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.

Biochemistry
|January 24, 2013
PubMed

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.

Related Concept Videos

Fixing Double-strand Breaks02:04

Fixing Double-strand Breaks

The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
Fixing Double-strand Breaks02:04

Fixing Double-strand Breaks

The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
Homologous Recombination02:31

Homologous Recombination

The basic reaction of homologous recombination (HR) involves two chromatids that contain DNA sequences sharing a significant stretch of identity. One of these sequences uses a strand from another as a template to synthesize DNA in an enzyme-catalyzed reaction. The final product is a novel amalgamation of the two substrates. To ensure an accurate recombination of sequences, HR is restricted to the S and G2 phases of the cell cycle. At these stages, the DNA has been replicated already and the...
Homologous Recombination02:31

Homologous Recombination

The basic reaction of homologous recombination (HR) involves two chromatids that contain DNA sequences sharing a significant stretch of identity. One of these sequences uses a strand from another as a template to synthesize DNA in an enzyme-catalyzed reaction. The final product is a novel amalgamation of the two substrates. To ensure an accurate recombination of sequences, HR is restricted to the S and G2 phases of the cell cycle. At these stages, the DNA has been replicated already and the...
Translesion DNA Polymerases02:10

Translesion DNA Polymerases

Translesion (TLS) polymerases rescue stalled DNA polymerases at sites of damaged bases by replacing the replicative polymerase and installing a nucleotide across the damaged site. Doing so, TLS allows additional time for the cell to repair the damage before resuming regular DNA replication.
TLS polymerases are found in all three domains of life - archaea, bacteria, and eukaryotes. Of the different classes of TLS polymerases, members of the Y family are fitted with specialized structures that...
Mismatch Repair01:36

Mismatch Repair

Overview