular Diagnostics and Spatiotemporal Disease Mapping. , 2018, Analytical chemistry.
[121] Min Kang,et al. SARS-CoV-2 Viral Load in Upper Respiratory Specimens of Infected Patients , 2020, The New England journal of medicine.
[122] Shana O Kelley,et al. Ultrasensitive electrochemical biomolecular detection using nanostructured microelectrodes. , 2014, Accounts of chemical research.
[123] R. Heller,et al. Engineering of a thermostable viral polymerase using metagenome-derived diversity for highly sensitive and specific RT-PCR , 2019, Nucleic acids research.
[124] T. Klar,et al. Gold nanostoves for microsecond DNA melting analysis. , 2008, Nano letters.
[125] Mandeep Sandhu,et al. Detection of unamplified target genes via CRISPR–Cas9 immobilized on a graphene field-effect transistor , 2019, Nature Biomedical Engineering.
[126] A Manz,et al. Chemical amplification: continuous-flow PCR on a chip. , 1998, Science.
[127] Dongyu Liu,et al. Rolling Circle DNA Synthesis: Small Circular Oligonucleotides as Efficient Templates for DNA Polymerases. , 1996, Journal of the American Chemical Society.
[128] Baoying Huang,et al. Susceptibility of ferrets, cats, dogs, and other domesticated animals to SARS–coronavirus 2 , 2020, Science.
[129] Jean Berthier,et al. Microdrops and digital microfluidics , 2008 .
[130] Carl T Wittwer,et al. Extreme PCR: efficient and specific DNA amplification in 15-60 seconds. , 2015, Clinical chemistry.
[131] Victor M Corman,et al. Detection of 2019 novel coronavirus (2019-nCoV) by real-time RT-PCR , 2020, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[132] S. Whitney. Analysis of rapid thermocycling for the polymerase chain reaction , 2004 .
[133] H. Okano,et al. Accurate fidelity analysis of the reverse transcriptase by a modified next-generation sequencing. , 2018, Enzyme and microbial technology.
[134] F. Wang,et al. Four DNA extraction methods used in loop-mediated isothermal amplification for rapid adenovirus detection. , 2014, Journal of Virological Methods.
[135] M. Rieder,et al. LB21. The Seattle Flu Study: A Community-Based Study of Influenza , 2019, Open Forum Infectious Diseases.
[136] Jeong Eun Sim,et al. High‐Throughput STR Analysis for DNA Database Using Direct PCR , , 2013, Journal of forensic sciences.
[137] Hiroshi Kimura,et al. Rapid detection of Epstein-Barr virus DNA by loop-mediated isothermal amplification method. , 2006, Journal of clinical virology : the official publication of the Pan American Society for Clinical Virology.
[138] H. John Crabtree,et al. Microfabricated device for DNA and RNA amplification by continuous-flow polymerase chain reaction and reverse transcription-polymerase chain reaction with cycle number selection. , 2003, Analytical chemistry.
[139] Jerome P Ferrance,et al. Chitosan-coated silica as a solid phase for RNA purification in a microfluidic device. , 2009, Analytical chemistry.
[140] D J Harrison,et al. mRNA isolation in a microfluidic device for eventual integration of cDNA library construction. , 2000, The Analyst.
[141] E K Wheeler,et al. Convectively driven polymerase chain reaction thermal cycler. , 2004, Analytical chemistry.
[142] E. Holmes,et al. Genomic characterisation and epidemiology of 2019 novel coronavirus: implications for virus origins and receptor binding , 2020, The Lancet.
[143] S. Jayasena,et al. Oligonucleotide inhibitors of Taq DNA polymerase facilitate detection of low copy number targets by PCR. , 1996, Journal of molecular biology.
[144] Hakho Lee,et al. Digital diffraction analysis enables low-cost molecular diagnostics on a smartphone , 2015, Proceedings of the National Academy of Sciences.
