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1.
Brain ; 147(5): 1784-1798, 2024 May 03.
Article En | MEDLINE | ID: mdl-38387080

The Huntington's disease mutation is a CAG repeat expansion in the huntingtin gene that results in an expanded polyglutamine tract in the huntingtin protein. The CAG repeat is unstable and expansions of hundreds of CAGs have been detected in Huntington's disease post-mortem brains. The age of disease onset can be predicted partially from the length of the CAG repeat as measured in blood. Onset age is also determined by genetic modifiers, which in six cases involve variation in DNA mismatch repair pathways genes. Knocking-out specific mismatch repair genes in mouse models of Huntington's disease prevents somatic CAG repeat expansion. Taken together, these results have led to the hypothesis that somatic CAG repeat expansion in Huntington's disease brains is required for pathogenesis. Therefore, the pathogenic repeat threshold in brain is longer than (CAG)40, as measured in blood, and is currently unknown. The mismatch repair gene MSH3 has become a major focus for therapeutic development, as unlike other mismatch repair genes, nullizygosity for MSH3 does not cause malignancies associated with mismatch repair deficiency. Potential treatments targeting MSH3 currently under development include gene therapy, biologics and small molecules, which will be assessed for efficacy in mouse models of Huntington's disease. The zQ175 knock-in model carries a mutation of approximately (CAG)185 and develops early molecular and pathological phenotypes that have been extensively characterized. Therefore, we crossed the mutant huntingtin allele onto heterozygous and homozygous Msh3 knockout backgrounds to determine the maximum benefit of targeting Msh3 in this model. Ablation of Msh3 prevented somatic expansion throughout the brain and periphery, and reduction of Msh3 by 50% decreased the rate of expansion. This had no effect on the deposition of huntingtin aggregation in the nuclei of striatal neurons, nor on the dysregulated striatal transcriptional profile. This contrasts with ablating Msh3 in knock-in models with shorter CAG repeat expansions. Therefore, further expansion of a (CAG)185 repeat in striatal neurons does not accelerate the onset of molecular and neuropathological phenotypes. It is striking that highly expanded CAG repeats of a similar size in humans cause disease onset before 2 years of age, indicating that somatic CAG repeat expansion in the brain is not required for pathogenesis. Given that the trajectory for somatic CAG expansion in the brains of Huntington's disease mutation carriers is unknown, our study underlines the importance of administering treatments targeting somatic instability as early as possible.


Huntingtin Protein , Huntington Disease , Trinucleotide Repeat Expansion , Huntington Disease/genetics , Huntington Disease/therapy , Animals , Humans , Trinucleotide Repeat Expansion/genetics , Mice , Huntingtin Protein/genetics , MutS Homolog 3 Protein/genetics , Disease Models, Animal , Nerve Tissue Proteins/genetics , Brain/pathology , Brain/metabolism
2.
Cell Rep ; 36(9): 109649, 2021 08 31.
Article En | MEDLINE | ID: mdl-34469738

CAG repeat expansion in the HTT gene drives Huntington's disease (HD) pathogenesis and is modulated by DNA damage repair pathways. In this context, the interaction between FAN1, a DNA-structure-specific nuclease, and MLH1, member of the DNA mismatch repair pathway (MMR), is not defined. Here, we identify a highly conserved SPYF motif at the N terminus of FAN1 that binds to MLH1. Our data support a model where FAN1 has two distinct functions to stabilize CAG repeats. On one hand, it binds MLH1 to restrict its recruitment by MSH3, thus inhibiting the assembly of a functional MMR complex that would otherwise promote CAG repeat expansion. On the other hand, it promotes accurate repair via its nuclease activity. These data highlight a potential avenue for HD therapeutics in attenuating somatic expansion.


Brain/enzymology , DNA Damage , DNA Mismatch Repair , Endodeoxyribonucleases/metabolism , Exodeoxyribonucleases/metabolism , Huntingtin Protein/genetics , Huntington Disease/enzymology , Multifunctional Enzymes/metabolism , MutL Protein Homolog 1/metabolism , Trinucleotide Repeat Expansion , Animals , Binding, Competitive , Brain/pathology , Cell Line, Tumor , Endodeoxyribonucleases/genetics , Exodeoxyribonucleases/genetics , HEK293 Cells , Humans , Huntingtin Protein/metabolism , Huntington Disease/genetics , Huntington Disease/pathology , Mice , Multifunctional Enzymes/genetics , MutL Protein Homolog 1/genetics , MutS Homolog 3 Protein/genetics , MutS Homolog 3 Protein/metabolism , Protein Binding , Protein Interaction Domains and Motifs
3.
Sci Signal ; 11(537)2018 07 03.
Article En | MEDLINE | ID: mdl-29970601

Neurons modulate gene expression in response to extrinsic signals to enable brain development, cognition, and learning and to process stimuli that regulate systemic physiological functions. This signal-to-gene communication is facilitated by posttranslational modifications such as S-nitrosylation, the covalent attachment of a nitric oxide (NO) moiety to cysteine thiols. In the cerebral cortex, S-nitrosylation of histone deacetylase 2 (HDAC2) is required for gene transcription during neuronal development, but few other nuclear targets of S-nitrosylation have been identified to date. We used S-nitrosothiol resin-assisted capture on NO donor-treated nuclear extracts from rat cortical neurons and identified 614 S-nitrosylated nuclear proteins. Of these, 131 proteins have not previously been shown to be S-nitrosylated in any system, and 555 are previously unidentified targets of S-nitrosylation in neurons. The sites of S-nitrosylation were identified for 59% of the targets, and motifs containing single lysines were found at 33% of these sites. In addition, lysine motifs were necessary for promoting the S-nitrosylation of HDAC2 and methyl-CpG binding protein 3 (MBD3). Moreover, S-nitrosylation of the histone-binding protein RBBP7 was necessary for dendritogenesis of cortical neurons in culture. Together, our findings characterize S-nitrosylated nuclear proteins in neurons and identify S-nitrosylation motifs that may be shared with other targets of NO signaling.


Cerebral Cortex/metabolism , Dendrites/physiology , Neurons/metabolism , Nitric Oxide/metabolism , Nuclear Proteins/metabolism , Protein Processing, Post-Translational , Proteome/analysis , Animals , Cerebral Cortex/cytology , Embryo, Mammalian/cytology , Embryo, Mammalian/metabolism , Female , Neurons/cytology , Pregnancy , Rats , Rats, Sprague-Dawley
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