Real-time PCR detection chemistry.
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G. Serrano-Heras | J. Solera | E. Navarro | E Navarro | G Serrano-Heras | M J Castaño | J Solera | M. J. Castaño | M. J. Castaño
[1] R. Clegg. Fluorescence resonance energy transfer and nucleic acids. , 1992, Methods in enzymology.
[2] Xiaojun Wang,et al. Development of a single-tube duplex EvaGreen real-time PCR for the detection and identification of EHV-1 and EHV-4 , 2014, Applied Microbiology and Biotechnology.
[3] J. Behr,et al. Zip Nucleic Acids: new high affinity oligonucleotides as potent primers for PCR and reverse transcription , 2009, Nucleic acids research.
[4] A. Eischeid. SYTO dyes and EvaGreen outperform SYBR Green in real-time PCR , 2011, BMC Research Notes.
[5] S. Agrawal,et al. Pseudo-cyclic oligonucleotides: in vitro and in vivo properties. , 1999, Bioorganic & medicinal chemistry.
[6] Tania Nolan,et al. Minimum information necessary for quantitative real-time PCR experiments. , 2014, Methods in molecular biology.
[7] R. M. Afshar,et al. Detection of HBV resistance to lamivudine in patients with chronic hepatitis B using Zip nucleic acid probes in Kerman, southeast of Iran. , 2012, Asian Pacific journal of cancer prevention : APJCP.
[8] T. Borodina,et al. Refinement of single-nucleotide polymorphism genotyping methods on human genomic DNA: amplifluor allele-specific polymerase chain reaction versus ligation detection reaction-TaqMan. , 2004, Analytical biochemistry.
[9] S. Agrawal,et al. 'Cyclicons' as hybridization-based fluorescent primer-probes: synthesis, properties and application in real-time PCR. , 2000, Bioorganic & medicinal chemistry.
[10] L. Stols,et al. Solution-phase detection of polynucleotides using interacting fluorescent labels and competitive hybridization. , 1989, Analytical biochemistry.
[11] J. Repa,et al. The power of real-time PCR. , 2005, Advances in physiology education.
[12] Ruslan Kalendar,et al. Java web tools for PCR, in silico PCR, and oligonucleotide assembly and analysis. , 2011, Genomics.
[13] J. Nicklas,et al. An Alu-based, MGB Eclipse real-time PCR method for quantitation of human DNA in forensic samples. , 2005, Journal of forensic sciences.
[14] Stephen A Bustin,et al. Why the need for qPCR publication guidelines?--The case for MIQE. , 2010, Methods.
[15] P. Nielsen,et al. Crystal structure of a partly self-complementary peptide nucleic acid (PNA) oligomer showing a duplex-triplex network. , 2005, Journal of the American Chemical Society.
[16] J. Behr,et al. Oligonucleotide-oligospermine conjugates (zip nucleic acids): a convenient means of finely tuning hybridization temperatures. , 2008, Journal of the American Chemical Society.
[17] N. Saunders. An Introduction to Real-Time PCR , 2008 .
[18] G. Zuber,et al. Online Synthesis of Diblock Cationic Oligonucleotides for Enhanced Hybridization to their Complementary Sequence , 2006, Chembiochem : a European journal of chemical biology.
[19] E. Lukhtanov,et al. Oligonucleotides with conjugated dihydropyrroloindole tripeptides: base composition and backbone effects on hybridization. , 1997, Nucleic acids research.
[20] P. Walsh,et al. Simultaneous Amplification and Detection of Specific DNA Sequences , 1992, Bio/Technology.
[21] L. Jones,et al. Characterization of SYBR Gold nucleic acid gel stain: a dye optimized for use with 300-nm ultraviolet transilluminators. , 1999, Analytical biochemistry.
[22] Ruslan Kalendar,et al. FastPCR Software for PCR Primer and Probe Design and Repeat Search , 2009 .
[23] J. Behr,et al. Versatile synthesis of oligodeoxyribonucleotide–oligospermine conjugates , 2007, Nature Protocols.
[24] He Xiao,et al. High-incidence of PTEN mutations in Chinese patients with primary small cell carcinoma of the esophagus , 2014, BMC Cancer.