[145] Yan Xu,et al. Helicase‐dependent isothermal DNA amplification , 2004, EMBO reports.
[146] Rapid cell lysis and DNA capture in a lysis microreactor , 2012 .
[147] James P Landers,et al. Purification of nucleic acids in microfluidic devices. , 2008, Analytical chemistry.
[148] Jennifer Couzin-Frankel Meredith Wadman,et al. How does coronavirus kill? Clinicians trace a ferocious rampage through the body, from brain to toes , 2020 .
[149] A. Lutich,et al. Tuning DNA binding kinetics in an optical trap by plasmonic nanoparticle heating. , 2013, Nano letters.
[150] Nucleic acid cleavage with a hyperthermophilic Cas9 from an uncultured Ignavibacterium , 2019, Proceedings of the National Academy of Sciences.
[151] O. Tsang,et al. Temporal profiles of viral load in posterior oropharyngeal saliva samples and serum antibody responses during infection by SARS-CoV-2: an observational cohort study , 2020, The Lancet Infectious Diseases.
[152] D. Cohen,et al. Multicenter clinical evaluation of the novel Alere™ i Influenza A&B isothermal nucleic acid amplification test. , 2014, Journal of clinical virology : the official publication of the Pan American Society for Clinical Virology.
[153] P E Klapper,et al. Multiplex PCR: Optimization and Application in Diagnostic Virology , 2000, Clinical Microbiology Reviews.
[154] S. Lo,et al. A familial cluster of pneumonia associated with the 2019 novel coronavirus indicating person-to-person transmission: a study of a family cluster , 2020, The Lancet.
[155] Masato Saito,et al. Ultra-rapid flow-through polymerase chain reaction microfluidics using vapor pressure. , 2011, Biosensors & bioelectronics.
[156] Hayden C. Metsky,et al. Field-deployable viral diagnostics using CRISPR-Cas13 , 2018, Science.
[157] T. Klar,et al. DNA Melting in Gold Nanostove Clusters , 2010 .
[158] Jana Batovska,et al. Metagenomic arbovirus detection using MinION nanopore sequencing. , 2017, Journal of virological methods.
[159] Gregory L. Damhorst,et al. Smartphone-Imaged HIV-1 Reverse-Transcription Loop-Mediated Isothermal Amplification (RT-LAMP) on a Chip from Whole Blood , 2015, Engineering.
[160] V. Pelechano,et al. Rapid detection of COVID-19 coronavirus using a reverse transcriptional loop-mediated isothermal amplification (RT-LAMP) diagnostic platform , 2020, Clinical chemistry.
[161] Dena Goffman,et al. Universal Screening for SARS-CoV-2 in Women Admitted for Delivery , 2020, The New England journal of medicine.
[162] Brett J. Kennedy,et al. Viral Pathogen Detection by Metagenomics and Pan-Viral Group Polymerase Chain Reaction in Children With Pneumonia Lacking Identifiable Etiology , 2017, The Journal of infectious diseases.
[163] David A. Matthews,et al. Real-time, portable genome sequencing for Ebola surveillance , 2016, Nature.
[164] A. Ellington,et al. A one-enzyme RT-qPCR assay for SARS-CoV-2, and procedures for reagent production , 2020, bioRxiv.
[165] Jesus Rodriguez-Manzano,et al. Reading Out Single-Molecule Digital RNA and DNA Isothermal Amplification in Nanoliter Volumes with Unmodified Camera Phones , 2016, ACS nano.
[166] Shiyuan Li,et al. HOLMESv2: a CRISPR-Cas12b-assisted platform for nucleic acid detection and DNA methylation quantitation. , 2019, ACS synthetic biology.
[167] K. Yasukawa,et al. Further increase in thermostability of Moloney murine leukemia virus reverse transcriptase by mutational combination , 2017, Protein engineering, design & selection : PEDS.
