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Impaired translesion synthesis in xeroderma pigmentosum variant extracts
A M Cordonnier1, A R Lehmann, R P Fuchs
1UPR9003 du CNRS, Cancérogenèse et Mutagenèse Moléculaire et Structurale, ESBS, 67400 Strasbourg, France.
Abstract:
Xeroderma pigmentosum variant (XPV) cells are characterized by a cellular defect in the ability to synthesize intact daughter DNA strands on damaged templates. Molecular mechanisms that facilitate replication fork progression on damaged DNA in normal cells are not well defined. In this study, we used single-stranded plasmid molecules containing a single N-2-acetylaminofluorene (AAF) adduct to analyze translesion synthesis (TLS) catalyzed by extracts of either normal or XPV primary skin fibroblasts. In one of the substrates, the single AAF adduct was located at the 3' end of a run of three guanines that was previously shown to induce deletion of one G by a slippage mechanism. Primer extension reactions performed by normal cellular extracts from four different individuals produced the same distinct pattern of TLS, with over 80% of the products resulting from the elongation of a slipped intermediate and the remaining 20% resulting from a nonslipped intermediate. In contrast, with cellular extracts from five different XPV patients, the TLS reaction was strongly reduced, yielding only low amounts of TLS via the nonslipped intermediate. With our second substrate, in which the AAF adduct was located at the first G in the run, thus preventing slippage from occurring, we confirmed that normal extracts were able to perform TLS 10-fold more efficiently than XPV extracts. These data demonstrate unequivocally that the defect in XPV cells resides in translesion synthesis independently of the slippage process.
Insights
Xeroderma pigmentosum variant (XPV) cells show impaired DNA repair. This study reveals XPV cells have a defect in translesion synthesis (TLS), crucial for replicating damaged DNA, independent of DNA slippage.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Xeroderma pigmentosum variant (XPV) cells exhibit defective DNA synthesis on damaged templates.
- Mechanisms enabling replication fork progression on damaged DNA are not fully understood.
Purpose of the Study:
- To analyze translesion synthesis (TLS) in normal versus XPV cells using a damaged DNA template.
- To elucidate the role of TLS in DNA repair and its relation to DNA slippage in XPV.
Main Methods:
- Utilized single-stranded plasmid DNA with an N-2-acetylaminofluorene (AAF) adduct as a template.
- Performed primer extension assays using cell extracts from normal and XPV primary skin fibroblasts.
Main Results:
- Normal cell extracts efficiently performed TLS, with most products arising from a slipped intermediate.
- XPV cell extracts showed significantly reduced TLS, primarily via a nonslipped intermediate.
- When slippage was prevented, normal extracts were 10-fold more efficient at TLS than XPV extracts.
Conclusions:
- The defect in XPV cells is unequivocally linked to impaired translesion synthesis.
- This TLS defect in XPV is independent of DNA slippage mechanisms.