Outstanding assay reproducibility, sensitivity and robustness from both DNA and RNA templates, under fast thermal cycling conditions.
A fragment of ubiquitin gene was amplified using SensiFAST SYBR Hi-ROX (blue) and the results were compared with amplifications using a Kit from Supplier Q (red). The process used a 10 fold serial dilution of human cDNA (in quadruplicate) over four orders of magnitude. The results illustrate SensiFAST SYBR Hi-ROX was faster (earlier Ct), with higher specificity and reproducibility.
The SensiFAST™ SYBR® Hi-ROX Kit has been developed for fast, highly accurate real-time PCR and has been validated on all commonly-used real-time instruments that require a high concentration of the passive reference dye ROX.
A combination of the latest advances in buffer chemistry and PCR enhancers ensures that the SensiFAST™ SYBR® Hi-ROX Kit produces reliable assay results under fast thermal cycling conditions. An antibody-mediated hot-start DNA polymerase system promotes highly-specific amplification, in turn improving assay sensitivity and dynamic range.
The SensiFAST™ SYBR® Hi-ROX Kit has been optimized to deliver optimal performance in tandem with the SensiFAST cDNA Synthesis Kit, which offers fast, unbiased cDNA synthesis, without compromising cDNA yield or coverage.
| Concentration | 2x |
| Presentation | BIO-92005: 500 x 20 µL Reactions: 5 x 1 mL BIO-92020: 2000 x 20 µL Reactions: 4 x 5 mL |
| Appearance | Clear, colorless solution |
| Hot Start | Antibody mediated |
| Application | SYBR-based, qPCR, two-step RT-qPCR |
| Sample type | cDNA, DNA |
| Presentation | 5 vials / 4 vials |
| Storage | -20 °C, avoid exposure of the ROX™ to light |
| Mix stability | See outer label |
| Consistency | ±0.5 Ct variance between test and reference sample |
| DNA Contamination | None detected in PCR amplification with traces overlay with the negative control on E. coli and mouse genomic DNA specific targets. |
| DNase Contamination | No detectable degradation |
Cat. No. Size
BIO-92005 500 x 20µl Reactions
BIO-92020 2000 x 20µl Reactions
Joshua Brian, Victoria University, Wellington, New Zealand
Noémie Péan, INSERM, Paris, France
Alice Jouneau, INRA, Jouy-en-Josas, France
Aberystwyth University, IBERS, UK
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