BlasTaq™ Probe One-Step RT-qPCR

Cat. No.
G596
Unit
100 rxn
Price
$118.00

PCR buffet

Cat. No. G596
Name BlasTaq™ Probe One-Step RT-qPCR
Unit 100 rxn
Category qPCR Mastermixes
Description

BlasTaq™ Probe One-Step RT-qPCR combines reverse transcription and TaqMan™ probe-based real-time qPCR into a single-tube reaction for maximum convenience and efficiency. This system includes the RT-qPCR Enzyme Mix and BlasTaq™ Probe 2X qPCR MasterMix, providing highly sensitive and specific performance for both cDNA synthesis and real-time amplification.

The proprietary RT-qPCR Enzyme Mix contains our next-generation BlasTaq™ DNA polymerase, along with specialized stabilizers and enhancers that optimize the two reactions in a seamless, single-step workflow. This design provides flexibility with a wide range of RNA templates and primer options, delivering a reliable, easy-to-use alternative to traditional two-step RT-qPCR.

The MasterMix is suitable for a variety of applications, including SNP genotyping, gene expression analysis, microarray validation, and high-throughput screening. ROX reference dye is supplied separately, ensuring universal compatibility with most qPCR instruments. For instrument-specific guidelines, please refer to the ROX Machine Compatibility Chart.

Product Features:

  • Simple, one-step RT-qPCR reaction
  • Flexibility with RNA templates and primer selection
  • ROX reference dye provided separately
  • Universally compatible with most qPCR instruments
  • Included in abm's PCR Buffet Program

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Product Component Quantity
BlasTaq™ Probe 2X qPCR MasterMix
1.25 ml
RT-qPCR Enzyme Mix
100 rxn (40 μl)
ROX Reference Dye 15 μl
Nuclease-Free H2O
1.0 ml
ISO 13485:2016 MDSAP Certified

ISO 13485:2016 MDSAP Certified
Our PCR Products are manufactured under a Quality Management System conforming with ISO 13485:2016 as certified by Intertek (a MDSAP recognized auditing organization).

Storage Condition

Store at -20°C.

Note

BlasTaq™ Probe One-Step RT-qPCR comes with a separate vial of ROX Reference Dye which can be added depending on the qPCR machine type, as listed in the table below.

MACHINE TYPE MACHINE
High ROX Machines
  • ABI ® 7000, 7300, 7700, 7900, 7900HT, StepOnePlus™, StepOne™, OpenArray, PRISM™ Sequencing Detection Series
  • Biometra TOptical
  • Fluidigm BioMark™
  • Wafergene SmartChip System
  • TianLong TL998 System
Low ROX Machines
  • ABI® 7500, 7500 Fast, Viia™ 7, QuantStudio, QuantStudio 3/5/6/7
  • BioGene InSyte™
  • Illumina Eco
  • Analytikjena qTower Series
  • Stratagene® Mx3000, Mx3005, Mx4000
No ROX machines
  • BioRad® CFX96, CFX384, Chromo4™, CFX Connect™, Opticon 2, MiniOpticon™
  • Roche LightCycler® (480, 1536, Nano)
  • MJ Research Opticon™, Opticon™ 2, Chromo® 4
  • Eppendorf™ Realplex 4
  • BioGene SynChron™
  • Corbett Rotor-gene® (3000, 6200, 62H0, 6500, 65H0, 6600)
  • Eppendorf Mastercycler® realplex (s, 4 , 4s), Pro (S, 384), Nexus (gradient, eco, flat)
  • Cepheid SmartCyler, GeneXpert
  • Enigma™ ML
  • Idaho LightScanner® (24, 32), RapidCycler®2, R.A.P.I.D (LT, LT Food), RAZOR EX, JBAIDS
  • Qiagen Rotor-Gene™ (Q, 6000)
  • Takara Dice™
  • Thermo Scientific PikoReal
  • DNA-Technology DT96, DTlite, DT-322
  • Bioer LineGene (3310/3320, K FQD-48A, I, II, 9620, 9640, 9660, 9680)
  • Bioneer Exicycler™
Material Citation If use of this material results in a scientific publication, please cite the material in the following manner: Applied Biological Materials Inc, Cat. No. G596
Datasheet
Search CoA here
MSDS
Supporting Protocol
  • Yang, S., Tian, M., & Johnson, A. N. (2020). SARS-CoV-2 protein ORF3a is pathogenic inDrosophilaand causes phenotypes associated with COVID-19 post-viral syndrome. SARS-CoV-2 Protein ORF3a Is Pathogenic in Drosophila and Causes Phenotypes Associated with COVID-19 Post-Viral Syndrome. Published. DOI:10.1101/2020.12.20.423533
  • Sun, X., Wang, E., Yu, L., Liu, S., Liu, T., Qin, J., ... & Song, B. (2024). TCP transcription factor StAST1 represses potato tuberization by regulating tuberigen complex activity. Plant Physiology, 195(2), 1347-1364. https://doi.org/10.1093/plphys/kiae138

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