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Structure of a DNA Glycosylase Bound to a Nicked T:G Mismatch-Containing DNA
by
Barnes, Rebecca
, Ouzon-Shubeita, Hala
, Schmaltz, Lillian F.
, Lee, Seongmin
in
Amino acids
/ Arginine - chemistry
/ Arginine - genetics
/ Base Pair Mismatch
/ Catalytic Domain
/ Crystal structure
/ Crystallography, X-Ray
/ DNA damage
/ DNA glycosylase
/ DNA methylation
/ DNA polymerase
/ Endodeoxyribonucleases - chemistry
/ Endodeoxyribonucleases - genetics
/ Enzymes
/ Excision Repair
/ Humans
/ Hydrogen Bonding
/ Hydrogen bonds
/ mismatch
/ Molecules
/ Thymine - chemistry
/ Thymine DNA Glycosylase - chemistry
/ Thymine DNA Glycosylase - genetics
2025
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Structure of a DNA Glycosylase Bound to a Nicked T:G Mismatch-Containing DNA
by
Barnes, Rebecca
, Ouzon-Shubeita, Hala
, Schmaltz, Lillian F.
, Lee, Seongmin
in
Amino acids
/ Arginine - chemistry
/ Arginine - genetics
/ Base Pair Mismatch
/ Catalytic Domain
/ Crystal structure
/ Crystallography, X-Ray
/ DNA damage
/ DNA glycosylase
/ DNA methylation
/ DNA polymerase
/ Endodeoxyribonucleases - chemistry
/ Endodeoxyribonucleases - genetics
/ Enzymes
/ Excision Repair
/ Humans
/ Hydrogen Bonding
/ Hydrogen bonds
/ mismatch
/ Molecules
/ Thymine - chemistry
/ Thymine DNA Glycosylase - chemistry
/ Thymine DNA Glycosylase - genetics
2025
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Structure of a DNA Glycosylase Bound to a Nicked T:G Mismatch-Containing DNA
by
Barnes, Rebecca
, Ouzon-Shubeita, Hala
, Schmaltz, Lillian F.
, Lee, Seongmin
in
Amino acids
/ Arginine - chemistry
/ Arginine - genetics
/ Base Pair Mismatch
/ Catalytic Domain
/ Crystal structure
/ Crystallography, X-Ray
/ DNA damage
/ DNA glycosylase
/ DNA methylation
/ DNA polymerase
/ Endodeoxyribonucleases - chemistry
/ Endodeoxyribonucleases - genetics
/ Enzymes
/ Excision Repair
/ Humans
/ Hydrogen Bonding
/ Hydrogen bonds
/ mismatch
/ Molecules
/ Thymine - chemistry
/ Thymine DNA Glycosylase - chemistry
/ Thymine DNA Glycosylase - genetics
2025
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Structure of a DNA Glycosylase Bound to a Nicked T:G Mismatch-Containing DNA
Journal Article
Structure of a DNA Glycosylase Bound to a Nicked T:G Mismatch-Containing DNA
2025
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Overview
Mismatched T:G base pairs can arise during de novo replication as well as base excision repair (BER). In particular, the action of the gap-filling polymerase β (Polβ) can generate a T:G pair as well as a nick in the DNA backbone. The processing of a nicked T:G mispair is poorly understood. We are interested in understanding whether the T:G-specific DNA glycosylase MBD4 can recognize and process nicked T:G mismatches. We have discovered that MBD4 binds a nicked T:G-containing DNA, but does not cleave thymine opposite guanine. To gain insight into this, we have determined a crystal structure of human MBD4 bound to a nicked T:G-containing DNA. This structure displayed the full insertion of thymine into the catalytic site and the recognition of thymine based on the catalytic site’s amino acid residues. However, thymine excision did not occur, presumably due to the inactivation of the catalytic D560 carboxylate nucleophile via a polar interaction with the 5′-hydrogen phosphate of the nicked DNA. The nicked complex was greatly stabilized by an ordered water molecule that formed four hydrogen bonds with the nicked DNA and MBD4. Interestingly, the arginine finger R468 did not engage in the phosphate pinching that is commonly observed in T:G mismatch recognition complex structures. Instead, the guanidinium moiety of R468 made bifurcated hydrogen bonding interactions with O6 of guanine, thereby stabilizing the estranged guanine. These observations suggest that R468 may sense and disrupt T:G pairs within the DNA duplex and stabilize the flipped-out thymine. The structure described here would be a close mimic of an intermediate in the base extrusion pathway induced by DNA glycosylase.
Publisher
MDPI AG,MDPI
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