Unconfigured Ad

Collapse
X
 
  • Time
  • Show
Clear All
new posts
  • StephanK
    Junior Member
    • Jul 2016
    • 3

    #1

    Second strand generation

    Hi!
    I would like to use a slightly different approach for second strand synthesis. My problem is that I have an adapter sequence and that one somehow ligates to random sequences. I went over the protocol and I think the problem is the ligase in the standard second strand synthesis protocol by Gubler/Hofmann. Thus I would like to skip the E Coli DNA Ligase from the protocol.

    The problem is that the most recommended enzymes for second strand synthesis have low processivity and therefore show Nick translation, i.e. they will fall off after 10-50bp (processivity) and then leave a nick. This one is either extended by another molecule or not. The ligase should fill these nicks. I need to find a highly processive polymerase that either degrades the RNA in the RNA:cDNA duplex or one that displaces it. Then, the reaction will run through until the end of the molecule. Is that correct?

    I thought of choosing a polymerase with strong strand displacement activity and high processivity (like Phi29). Would that be a bad choice for some unforeseen reason? If has a strong 3-5 exonuclease activity but according to NEB that only applies for single stranded DNA in the absence of dNTPs. Does anybody know if that also applies for ds cDNA? Would the displaced RNA/DNA also make unwanted DNA fragments? They should not have a primer to do so, or?
    Is there a highly processive enzyme (so that they can translate the nick until the 5'end of the first strand cDNA?) with 5-3 exonuclease activity commercially available?

    Is there any good way to test the second strand cDNA that can be done in a lab? I tried gel analysis and that is not really indicative for total RNA.

    Thanks!
    Cheers,
    Stephan

Latest Articles

Collapse

  • SEQadmin2
    Beyond CRISPR/Cas9: Understand, Choose, and Use the Right Genome Editing Tool
    by SEQadmin2



    CRISPR/Cas9 sparked the gene editing revolution for both research and therapeutics.1 But this system still showed severe issues that limited its applications. The most prominent were the heavy reliance on PAM sequences, delivery limitations, double-stranded breaks that prompt unintended edits and cell death, and editing inefficiency (both in targeting and in knock-in reliability).

    Despite this, “CRISPR helped turn genome editing from a specialized technique into
    ...
    07-31-2026, 11:01 AM
  • SEQadmin2
    Proteomic Platforms: How to Choose the Right Analytical Strategy to Improve Detection and Clinical Applications
    by SEQadmin2


    Proteomics platforms are evolving rapidly, with advances in mass spectrometry and affinity-based approaches expanding what researchers can detect and at what scale. As the field moves toward deeper proteome coverage and clinical applications, scientists face an increasingly complex landscape of tools. This article will explore how researchers are navigating these choices to find the right platform for their work.

    The systematic characterization of the human proteome has
    ...
    07-20-2026, 11:48 AM

ad_right_rmr

Collapse

News

Collapse

Topics Statistics Last Post
Started by SEQadmin2, Yesterday, 10:35 AM
0 responses
7 views
0 reactions
Last Post SEQadmin2  
Started by SEQadmin2, 08-06-2026, 07:41 AM
0 responses
24 views
0 reactions
Last Post SEQadmin2  
Started by SEQadmin2, 08-03-2026, 10:13 AM
0 responses
44 views
0 reactions
Last Post SEQadmin2  
Started by SEQadmin2, 07-31-2026, 02:55 AM
0 responses
48 views
0 reactions
Last Post SEQadmin2  
Working...