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Proofreading and DNA Repair Assay Using Single Nucleotide Extension and MALDI-TOF Mass Spectrometry Analysis
Published on: June 19, 2018
Is thymidine glycol containing DNA a substrate of E. coli DNA mismatch repair system?
Svetlana A Perevozchikova1, Roman M Trikin2, Roger J Heinze3
1Department of Chemistry and Belozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, Russia.
Abstract:
The DNA mismatch repair (MMR) system plays a crucial role in the prevention of replication errors and in the correction of some oxidative damages of DNA bases. In the present work the most abundant oxidized pyrimidine lesion, 5,6-dihydro-5,6-dihydroxythymidine (thymidine glycol, Tg) was tested for being recognized and processed by the E. coli MMR system, namely complex of MutS, MutL and MutH proteins. In a partially reconstituted MMR system with MutS-MutL-MutH proteins, G/Tg and A/Tg containing plasmids failed to provoke the incision of DNA. Tg residue in the 30-mer DNA duplex destabilized double helix due to stacking disruption with neighboring bases. However, such local structural changes are not important for E. coli MMR system to recognize this lesion. A lack of repair of Tg containing DNA could be due to a failure of MutS (a first acting protein of MMR system) to interact with modified DNA in a proper way. It was shown that Tg in DNA does not affect on ATPase activity of MutS. On the other hand, MutS binding affinities to DNA containing Tg in G/Tg and A/Tg pairs are lower than to DNA with a G/T mismatch and similar to canonical DNA. Peculiarities of MutS interaction with DNA was monitored by Förster resonance energy transfer (FRET) and fluorescence anisotropy. Binding of MutS to Tg containing DNAs did not result in the formation of characteristic DNA kink. Nevertheless, MutS homodimer orientation on Tg-DNA is similar to that in the case of G/T-DNA. In contrast to G/T-DNA, neither G/Tg- nor A/Tg-DNA was able to stimulate ADP release from MutS better than canonical DNA. Thus, Tg residue in DNA is unlikely to be recognized or processed by the E. coli MMR system. Probably, the MutS transformation to active "sliding clamp" conformation on Tg-DNA is problematic.
Insights
The E. coli DNA mismatch repair (MMR) system does not recognize or repair thymidine glycol (Tg), a common oxidative DNA damage. MutS protein shows reduced binding affinity to Tg-containing DNA, hindering MMR pathway activation.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Biochemistry
Background:
- The DNA mismatch repair (MMR) system is vital for correcting replication errors and some oxidative DNA damages.
- Thymidine glycol (Tg) is a prevalent oxidized pyrimidine lesion in DNA.
Purpose of the Study:
- To investigate the recognition and processing of thymidine glycol (Tg) by the Escherichia coli MMR system.
- To elucidate the interaction of the MutS protein with Tg-containing DNA.
Main Methods:
- Utilized a partially reconstituted E. coli MMR system (MutS, MutL, MutH).
- Assessed DNA incision in plasmids containing G/Tg and A/Tg mismatches.
- Monitored MutS protein interactions with DNA using Förster resonance energy transfer (FRET) and fluorescence anisotropy.
- Measured MutS ATPase activity and ADP release stimulation.
Main Results:
- The E. coli MMR system failed to incise DNA containing G/Tg or A/Tg lesions.
- MutS binding affinity to Tg-containing DNA was lower than to G/T mismatches and similar to canonical DNA.
- MutS binding to Tg-DNA did not induce the characteristic DNA kink, and ADP release was not stimulated.
- Thymidine glycol does not appear to affect MutS ATPase activity.
Conclusions:
- The E. coli MMR system does not recognize or process thymidine glycol (Tg) lesions.
- Impaired MutS interaction with Tg-containing DNA, specifically the inability to form an active sliding clamp conformation, likely explains the lack of repair.
- Tg is unlikely to be a substrate for the E. coli MMR pathway.
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