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Sathasivam, K.

Publications and source records attributed to Sathasivam, K..

3 recordsLinked to original sources

Mutant HTT protein decreases with CAG repeat expansion: implications for therapeutics and bioassays.

Huntingtons disease is an inherited neurodegenerative disorder caused by a CAG repeat expansion that encodes a polyglutamine tract in the HTT protein. The mutant CAG repeat is unstable and expands in specific brain cells and peripheral tissues throughout life. Genes involved in the DNA mismatch repair pathways, known to act on expansion, have been identified as genetics modifiers, therefore, it is the rate of somatic CAG repeat expansion that drives the age of onset and rate of disease progression. In the context of an expanded CAG repeat, the HTT pre-mRNA can be alternatively processed to generate the HTT1a transcript, that encodes the aggregation prone and highly pathogenic HTT1a protein. This may be a mechanism through which somatic CAG repeat expansion exerts its pathogenic effects, as the longer the CAG repeat, the more HTT1a and HTT1a is produced. The allelic series of knock-in mouse models: HdhQ20, HdhQ50, HdhQ80, HdhQ111, CAG140 and zQ175 with polyQ expansions of 20, 50, 80, 111 140 and [~]190 can be used to model the molecular and cellular consequences of CAG repeat expansion within a single neuron. By western blot of cortical lysates, we found that mutant HTT levels decreased with increasing CAG repeat length; mutant HTT was only 23% and 10% of wild-type levels in CAG140 and zQ175 cortices, respectively. To identify the optimal bioassays for detecting the full-length HTT and HTT1a isoforms, we interrogated the pairwise combinations of seven well-characterized antibodies on both the HTRF and MSD platforms. In total we tested 32 HTRF and 32 MSD assays to detect full-length mutant HTT, HTT1a, total mutant HTT (full-length HTT and HTT1a) and total full-length HTT (mutant and wild type). None of these assays recapitulated the full-length mutant HTT levels as measured by western blot. We recommend using isoform- and species-specific assays that detect either full-length mutant HTT, HTT1a or wild-type HTT as opposed to those that detect more than one isoform simultaneously. Our finding that as the CAG repeat expands, full-length mutant HTT levels decrease, whilst HTT1a and HTT1a levels increase has implications for therapeutic strategies. If mutant HTT levels in cells containing (CAG)200 are only 10% of wild-type, HTT-lowering strategies targeting full-length HTT at sequences 3 to intron 1 HTT will predominantly lower wild-type HTT, as mutant HTT levels in these cells are already depleted. These data support a therapeutic strategy that lowers HTT1a and depletes levels of the HTT1a protein.

neuroscience↗

m6A RNA modification of mHtt intron 1 regulates the generation of Htt1a in Huntington's Disease

Huntingtons disease (HD) is a dominantly inherited neurodegenerative disorder caused by an expanded, somatically unstable CAG repeat in the first exon of the huntingtin gene (HTT). In the presence of an expanded CAG repeat, huntingtin mRNA undergoes an aberrant processing that generates HTT1a transcripts with exon 1 and intron 1 sequences, which encodes the aggregation-prone and pathogenic HTTexon 1 protein. The regulatory mechanisms that contribute to the production of HTT1a are not fully understood. In a previous transcriptome-wide m6A landscape study performed in Hdh+/Q111 knock-in mice, we have found that the proximal region of intron 1 to exon1-intron 1 splice site in Htt RNA is highly modified by m6A. Several pieces of evidence have demonstrated that m6A is involved in RNA processing and splicing. Therefore, in this study we set out to explore the impact of m6A RNA modifications in the generation of Htt1a. We show in the striatum of Hdh+/Q111 mice that m6A is enriched in intronic sequences 5 to the cryptic poly (A) sites (IpA1 and IpA2) at 680 and 1145 bp into intron 1 as well as in Htt1a polyadenylated mRNA. We also verified the presence of specific m6A-modified sites near the 5 exon1-intron1 splice donor site. Intronic HTT m6A methylation was recapitulated in human samples showing a significantly increased methylation ratio in HD putamen post-mortem samples and in HD fibroblast cell lines from pre-symptomatic and symptomatic patients. In order to test the hypothesis that the m6A modification is involved in mutant Htt RNA processing, we performed a pharmacological inhibition of METTL3 and a targeted demethylation of Htt intron 1 in HD cells using a dCas13-ALKBH5 system. We found that Htt1a transcript levels in HD cells are regulated by METTL3 and by methylation status in Htt intron 1. Site-specific manipulation with an RNA editing system resulted in decreased expression levels of Htt1a, which was accompanied by a reduction in DNA damage, a major hallmark in HD. Finally, we propose that m6A methylation in intron 1 is likely dependent on the expanded CAG repeats. These findings provide insight into the role of m6A in the generation of the aberrantly spliced mutant Htt transcripts with important implications for therapeutic strategies.

neuroscience↗

Correlative light and electron microscopy reveals that mutant huntingtin dysregulates the endolysosomal pathway in presymptomatic Huntington's disease

Huntingtons disease (HD) is a late onset, inherited neurodegenerative disorder for which early pathogenic events remain poorly understood. Here we show that mutant exon 1 HTT proteins are recruited to a subset of cytoplasmic aggregates in the cell bodies of neurons in brain sections from presymptomatic HD, but not wild-type, mice. This occurred in a disease stage and polyglutamine-length dependent manner. We successfully adapted a high-resolution correlative light and electron microscopy methodology, originally developed for mammalian and yeast cells, to allow us to correlate light microscopy and electron microscopy images on the same brain section within an accuracy of 100 nm. Using this approach, we identified these recruitment sites as single membrane bound, vesicle-rich endolysosomal organelles, specifically as (i) multivesicular bodies (MVBs), or amphisomes and (ii) autolysosomes or residual bodies. The organelles were often found in close proximity to phagophore-like structures. Immunogold labeling localized mutant HTT to non-fibrillar, electron lucent structures within the lumen of these organelles. In presymptomatic HD, the recruitment organelles were predominantly MVBs/amphisomes, whereas in late-stage HD, there were more autolysosomes or residual bodies. Electron tomograms indicated the fusion of small vesicles with the vacuole within the lumen, suggesting that MVBs develop into residual bodies. We found that markers of MVB-related exocytosis were depleted in presymptomatic mice and throughout the disease course. This suggests that endolysosomal homeostasis has moved away from exocytosis toward lysosome fusion and degradation, in response to the need to clear the chronically aggregating mutant HTT protein, and that this occurs at an early stage in HD pathogenesis.

neuroscience↗