A convenient mastermix containing a new generation of hot-start polymerase that delivers improved yield, sensitivity, speed and robustness when amplifying targets from any template.
A 340 bp (A) and a 450 bp (B) fragment of the myc gene, a 525 bp (C) fragment of the EGFR gene and a 530 bp (D) fragment of the AGRI1 gene were amplified using MyTaq HS and hot-start DNA polymerases from Suppliers F, K, G and S. Each polymerase was used to set-up PCR reactions containing either 100 ng, 33 ng, 10 ng, 4 ng, 1 ng, 33 pg, 10 pg and 3 pg of human genomic DNA (Lanes 1-8 respectively), prepared by a 3-fold serial dilution. Marker is HyperLadder 1kb (M). MyTaq HS performed well across all four human genes.
M13 vector carrying a DNA insert was cloned into E.coli cells. 2 µL increments of agar (2a) and 2 µL increments of LB (2b) were added to a series of 50 µL PCR reactions (Lanes 1-8 respectively). The results show that MyTaq HS DNA Polymerase was more resistant to inhibition than that of supplier S. Individual colonies were picked from a plate of E.coli, washed directly into MyTaq buffer and amplified using MyTaq HS and primers for either a 2.6 kb or an 884 bp amplicon. Marker is HyperLadder 1kb (M). The results illustrate MyTaq DNA Polymerase is robust and gives highly–specific results.
| Presentation | BIO-25047: 200 x 50 µL Reactions: 4 x 1.25 mL BIO-25048: 1,000 x 50 µL Reactions: 20 x 1.25 mL |
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| Appearance | Clear, colorless solutions | ||
| Hot start | Antibody mediated | ||
| Application | High-throughput genotyping from mammalian tissue, Detection of transgenes, Knockout analysis | ||
| Sample type | DNA, cDNA | ||
| Presentation | 4 vials / 20 vials | ||
| Storage | -20 °C | ||
| Mix stability | See outer label | ||
| Specific Activity | 2x | ||
| Functional | Single distinct bands of PCR product on an agarose gel and sensitivity | ||
| DNA Contamination | No detectable product in a qPCR assay | ||
| DNase Contamination | No detectable degradation | ||
Cat. No. Size
BIO-25047 200 x 50µl Reactions
BIO-25048 1000 x 50µl Reactions
Camilla Teng, University of Southern California, Los Angeles, US
Ohio State University, USA
Roslin Institute, Scotland
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