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Updated: Jul 18, 2026

Analysis of DNA Double-strand Break (DSB) Repair in Mammalian Cells
Published on: September 8, 2010
Oxidative DNA damage repair in mammalian cells: a new perspective
Tapas K Hazra1, Aditi Das, Soumita Das
1Sealy Center for Molecular Science and Department of Biochemistry and Molecular Biology, 6.136 Medical Research Building, Route 1079, University of Texas Medical Branch, Galveston, TX 77555, USA. tkhazra@utmb.edu
Abstract:
Oxidatively induced DNA lesions have been implicated in the etiology of many diseases (including cancer) and in aging. Repair of oxidatively damaged bases in all organisms occurs primarily via the DNA base excision repair (BER) pathway, initiated with their excision by DNA glycosylases. Only two mammalian DNA glycosylases, OGG1 and NTH1 of E. coli Nth family, were previously characterized, which excise majority of the oxidatively damaged base lesions. We recently discovered and characterized two human orthologs of E. coli Nei, the prototype of the second family of oxidized base-specific glycosylases and named them NEIL (Nei-like)-1 and 2. NEILs are distinct from NTH1 and OGG1 in structural features and reaction mechanism but act on many of the same substrates. Nth-type DNA glycosylases after base excision, cleave the DNA strand at the resulting AP-site to produce a 3'-alphabeta unsaturated aldehyde whereas Nei-type enzymes produce 3'-phosphate terminus. E. coli APEs efficiently remove both types of termini in addition to cleaving AP sites to generate 3'-OH, the primer terminus for subsequent DNA repair synthesis. In contrast, the mammalian APE, APE1, which has an essential role in NTH1/OGG1-initiated BER, has negligible 3'-phosphatase activity and is dispensable for NEIL-initiated BER. Polynucleotide kinase (PNK), present in mammalian cells but not in E. coli, removes the 3' phosphate, and is involved in NEIL-initiated BER. NEILs show a unique preference for excising lesions from a DNA bubble, while most DNA glycosylases, including OGG1 and NTH1, are active only with duplex DNA. The dichotomy in the preference of NEILs and NTH1/OGG1 for bubble versus duplex DNA substrates suggests that NEILs function preferentially in repair of base lesions during replication and/or transcription and hence play a unique role in maintaining the functional integrity of mammalian genomes.
Insights
Scientists discovered two new human DNA repair enzymes, NEIL1 and NEIL2, crucial for fixing oxidative DNA damage during replication and transcription. These enzymes play a unique role in maintaining genome integrity, distinct from previously known repair pathways.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Oxidative DNA damage contributes to diseases like cancer and aging.
- The Base Excision Repair (BER) pathway, initiated by DNA glycosylases, repairs most oxidative lesions.
- Mammalian DNA repair previously characterized OGG1 and NTH1, leaving other repair mechanisms unexplored.
Purpose of the Study:
- To discover and characterize novel mammalian DNA glycosylases involved in repairing oxidative DNA damage.
- To elucidate the distinct mechanisms and substrate specificities of these newly identified enzymes compared to known glycosylases.
- To understand the role of these enzymes in maintaining genomic stability during DNA replication and transcription.
Main Methods:
- Discovery and characterization of human NEIL1 and NEIL2 DNA glycosylases.
- Comparative analysis of substrate specificity and reaction mechanisms with OGG1 and NTH1.
- Investigation of DNA repair pathway involvement, including the role of APE1 and polynucleotide kinase (PNK).
- Assessment of enzyme activity on different DNA structures (duplex vs. DNA bubble).
Main Results:
- Identified and characterized human NEIL1 and NEIL2, orthologs of E. coli Nei.
- NEILs exhibit distinct structural and mechanistic features from OGG1/NTH1, processing substrates to yield a 3'-phosphate terminus.
- Mammalian APE1 is dispensable for NEIL-initiated BER, unlike its role in OGG1/NTH1-initiated BER; PNK is crucial for NEIL-initiated repair.
- NEILs preferentially excise lesions from DNA bubbles, while OGG1/NTH1 act on duplex DNA.
Conclusions:
- NEIL1 and NEIL2 represent a second family of mammalian oxidized base-specific DNA glycosylases.
- The distinct substrate preferences (DNA bubble vs. duplex) suggest NEILs play a specialized role in repairing DNA damage during replication and transcription.
- NEILs contribute uniquely to maintaining mammalian genome integrity through their specialized DNA repair functions.
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