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Proofreading and DNA Repair Assay Using Single Nucleotide Extension and MALDI-TOF Mass Spectrometry Analysis
Published on: June 19, 2018
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
Abstract:
Cell extract from the HT29 human colon carcinoma cell line (lacking mutator phenotype) was used to study the ATP-dependent G:T mismatch repair. We found that when a 45-bp (model) DNA with a single CpG/TpG mispair was incubated with the cell extract and ATP, it was incised immediately 5' and 3' to the mismatched T, and we noted that the actual 5'- and 3'-labeled fragments were similar to the cleaved products of thymine DNA glycosylase (TDG). This TDG-like cleavage product was enhanced (5-fold) with stimulation of several novel fragments, as inferred from the effect on incision at CpG/TpG site of the addition of G:U competitor DNA and ATP to the HT29 extract. The novel fragments were compatible with a strand incision on both sides of the mismatch (the third phosphodiester bond 5' and the second phosphodiester bond 3' to the mismatched T) and an incision 3' to the mismatched T, respectively. This suggests that while the ATP-dependent (TDG-like) incision activity, contrary to expectation, shows a lack of substrate competition, its catalytic property is likely modified by an interaction with G:U mispair. These multiple ATP-dependent incision events were not detected when extracts of the mismatch repair (MMR) defective HCT15 or HCT116 cell line were augmented with ATP and G:U. We postulate that these multiple ATP-dependent incision events possibly require the same MMR factors, and together they constitute a modified single ATP-dependent G:T incision activity. This activity toward the CpG/TpG was competitively inhibited by a 45-bp DNA with an ApG/TpT mispair; incision at a single site 5' to the latter mismatch compares with one of the multiple sites incised 5' to the former mismatch. These results suggest that one of several mismatch-incision factors is required by the human ATP-dependent G:T incision activity, in addition to MMR factors and ATP.
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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