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Interconverting conformations of slipped-DNA junctions formed by trinucleotide repeats affect repair outcome
Meghan M Slean1, Kaalak Reddy, Bin Wu
1Program of Genetics and Genome Biology, The Hospital for Sick Children, Toronto, Ontario, Canada.
Abstract:
Expansions of (CTG)·(CAG) repeated DNAs are the mutagenic cause of 14 neurological diseases, likely arising through the formation and processing of slipped-strand DNAs. These transient intermediates of repeat length mutations are formed by out-of-register mispairing of repeat units on complementary strands. The three-way slipped-DNA junction, at which the excess repeats slip out from the duplex, is a poorly understood feature common to these mutagenic intermediates. Here, we reveal that slipped junctions can assume a surprising number of interconverting conformations where the strand opposite the slip-out either is fully base paired or has one or two unpaired nucleotides. These unpaired nucleotides can also arise opposite either of the nonslipped junction arms. Junction conformation can affect binding by various structure-specific DNA repair proteins and can also alter correct nick-directed repair levels. Junctions that have the potential to contain unpaired nucleotides are repaired with a significantly higher efficiency than constrained fully paired junctions. Surprisingly, certain junction conformations are aberrantly repaired to expansion mutations: misdirection of repair to the non-nicked strand opposite the slip-out leads to integration of the excess slipped-out repeats rather than their excision. Thus, slipped-junction structure can determine whether repair attempts lead to correction or expansion mutations.
Insights
DNA repeat expansions cause neurological diseases via slipped-strand DNA intermediates. Junction structure influences repair, sometimes leading to expansion mutations instead of correction.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Expansions of (CTG)·(CAG) DNA repeats are implicated in 14 neurological diseases.
- These expansions are thought to arise from slipped-strand DNA intermediates, which involve out-of-register mispairing of DNA repeat units.
Purpose of the Study:
- To investigate the structural conformations of three-way slipped-DNA junctions.
- To understand how junction conformation influences DNA repair pathways and mutation outcomes.
Main Methods:
- Analysis of slipped-DNA junction structures and their interconverting conformations.
- Assessment of the impact of junction conformation on DNA repair protein binding and repair efficiency.
Main Results:
- Slipped junctions exhibit multiple conformations, including those with unpaired nucleotides opposite the slipped-out repeats or junction arms.
- Junction conformation affects repair protein interactions and nick-directed repair levels.
- Junctions with potential unpaired nucleotides are repaired more efficiently.
- Specific junction conformations can be aberrantly repaired, leading to expansion mutations.
Conclusions:
- Slipped-DNA junction structure is a critical determinant of repair outcomes.
- Aberrant repair of specific junction conformations can result in repeat expansions, contributing to neurological disease pathogenesis.
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