[25] S. Gallati,et al. Sample number and denaturation time are crucial for the accuracy of capillary-based LightCyclers. , 2007, Clinical chemistry.
[26] J. A. Bates,et al. Scorpion ARMS primers for SNP real-time PCR detection and quantification of Pyrenophora teres. , 2001, Molecular plant pathology.
[27] R. Schultz,et al. Oligo-2'-fluoro-2'-deoxynucleotide N3'-->P5' phosphoramidates: synthesis and properties. , 1996, Nucleic acids research.
[28] M. Engelsma,et al. Development of a real-time PCR for detection of the oyster pathogen Nocardia crassostreae based on its homogeneous 16S-23S rRNA intergenic spacer region. , 2013, Journal of Invertebrate Pathology.
[29] T. Orlowski,et al. Reliable detection of rare mutations in EGFR gene codon L858 by PNA-LNA PCR clamp in non-small cell lung cancer. , 2013, Advances in experimental medicine and biology.
[30] Mara A. Karell,et al. Molecular Diagnosis of Malaria by Photo-Induced Electron Transfer Fluorogenic Primers: PET-PCR , 2013, PloS one.
[31] Qiuping Guo,et al. A new class of homogeneous nucleic acid probes based on specific displacement hybridization. , 2002, Nucleic acids research.
[32] M. Yuan,et al. Selection and Evaluation of Potential Reference Genes for Gene Expression Analysis in the Brown Planthopper, Nilaparvata lugens (Hemiptera: Delphacidae) Using Reverse-Transcription Quantitative PCR , 2014, PloS one.
[33] J. Zuna,et al. Temperature non-homogeneity in rapid airflow-based cycler significantly affects real-time PCR. , 2002, BioTechniques.
[34] I. Kutyavin. New approach to real-time nucleic acids detection: folding polymerase chain reaction amplicons into a secondary structure to improve cleavage of Förster resonance energy transfer probes in 5′-nuclease assays , 2009, Nucleic acids research.
[35] K. Voelkerding,et al. Evaluation of quantification methods for real-time PCR minor groove binding hybridization probe assays. , 2007, Analytical biochemistry.
[36] D. Squirrell,et al. Homogeneous Fluorescent Chemistries for Real-Time PCR , 2008 .
[37] J. Solera,et al. Chronic Brucellosis and Persistence of Brucella melitensis DNA , 2009, Journal of Clinical Microbiology.
[38] M. Moser,et al. Enzymatic repair of an expanded genetic information system. , 2003, Nucleic acids research.
[39] T. B. Morrison,et al. Quantification of low-copy transcripts by continuous SYBR Green I monitoring during amplification. , 1998, BioTechniques.
[40] S. Marras,et al. Tiny molecular beacons for in vivo mRNA detection. , 2011, Methods in molecular biology.
[41] C. Saint,et al. Comparison of SYTO9 and SYBR Green I for real-time polymerase chain reaction and investigation of the effect of dye concentration on amplification and DNA melting curve analysis. , 2005, Analytical biochemistry.
[42] B. Faircloth,et al. Primer3—new capabilities and interfaces , 2012, Nucleic acids research.
[43] V V Demidov,et al. Kinetics and mechanism of polyamide ("peptide") nucleic acid binding to duplex DNA. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[44] R. Skuce,et al. Detection of Mycobacterium bovis in Bovine Clinical Specimens Using Real-Time Fluorescence and Fluorescence Resonance Energy Transfer Probe Rapid-Cycle PCR , 2001, Journal of Clinical Microbiology.
[45] M. Egholm,et al. Site-directed recombination via bifunctional PNA–DNA conjugates , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[46] Owen J. Marshall. PerlPrimer: cross-platform, graphical primer design for standard, bisulphite and real-time PCR , 2004, Bioinform..
[47] Ammasi Periasamy,et al. Fluorescence resonance energy transfer (FRET) microscopy imaging of live cell protein localizations , 2003, The Journal of cell biology.
[48] P. Cane,et al. Quantitation of hepatitis B lamivudine resistant mutants by real-time amplification refractory mutation system PCR. , 2004, Journal of hepatology.
