Multiplicity of strand incision at G:T base mismatches in DNA by human cell extracts

Sibghat-Ullah Lari1, Konrad Famulski, Fahad Al-Khodairy

  • 1Department of Biological and Medical Research (MBC 03), King Faisal Specialist Hospital and Research Center (KFSH&RC), P.O. Box 3354, Riyadh 11211, Saudi Arabia. lari@kfshrc.edu.sa

Biochemistry
|May 26, 2004
PubMed

Insights

Researchers studied ATP-dependent G:T mismatch repair in human colon cells. They discovered novel, multiple incision events near G:T mismatches, suggesting a modified repair activity involving mismatch repair factors and ATP.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • DNA mismatches are critical for genetic stability.
  • The G:T mismatch is a common DNA lesion.
  • ATP-dependent repair pathways are essential for maintaining genomic integrity.

Purpose of the Study:

  • To investigate the mechanism of ATP-dependent G:T mismatch repair in human colon carcinoma cells.
  • To characterize the incision activities involved in G:T mismatch processing.
  • To identify factors influencing G:T mismatch repair.

Main Methods:

  • Utilized cell extracts from HT29 human colon carcinoma cell line.
  • Employed ATP and competitor DNA (G:U, ApG/TpT mispairs) in in vitro assays.
  • Analyzed DNA incision products using labeled DNA fragments.

Main Results:

  • Observed ATP-dependent incision activity 5' and 3' to the mismatched T in G:T pairs, resembling thymine DNA glycosylase (TDG) activity.
  • Discovered enhanced, multiple incision events stimulated by G:U competitor DNA, suggesting a modified TDG-like activity.
  • Found that these multiple incision events were absent in mismatch repair-defective cell lines and competitively inhibited by ApG/TpT mispairs.

Conclusions:

  • The human ATP-dependent G:T mismatch repair involves multiple incision events, potentially a modified activity requiring mismatch repair (MMR) factors and ATP.
  • G:U mispairs modulate the catalytic property of this ATP-dependent incision activity.
  • The findings suggest the involvement of specific mismatch-incision factors in human G:T mismatch repair beyond general MMR factors.

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