Site Directed Mutagenesis (SDM) Human Point mutation Caco-2

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Get tips on using In Situ Cell Death Detection Kit, TMR red to perform TUNEL assay cell type - Mouse skeletal muscle cells

Products Sigma-Aldrich In Situ Cell Death Detection Kit, TMR red

Get tips on using ApopTag® Fluorescein In Situ Apoptosis Detection Kit to perform TUNEL assay cell type - Islets of langerhans (Beta cells)

Products Millipore ApopTag® Fluorescein In Situ Apoptosis Detection Kit

Get tips on using siGENOME Rat Epor siRNA to perform siRNA / miRNA gene silencing Rat - H19-7 EpoR

Products Dharmacon siGENOME Rat Epor siRNA

Get tips on using siGENOME Rat Nrp1 siRNA to perform siRNA / miRNA gene silencing Rat - Schwann cells Nrp1

Products Dharmacon siGENOME Rat Nrp1 siRNA

Get tips on using siGENOME Mouse Alox12 siRNA to perform siRNA / miRNA gene silencing Mouse - B16-F10 12-Lox/ALOX12

Products Horizon Discovery Ltd. siGENOME Mouse Alox12 siRNA

Get tips on using MinElute Reaction Cleanup Kit (250) to perform DNA gel extraction / PCR product purification Product size < 15Kb

Products Qiagen MinElute Reaction Cleanup Kit (250)

Get tips on using MinElute Gel Extraction Kit (250) to perform DNA gel extraction / PCR product purification Product size < 15Kb

Products Qiagen MinElute Gel Extraction Kit (250)

The formation of DNA from an RNA template using reverse transcription leads to the formation of double-stranded complementary DNA or cDNA. The challenges with this process include 1. Maintaining the integrity of RNA, 2. Hairpin loops or other secondary structures formed by single-stranded RNA can also affect cDNA synthesis, and 3. DNA-RNA hybrids, which may result when the first strand of cDNA is formed. For the first challenge, using workflows that involve proper isolation and storage of RNA, and maintaining a nuclease-free environment helps obtain RNA with ideal 260/230 ratios. Using a reverse transcriptase that can tolerate high temperatures (50-55oC), overcomes obstacles imposed by secondary RNA structures. Finally, RNase H has the ability to hydrolyze RNA before the formation of a second cDNA strand. It is important to ensure that RNase H activity is optimal because higher RNase H activity leads to premature degradation of the RNA template. Many reverse transcriptases offer built-in RNase H activity.

RNA cDNA synthesis Tissue

The formation of DNA from an RNA template using reverse transcription leads to the formation of double-stranded complementary DNA or cDNA. The challenges with this process include 1. Maintaining the integrity of RNA, 2. Hairpin loops or other secondary structures formed by single-stranded RNA can also affect cDNA synthesis, and 3. DNA-RNA hybrids, which may result when the first strand of cDNA is formed. For the first challenge, using workflows that involve proper isolation and storage of RNA, and maintaining a nuclease-free environment helps obtain RNA with ideal 260/230 ratios. Using a reverse transcriptase that can tolerate high temperatures (50-55oC), overcomes obstacles imposed by secondary RNA structures. Finally, RNase H has the ability to hydrolyze RNA before the formation of a second cDNA strand. It is important to ensure that RNase H activity is optimal because higher RNase H activity leads to premature degradation of the RNA template. Many reverse transcriptases offer built-in RNase H activity.

RNA cDNA synthesis Cell lines

The formation of DNA from an RNA template using reverse transcription leads to the formation of double-stranded complementary DNA or cDNA. The challenges with this process include 1. Maintaining the integrity of RNA, 2. Hairpin loops or other secondary structures formed by single-stranded RNA can also affect cDNA synthesis, and 3. DNA-RNA hybrids, which may result when the first strand of cDNA is formed. For the first challenge, using workflows that involve proper isolation and storage of RNA, and maintaining a nuclease-free environment helps obtain RNA with ideal 260/230 ratios. Using a reverse transcriptase that can tolerate high temperatures (50-55oC), overcomes obstacles imposed by secondary RNA structures. Finally, RNase H has the ability to hydrolyze RNA before the formation of a second cDNA strand. It is important to ensure that RNase H activity is optimal because higher RNase H activity leads to premature degradation of the RNA template. Many reverse transcriptases offer built-in RNase H activity.

RNA cDNA synthesis Yeast

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