[49] J. Logan,et al. Overview of Real-Time PCR Platforms 2 An Overview of Real-Time PCR Platforms , 2016 .
[50] P. Nielsen. Peptide nucleic acid targeting of double-stranded DNA. , 2001, Methods in enzymology.
[51] J. Wengel,et al. Hybridization-Based Detection of Helicobacter pylori at Human Body Temperature Using Advanced Locked Nucleic Acid (LNA) Probes , 2013, PloS one.
[52] E. Lusby,et al. Minor groove binder-conjugated DNA probes for quantitative DNA detection by hybridization-triggered fluorescence. , 2002, BioTechniques.
[53] J. Costa. Reacción en cadena de la polimerasa (PCR) a tiempo real , 2004 .
[54] P. Bernard,et al. Homogeneous amplification and variant detection by fluorescent hybridization probes. , 2000, Clinical chemistry.
[55] D. Macool,et al. An homogeneous fluorescence polymerase chain reaction assay to identify Salmonella. , 1997, Analytical biochemistry.
[56] G. Brightwell,et al. Fluorescent detection techniques for real‐time multiplex strand specific detection of Bacillus anthracis using rapid PCR , 1999, Journal of applied microbiology.
[57] Yong Yan,et al. Multiplex real-time PCR assay for detection of pathogenic Vibrio parahaemolyticus strains. , 2014, Molecular and cellular probes.
[58] V. Beneš,et al. The MIQE guidelines: minimum information for publication of quantitative real-time PCR experiments. , 2009, Clinical chemistry.
[59] A. Pingoud,et al. Influence of DNA target melting behavior on real-time PCR quantification. , 2000, Clinical chemistry.
[60] Jinping Cheng,et al. Real-time PCR genotyping using displacing probes. , 2004, Nucleic acids research.
[61] Kirk M. Ririe,et al. Product differentiation by analysis of DNA melting curves during the polymerase chain reaction. , 1997, Analytical biochemistry.
[62] R. Lale,et al. FASTPCR software for PCR , in silico PCR , and oligonucleotide assembly and analysis , 2022 .
[63] E. Lukhtanov,et al. 3'-minor groove binder-DNA probes increase sequence specificity at PCR extension temperatures. , 2000, Nucleic acids research.
[64] Kun-song Chen,et al. DNA quantification using EvaGreen and a real-time PCR instrument. , 2006, Analytical biochemistry.
[65] P. Erbacher,et al. Zip nucleic acids are potent hydrolysis probes for quantitative PCR , 2010, Nucleic acids research.
[66] 18 – Detection of Energy Transfer and Fluorescence Quenching , 1995 .
[67] A. Siddle,et al. ResonSense®: simple linear fluorescent probes for quantitative homogeneous rapid polymerase chain reaction ☆ , 2002 .
[68] S. Aguirre,et al. Development and validation of a TaqMan-MGB real-time RT-PCR assay for simultaneous detection and characterization of infectious bursal disease virus. , 2012, Journal of virological methods.
[69] C. Heid,et al. A novel method for real time quantitative RT-PCR. , 1996, Genome research.
[70] Yaoguang Liu,et al. A cost-effective high-resolution melting approach using the EvaGreen dye for DNA polymorphism detection and genotyping in plants. , 2010, Journal of integrative plant biology.
[71] C. Wittwer,et al. Continuous fluorescence monitoring of rapid cycle DNA amplification. , 1997, BioTechniques.
[72] Weihong Tan,et al. Locked nucleic acid molecular beacons. , 2005, Journal of the American Chemical Society.
[73] L. Bolund,et al. Short PNA molecular beacons for real-time PCR allelic discrimination of single nucleotide polymorphisms. , 2004, Molecular and cellular probes.
[74] Eric B. Roesch,et al. Exploiting the enzymatic recognition of an unnatural base pair to develop a universal genetic analysis system. , 2003, Clinical chemistry.
[75] Garima Kushwaha,et al. High-throughput Primer and Probe Design for Genome-Wide DNA Methylation Study Using PRIMEGENS , 2010 .
