Hiring in life sciences? Share your open positions with our professional community. Read more Close

Advertisement

Protocol for genome-wide analysis of palindrome formation

External protocol Created on 30 Apr 2014

Authors

Scott Diede and Stephen Tapscott

Summary

Earlier work from our laboratory focused on identifying regions of the genome susceptible to DNA palindrome formation, a rate-limiting step in gene amplification. We described a method to obtain a genome-wide analysis of palindrome formation (GAPF) based on the efficient intrastrand base pairing in large palindromic sequences1. Palindromic sequences can rapidly anneal intramolecularly to form ‘snap-back’ DNA under conditions that do not favor intermolecular annealing. This snap-back property is used to enrich for palindromic sequences in total genomic DNA by denaturing the DNA at 100˚C, rapidly renaturing it by cooling, and then digesting the mixture with the single-strand specific nuclease S1. Snap-back DNA formed from palindromes is double-stranded and resistant to S1, whereas the remainder of genomic DNA is single-stranded and thus is sensitive to S1 digestion. Using GAPF, we have shown that de novo palindromes can form in cancers, and direct molecular analysis validated that a subset of these GAPF-positive signals represent cancer-specific palindromes located at the boundary of gene amplicons1,2. We recently discovered that the original GAPF protocol also enriches for differentially methylated DNA3. We now describe a modification of GAPF to increase the stringency of denaturation using 50% formamide to make the assay specific for DNA palindromes.

Further details

The protocol was published on Protocol Exchange on 5 August 2010. To see the entire protocol, click on the source link.

Advertisement

Stats

  • Recommendations n/a n/a positive of 0 vote(s)
  • Views 239
  • Comments 0

Recommended by

  • No recommendations yet.

Post a comment

You need to be signed in to post comments. You can sign in here.

Comments

There are no comments yet.

Advertisement