[168] Catherine M. Klapperich,et al. Microfluidics-based extraction of viral RNA from infected mammalian cells for disposable molecular diagnostics , 2008 .
[169] Kenji Yasuda,et al. Development of 1480 nm Photothermal High-Speed Real-Time Polymerase Chain Reaction System for Rapid Nucleotide Recognition , 2008 .
[170] J. Mackay. Taking it to the extreme: PCR at wittwerspeed. , 2015, Clinical chemistry.
[171] C. Kim,et al. Electrowetting and electrowetting-on-dielectric for microscale liquid handling , 2002 .
[172] S. Bustin,et al. How to speed up the polymerase chain reaction , 2017, Biomolecular detection and quantification.
[173] K. Chapin,et al. Performance of the Molecular Alere i Influenza A&B Test Compared to That of the Xpert Flu A/B Assay , 2014, Journal of Clinical Microbiology.
[174] S. Kremer,et al. Neurologic Features in Severe SARS-CoV-2 Infection , 2020, The New England journal of medicine.
[175] P. Mehta,et al. COVID-19: consider cytokine storm syndromes and immunosuppression , 2020, The Lancet.
[176] Jing Liu,et al. Asymptomatic cases in a family cluster with SARS-CoV-2 infection , 2020, The Lancet Infectious Diseases.
[177] D. Rajgor,et al. The many estimates of the COVID-19 case fatality rate , 2020, The Lancet Infectious Diseases.
[178] Wenwan Zhong,et al. Exponential strand-displacement amplification for detection of microRNAs. , 2014, Analytical chemistry.
[179] Catharine I Paules,et al. Coronavirus Infections-More Than Just the Common Cold. , 2020, JAMA.
[180] U. Dobrindt,et al. Fast identification of Escherichia coli in urinary tract infections using a virulence gene based PCR approach in a novel thermal cycler. , 2019, Journal of microbiological methods.
[181] C. Wittwer,et al. Real-time fluorescence genotyping of factor V Leiden during rapid-cycle PCR. , 1997, Clinical chemistry.
[182] P. Pompa,et al. Xylenol orange-based loop-mediated DNA isothermal amplification for sensitive naked-eye detection of Escherichia coli. , 2019, Journal of microbiological methods.
[183] P. Horby,et al. A novel coronavirus outbreak of global health concern , 2020, The Lancet.
[184] J. Xiang,et al. Clinical course and risk factors for mortality of adult inpatients with COVID-19 in Wuhan, China: a retrospective cohort study , 2020, The Lancet.
[185] Jr-Lung Lin,et al. Integrated polymerase chain reaction chips utilizing digital microfluidics , 2006, Biomedical microdevices.
[186] R. A. Cox,et al. A study of the alkaline hydrolysis of fractionated reticulocyte ribosomal ribonucleic acid and its relevance to secondary structure. , 1968, The Biochemical journal.
[187] G. Gao,et al. A Novel Coronavirus from Patients with Pneumonia in China, 2019 , 2020, The New England journal of medicine.
[188] Andrew D. Ellington,et al. Synthetic evolutionary origin of a proofreading reverse transcriptase , 2016, Science.
[189] Shana O Kelley,et al. Programming the detection limits of biosensors through controlled nanostructuring. , 2009, Nature nanotechnology.
[190] A. Wheeler,et al. Let's get digital: digitizing chemical biology with microfluidics. , 2010, Current opinion in chemical biology.
[191] N. Callewaert,et al. Capturing the ‘ome’: the expanding molecular toolbox for RNA and DNA library construction , 2018, Nucleic acids research.
[192] S. Silva,et al. Loop-Mediated Isothermal Amplification (LAMP) for the Diagnosis of Zika Virus: A Review , 2019, Viruses.
[193] N. Nguyen,et al. A circular ferrofluid driven microchip for rapid polymerase chain reaction. , 2007, Lab on a chip.
[194] 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.