[76] M. Lee,et al. Development of a real‐time PCR‐based method for rapid differential identification of Mycobacterium species , 2007, Letters in applied microbiology.
[77] Russell Higuchi,et al. Kinetic PCR Analysis: Real-time Monitoring of DNA Amplification Reactions , 1993, Bio/Technology.
[78] D. Pastuszak-Lewandoska,et al. HPV16 E6*II gene expression in intraepithelial cervical lesions as an indicator of neoplastic grade: a pilot study , 2014, Medical Oncology.
[79] M. Egholm,et al. Sequence-selective recognition of DNA by strand displacement with a thymine-substituted polyamide. , 1991, Science.
[80] M. Morelle,et al. Rapid screening for HLA-B27 by a TaqMan-PCR assay using sequence-specific primers and a minor groove binder probe, a novel type of TaqMan™ probe , 2004 .
[81] K. Arar,et al. Chimeric LNA/DNA probes as a detection system for real-time PCR. , 2004, Clinical biochemistry.
[82] S. Sørensen,et al. Use of a PNA probe to block DNA-mediated PCR product formation in prokaryotic RT-PCR. , 2007, BioTechniques.
[83] A. Farzam,et al. The Relationship Between Gastric Cancer and Helicobacter Pylori in Formaldehyde Fixed Paraffin Embedded Gastric Tissues of Gastric Cancer Patients-Scorpion Real-Time PCR Assay Findings , 2013, Pathology & Oncology Research.
[84] S. Maiti,et al. Thermodynamic, counterion, and hydration effects for the incorporation of locked nucleic acid nucleotides into DNA duplexes. , 2006, Biochemistry.
[85] S Rozen,et al. Primer3 on the WWW for general users and for biologist programmers. , 2000, Methods in molecular biology.
[86] P. Nielsen,et al. Applications of peptide nucleic acids. , 1999, Current opinion in biotechnology.
[87] Irina Afonina,et al. Efficient priming of PCR with short oligonucleotides conjugated to a minor groove binder , 1997, Nucleic Acids Res..
[88] Jian Ye,et al. Primer-BLAST: A tool to design target-specific primers for polymerase chain reaction , 2012, BMC Bioinformatics.
[89] Jahan B. Ghasemi,et al. New unsymmetrical cyanine dyes for real-time thermal cycling , 2007, Analytical and bioanalytical chemistry.
[90] A. H. Maitland‐van der Zee,et al. Genotyping for CYP2C9 and VKORC1 alleles by a novel point of care assay with HyBeacon® probes. , 2011, Clinica chimica acta; international journal of clinical chemistry.
[91] M. Moser,et al. Nucleic acid analysis using an expanded genetic alphabet to quench fluorescence. , 2004, Journal of the American Chemical Society.
[92] Peter E. Nielsen,et al. DNA-like double helix formed by peptide nucleic acid , 1994, Nature.
[93] P. Hufnagl,et al. Evaluation of a novel internally controlled real-time PCR assay targeting the 16S rRNA gene for confirmation of Neisseria gonorrhoeae infections. , 2008, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[94] T. Brown,et al. HyBeacon probes: a new tool for DNA sequence detection and allele discrimination. , 2001, Molecular and cellular probes.
[95] A new minor groove binding asymmetric cyanine reporter dye for real-time PCR. , 2003, Nucleic acids research.
[96] J. Vázquez-Boland,et al. Quantitative Detection of Listeria monocytogenes and Listeria innocua by Real-Time PCR: Assessment of hly, iap, and lin02483 Targets and AmpliFluor Technology , 2004, Applied and Environmental Microbiology.
[97] J. Hartley,et al. Use of uracil DNA glycosylase to control carry-over contamination in polymerase chain reactions. , 1990, Gene.
[98] J. Wengel,et al. The first analogues of LNA (locked nucleic acids): phosphorothioate-LNA and 2'-thio-LNA. , 1998, Bioorganic & medicinal chemistry letters.
[99] N. Thelwell,et al. Duplex Scorpion primers in SNP analysis and FRET applications. , 2001, Nucleic acids research.
