Protein expression and purification Bacteria DH10Bac™

- Found 8390 results

Get tips on using BacTiter-Glo™ Microbial Cell Viability Assay to perform Live / Dead assay bacteria - Staphylococcus epidermidis

Products Promega BacTiter-Glo™ Microbial Cell Viability Assay

Plasmid isolation is an important technique in molecular biology or any kind of genetic editing. It involves amplifying plasmids overnight by transforming them into competent bacterial cells. The desired colonies of these bacteria can then be grown in shaker cultures, at appropriate shaking speed, oxygen availability and temperature. These liquid cultures can then be ultracentrifuged to pellet the bacteria, which are then used for plasmid isolation. The bacteria are first resuspended in a buffer, then lysed, neutralized, purified in a column, eluted, precipitated with ethanol and then resuspended. During plasmid isolation, it is important to lyse cells quickly because lysing bacteria for too long may lead to irreversible denaturing of the plasmid. Usually, alkaline lysis is used for isolation because it is a mild treatment. It isolates plasmid DNA and other cell components such as proteins by breaking cells apart with an alkaline solution. Precipitation removes the proteins, and the plasmid DNA recovers with alcohol precipitation. Resuspension and lysis buffers should be mixed thoroughly in order to prevent the DNA from breaking into smaller fragments. This is because broken gDNA can reanneal and remain in the solution, without binding to the column.

DNA Plasmid Isolation Proteus mirabilis

DNA microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray Gene expression arrays Mouse Cyanine-CTP
pMCY87 Product

Get tips on using pMCY87 to perform Protein Expression Prokaryotic cells - E. coli PduP-E bacteriophage ϕX174

Products Mimi C. Yung, Biosciences and Biotechnology Division, Physical a pMCY87
pMCY86 Product

Get tips on using pMCY86 to perform Protein Expression Prokaryotic cells - E. coli PduP-E bacteriophage ϕX174

Products Mimi C. Yung, Biosciences and Biotechnology Division, Physical a pMCY86
pMCY85 Product

Get tips on using pMCY85 to perform Protein Expression Prokaryotic cells - E. coli PduP-E bacteriophage ϕX174

Products Mimi C. Yung, Biosciences and Biotechnology Division, Physical a pMCY85

Get tips on using SYTO™ 9 Green Fluorescent Nucleic Acid Stain to perform Live / Dead assay bacteria - Pseudomonas aeruginosa

Products Thermo Fisher Scientific SYTO™ 9 Green Fluorescent Nucleic Acid Stain

Get tips on using Trichloroacetic acid to perform Protein isolation Bacteria - Bacillus anthracis

Products Sigma-Aldrich Trichloroacetic acid

DNA microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray Gene expression arrays Rat mesothelium Satin cocktail

DNA microarrays enable researchers to monitor the expression of thousands of genes simultaneously. However, the sensitivity, accuracy, specificity, and reproducibility are major challenges for this technology. Cross-hybridization, combination with splice variants, is a prime source for the discrepancies in differential gene expression calls among various microarray platforms. Removing (either from production or downstream bioinformatic analysis) and/or redesigning the microarray probes prone to cross-hybridization is a reasonable strategy to increase the hybridization specificity and hence, the accuracy of the microarray measurements.

DNA Microarray Gene expression arrays Mouse dorsal skin Biotin

Outsource your experiment

Fill out your contact details and receive price quotes in your Inbox

  Outsource experiment
Become shareholder Discussions About us Contact Privacy Terms