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Coupland, L.

Publications and source records attributed to Coupland, L..

2 recordsLinked to original sources

Genetic or pharmacological disruption of the MSH3 Y245/K246 IDL binding pocket slows CAG repeat expansion

Recent genetic studies have shown somatic expansion of the CAG repeat is the key process driving Huntingtons disease (HD) pathogenesis. Recognition of insertion deletion loops (IDLs), lesions prone to form within the CAG repeat, by Muts{beta} (MSH3/MSH2) is thought to be the primary event in the expansion process. This starts a cascade that leads to error prone repair and incorporation of additional CAG units into the repeat. In vitro data shows MSH3 binds IDLs through a DNA binding pocket formed by MSH3 residues Y245/K246. In this study, we investigated the significance of this DNA binding motif in CAG repeat expansion using cell lines harboring long, unstable HTT CAG repeats. Genetic disruption of the MSH3 Y245/K246 motif significantly reduced DNA interaction, exhibited MMR deficiency in a frameshift mutator assay and abrogated repeat expansion in a U2OS cell line expressing mutant HTT exon 1. Pharmacological blockade of this site using a small molecule targeting the DNA binding pocket similarly reduced DNA binding and repeat expansion in a U2OS cell line. Crucially, this molecule also slowed CAG repeat expansion in medium spiny neurons derived from HD patient-iPSCs. Targeting of the MSH3 IDL binding pocket may represent a possible therapeutic strategy.

neuroscience↗

Therapeutic validation of MMR-associated genetic modifiers in a human ex vivo model of Huntington's disease

The pathological huntingtin (HTT) trinucleotide repeat underlying Huntingtons disease (HD) continues to expand throughout life. Repeat length correlates both with earlier age at onset (AaO) and faster progression, making slowing its expansion an attractive therapeutic approach. Genome-wide association studies have identified candidate variants associated with altered AaO and progression, with many found in DNA mismatch repair (MMR) associated genes. We examine whether lowering expression of these genes affects the rate of somatic expansion in human ex vivo models using HD iPSCs and HD iPSC-derived striatal neurons. We have generated a stable CRISPR interference HD iPSC line in which we can specifically and efficiently lower gene expression from a donor carrying over 125 CAG repeats. Lowering expression of each member of the MMR complexes MutS (MSH2, MSH3 & MSH6), MutL (MLH1, PMS1, PMS2 & MLH3) and LIG1 resulted in characteristic MMR deficiencies. Reduced MSH2, MSH3 and MLH1 slowed repeat expansion to the largest degree, while lowering either PMS1, PMS2 and MLH3 slowed it to a lesser degree. These effects were recapitulated in iPSC derived striatal cultures where MutL factor expression was lowered. Here, reducing the expression of MMR factors by CRISPRi to levels typically reached by current therapeutics effectively slows the pathogenic expansion of the HTT CAG repeat tract. We highlight members of the MutL family as potential therapeutic targets to slow repeat expansion with the aim to delay onset and progression of HD, and potentially other repeat expansion disorders exhibiting somatic instability. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/570095v1_ufig1.gif" ALT="Figure 1"> View larger version (64K): org.highwire.dtl.DTLVardef@13da0a4org.highwire.dtl.DTLVardef@fd831corg.highwire.dtl.DTLVardef@1aac392org.highwire.dtl.DTLVardef@de298_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