[100] J. Huggins,et al. Differentiation of Variola major and Variola minor variants by MGB-Eclipse probe melt curves and genotyping analysis. , 2009, Molecular and cellular probes.
[101] Steven A. Benner,et al. Enzymatic incorporation of a new base pair into DNA and RNA extends the genetic alphabet , 1990, Nature.
[102] Stephen A. Bustin,et al. Real-Time PCR , 2005 .
[103] F. Bloom,et al. Quantitation of gene expression in neural precursors by reverse-transcription polymerase chain reaction using self-quenched, fluorogenic primers. , 2003, Analytical biochemistry.
[104] Juan F Medrano,et al. Real-time PCR for mRNA quantitation. , 2005, BioTechniques.
[105] Peter E. Nielsen,et al. Peptide nucleic acids (PNA) : oligonucleotide analogues with an achiral peptide backbone , 1992 .
[106] L. Morrison. 13 – Detection of Energy Transfer and Fluorescence Quenching , 1992 .
[107] Poul Nielsen,et al. LNA (Locked Nucleic Acids): Synthesis of the adenine, cytosine, guanine, 5-methylcytosine, thymine and uracil bicyclonucleoside monomers, oligomerisation, and unprecedented nucleic acid recognition , 1998 .
[108] Oliver Seitz,et al. Forced Intercalation Probes (FIT Probes): Thiazole Orange as a Fluorescent Base in Peptide Nucleic Acids for Homogeneous Single‐Nucleotide‐Polymorphism Detection , 2005, Chembiochem : a European journal of chemical biology.
[109] Peter E. Nielsen,et al. LNA (Locked Nucleic Acids): Synthesis and High-Affinity Nucleic Acid Recognition. , 1998 .
[110] R. Clegg. Fluorescence resonance energy transfer. , 2020, Current Opinion in Biotechnology.
[111] H. Hansen,et al. Nuclease Stability of LNA Oligonucleotides and LNA-DNA Chimeras , 2003, Nucleosides, nucleotides & nucleic acids.
[112] R. Grabherr,et al. Development of a Cost-Effective Method for Capripoxvirus Genotyping Using Snapback Primer and dsDNA Intercalating Dye , 2013, PloS one.
[113] Hanlee P. Ji,et al. Correction to High Sensitivity Detection and Quantitation of DNA Copy Number and Single Nucleotide Variants with Single Color Droplet Digital PCR , 2015, Analytical chemistry.
[114] M. Egholm,et al. Sequence specific inhibition of DNA restriction enzyme cleavage by PNA. , 1993, Nucleic acids research.
[115] C. Yamada,et al. A screening method for the detection of the 35S promoter and the nopaline synthase terminator in genetically modified organisms in a real-time multiplex polymerase chain reaction using high-resolution melting-curve analysis. , 2009, Biological & pharmaceutical bulletin.
[116] Stephen A. Bustin,et al. A-Z of Quantitative PCR , 2004 .
[117] Rolf Jaggi,et al. MIQE précis: Practical implementation of minimum standard guidelines for fluorescence-based quantitative real-time PCR experiments , 2010, BMC Molecular Biology.
[118] Sanjay Tyagi,et al. Molecular Beacons: Probes that Fluoresce upon Hybridization , 1996, Nature Biotechnology.
[119] D. Birch,et al. Prevention of pre-PCR mis-priming and primer dimerization improves low-copy-number amplifications. , 1992, Nucleic acids research.
[120] Direct Fluorescence Detection of Allele-Specific PCR Products Using Novel Energy-Transfer Labeled Primers. , 1998, Molecular diagnosis : a journal devoted to the understanding of human disease through the clinical application of molecular biology.
[121] K. Gruden,et al. Comparison of nine different real-time PCR chemistries for qualitative and quantitative applications in GMO detection , 2010, Analytical and bioanalytical chemistry.
[122] L. Svensson,et al. Novel Light-Upon-Extension Real-Time PCR Assays for Detection and Quantification of Genogroup I and II Noroviruses in Clinical Specimens , 2007, Journal of Clinical Microbiology.
[123] Zhonghua Wei,et al. A nonsense mutation in the Xeroderma pigmentosum complementation group F (XPF) gene is associated with gastric carcinogenesis. , 2014, Gene.
[124] P. d’Azevedo,et al. Novel Real-Time PCR Assays Using TaqMan Minor Groove Binder Probes for Identification of Fecal Carriage of Streptococcus bovis/Streptococcus equinus Complex from Rectal Swab Specimens , 2014, Journal of Clinical Microbiology.
[125] Chhandak Basu,et al. Real‐time PCR (qPCR) primer design using free online software , 2011, Biochemistry and molecular biology education : a bimonthly publication of the International Union of Biochemistry and Molecular Biology.
[126] H. Yamagishi,et al. Homogeneous quantitative assay of hepatitis C virus RNA by polymerase chain reaction in the presence of a fluorescent intercalater. , 1995, Analytical biochemistry.
[127] D. Begg,et al. High-Throughput Direct Fecal PCR Assay for Detection of Mycobacterium avium subsp. paratuberculosis in Sheep and Cattle , 2013, Journal of Clinical Microbiology.
[128] S. Vilcek,et al. LUX real-time PCR assay for the detection of porcine circovirus type 2. , 2010, Journal of virological methods.
[129] D E Wemmer,et al. Designed sequence-specific minor groove ligands. , 2000, Annual review of biophysics and biomolecular structure.
[130] Piet Herdewijn,et al. 1',5'-anhydrohexitol oligonucleotides: Hybridisation and strand displacement with oligoribonucleotides, interaction with RNase H and HIV reverse transcriptase , 1997 .
[131] Jan Hellemans,et al. Evaluation of qPCR curve analysis methods for reliable biomarker discovery: bias, resolution, precision, and implications. , 2013, Methods.
[132] B. Ward,et al. Development and comparison of a quantitative TaqMan-MGB real-time PCR assay to three other methods of quantifying vaccinia virions. , 2014, Journal of virological methods.
[133] Yuan Lin,et al. IDT SciTools: a suite for analysis and design of nucleic acid oligomers , 2008, Nucleic Acids Res..
[134] Wen Wang,et al. MPprimer: a program for reliable multiplex PCR primer design , 2010, BMC Bioinformatics.
[135] I. Nazarenko,et al. A closed tube format for amplification and detection of DNA based on energy transfer. , 1997, Nucleic acids research.
[136] Dong-yi Han,et al. Rapid screening for the mitochondrial DNA C1494T mutation in a deaf population in China using real-time quantitative PCR , 2012, Acta oto-laryngologica.
[137] S. Bustin,et al. A MIQE-Compliant Real-Time PCR Assay for Aspergillus Detection , 2012, PloS one.
[138] J. Hurley,et al. Design considerations and effects of LNA in PCR primers. , 2003, Molecular and cellular probes.
[139] S. Rahman,et al. Epidermal growth factor receptor mutation in non-small-cell lung carcinomas: a retrospective analysis of 1036 lung cancer specimens from a network of tertiary cancer care centers in India. , 2013, Indian journal of cancer.
[140] M. Bayer. Fluorescent Energy Transfer Nucleic Acid Probes Designs And Protocols , 2016 .
[141] Qingge Li,et al. Simultaneous detection of trisomies 13, 18, and 21 with multiplex ligation-dependent probe amplification-based real-time PCR. , 2010, Clinical chemistry.
[142] J. Summerton,et al. Morpholino antisense oligomers: design, preparation, and properties. , 1997, Antisense & nucleic acid drug development.
[143] Th. Förster. Zwischenmolekulare Energiewanderung und Fluoreszenz , 1948 .
[144] J. Hoorfar,et al. Diagnostic PCR: comparative sensitivity of four probe chemistries. , 2009, Molecular and cellular probes.
[145] K. Livak,et al. Real time quantitative PCR. , 1996, Genome research.
[146] D. Whitcombe,et al. Detection of PCR products using self-probing amplicons and fluorescence , 1999, Nature Biotechnology.
[147] E. Lyon,et al. Genotyping of human platelet antigens 1 to 6 and 15 by high-resolution amplicon melting and conventional hybridization probes. , 2006, The Journal of molecular diagnostics : JMD.
[148] Tania Nolan,et al. In silico tools for qPCR assay design and data analysis. , 2011, Methods in molecular biology.
[149] D. Doolan,et al. Highly Sensitive Quantitative Real-Time PCR for the Detection of Plasmodium Liver-Stage Parasite Burden following Low-Dose Sporozoite Challenge , 2013, PloS one.
[150] Th Foerster,et al. DELOCALIZED EXCITATION AND EXCITATION TRANSFER. Bulletin No. 18 , 1964 .
[151] M. Orozco,et al. Cooperativity in drug-DNA recognition: a molecular dynamics study. , 2001, Journal of the American Chemical Society.
[152] V. Didenko,et al. DNA probes using fluorescence resonance energy transfer (FRET): designs and applications. , 2001, BioTechniques.
[153] E. De Clercq,et al. Synthesis, biological evaluation, and structure analysis of a series of new 1,5-anhydrohexitol nucleosides. , 1995, Journal of medicinal chemistry.
[154] E. Teeling,et al. UniPrime: a workflow-based platform for improved universal primer design , 2008, Nucleic acids research.
[155] K. Quinlan,et al. Evidence Based Selection of Commonly Used RT-qPCR Reference Genes for the Analysis of Mouse Skeletal Muscle , 2014, PloS one.
[156] S. Marras,et al. Tiny molecular beacons: LNA/2'-O-methyl RNA chimeric probes for imaging dynamic mRNA processes in living cells. , 2012, ACS chemical biology.
[157] M. Heller,et al. CHEMILUMINESCENT AND FLUORESCENT PROBES FOR DNA HYBRIDIZATION SYSTEMS , 1985 .
[158] W. Knoll,et al. Investigating the kinetics of DNA-DNA and PNA-DNA interactions using surface plasmon resonance-enhanced fluorescence spectroscopy. , 2001, Biosensors & bioelectronics.
[159] Yi Zhang,et al. Multiplex Fluorescence Melting Curve Analysis for Mutation Detection with Dual-Labeled, Self-Quenched Probes , 2011, PloS one.
[160] Jan M. Ruijter,et al. Fluorescent-increase kinetics of different fluorescent reporters used for qPCR depend on monitoring chemistry, targeted sequence, type of DNA input and PCR efficiency , 2014, Microchimica Acta.
[161] E. Lukhtanov,et al. Sequence-specific arrest of primer extension on single-stranded DNA by an oligonucleotide-minor groove binder conjugate. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[162] I. Kutyavin. Use of base modifications in primers and amplicons to improve nucleic acids detection in the real-time snake polymerase chain reaction. , 2011, Assay and drug development technologies.
[163] J. Salk,et al. Two-temperature LATE-PCR endpoint genotyping , 2006, BMC Biotechnology.
[164] P. Ikonomi,et al. Multiplex quantitative PCR using self-quenched primers labeled with a single fluorophore. , 2002, Nucleic acids research.
[165] David R Corey,et al. RNA interference in mammalian cells by chemically-modified RNA. , 2003, Biochemistry.
[166] Qing Wang,et al. LNA real-time PCR probe quantification of hepatitis B virus DNA. , 2012, Experimental and therapeutic medicine.
[167] Peter E. Nielsen,et al. Kinetics and mechanism of the DNA double helix invasion by pseudocomplementary peptide nucleic acids , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[168] M. Chiou,et al. Comparison of viremia of type II porcine reproductive and respiratory syndrome virus in naturally infected pigs by zip nucleic acid probe-based real-time PCR , 2013, BMC Veterinary Research.
[169] Jee-Hyun Yoon,et al. Simple and rapid discrimination of embB codon 306 mutations in Mycobacterium tuberculosis clinical isolates by a real-time PCR assay using an LNA-TaqMan probe. , 2013, Journal of microbiological methods.
[170] E. Ohtsuka,et al. Synthesis and hybridization studies on two complementary nona(2'-O-methyl)ribonucleotides. , 1987, Nucleic acids research.
[171] D. Mcdowell,et al. Ultra-rapid DNA analysis using HyBeacon probes and direct PCR amplification from saliva. , 2002, Molecular and cellular probes.
[172] A. Wolff,et al. Comparison of multiple DNA dyes for real-time PCR: effects of dye concentration and sequence composition on DNA amplification and melting temperature , 2007, Nucleic acids research.
[173] Kwisung Park,et al. Evaluation of Peptide Nucleic Acid Probe-based Real-time PCR for Detection of Mycobacterium tuberculosis Complex and Nontuberculous Mycobacteria in Respiratory Specimens , 2012, Annals of laboratory medicine.
[174] Frank Vitzthum,et al. Investigations on DNA intercalation and surface binding by SYBR Green I, its structure determination and methodological implications. , 2004, Nucleic acids research.
[175] Frans Voorbraak,et al. Bias in the Cq value observed with hydrolysis probe based quantitative PCR can be corrected with the estimated PCR efficiency value. , 2010, Methods.
[176] D. Sinnett,et al. Frequency of Chromosomally-Integrated Human Herpesvirus 6 in Children with Acute Lymphoblastic Leukemia , 2013, PloS one.
[177] J. Thomson,et al. Analysis of multiple single nucleotide polymorphisms closely positioned in the ovine PRNP gene using linear fluorescent probes and melting curve analysis , 2007, BMC infectious diseases.
[178] Peter E. Nielsen,et al. PNA hybridizes to complementary oligonucleotides obeying the WatsonCrick hydrogen-bonding rules , 1993, Nature.
[179] F. Kramer,et al. Thermodynamic basis of the enhanced specificity of structured DNA probes. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[180] S. Hong,et al. Detection of BRAF V600E mutation with thyroid tissue using pyrosequencing: comparison with PNA-clamping and real-time PCR. , 2013, American Journal of Clinical Pathology.
[181] J. Solera,et al. Use of real-time quantitative polymerase chain reaction to monitor the evolution of Brucella melitensis DNA load during therapy and post-therapy follow-up in patients with brucellosis. , 2006, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[182] R. Abramson,et al. Detection of specific polymerase chain reaction product by utilizing the 5'----3' exonuclease activity of Thermus aquaticus DNA polymerase. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[183] Steven A. Benner,et al. Enzymatic incorporation of a new base pair into DNA and RNA , 1989 .
[184] G. Tallini,et al. Allele Specific Locked Nucleic Acid Quantitative PCR (ASLNAqPCR): An Accurate and Cost-Effective Assay to Diagnose and Quantify KRAS and BRAF Mutation , 2012, PloS one.
[185] Bernhard Kaltenboeck,et al. Advances in Real‐Time PCR: Application to Clinical Laboratory Diagnostics , 2005, Advances in Clinical Chemistry.
[186] D. E. Wolf,et al. Detection of nucleic acid hybridization by nonradiative fluorescence resonance energy transfer. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[187] Hong Tao Wang,et al. Development of molecular markers for the determination of the new cultivar 'Chunpoong' in Panax ginseng C. A. Meyer associated with a major latex-like protein gene. , 2010, Biological & pharmaceutical bulletin.
[188] U J Balis,et al. The LightCycler: a microvolume multisample fluorimeter with rapid temperature control. , 1997, BioTechniques.
[189] Yi Yang,et al. MFEprimer: multiple factor evaluation of the specificity of PCR primers , 2009, Bioinform..
[190] F. Koohdani,et al. Zip nucleic acid: a new reliable method to increase the melting temperature of real-time PCR probes , 2014, Journal of Diabetes & Metabolic Disorders.
[191] S A Benner,et al. Enzymatic recognition of the base pair between isocytidine and isoguanosine. , 1993, Biochemistry.
[192] V. Didenko,et al. Fluorescent energy transfer nucleic acid probes : designs and protocols , 2006 .
[193] E. Lukhtanov,et al. Novel DNA probes with low background and high hybridization-triggered fluorescence , 2007, Nucleic acids research.
[194] Fei Mao,et al. Characterization of EvaGreen and the implication of its physicochemical properties for qPCR applications , 2007, BMC biotechnology.
[195] S. Vilcek,et al. Development of a Plexor real-time PCR assay for the detection of porcine circovirus type 2. , 2012, Journal of virological methods.