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Benzow, K.

Publications and source records attributed to Benzow, K..

3 recordsLinked to original sources

MAPT Splicing Modulators as a Therapeutic Strategy for Tauopathies

Tauopathies are neurodegenerative diseases characterized by the abnormal accumulation of microtubule-associated protein tau (MAPT) in the brain. These disorders, like frontotemporal dementia (FTD-Tau), currently lack effective therapies and can occur sporadically or be inherited when associated with MAPT gene mutations. The MAPT gene region encompassing exon 10 and adjacent introns is a hotspot for pathogenic variants, including splicing mutations that enhance exon 10 inclusion and increase 4R tau expression, and gain-of-function mutations that generate aggregation-prone mutant 4R tau protein. For these 4R-specific tauopathies, a targeted mRNA splicing approach that promotes exon 10 exclusion may offer therapeutic benefit. In this study, we discovered novel splicing modulator compounds (SMCs) that promote MAPT exon 10 exclusion, and demonstrated their efficacy in FTD patient-derived neuronal models carrying the tau-P301L gain-of-function mutation or the tau-S305N splicing mutation. Treatment with SMC reduced 4R tau expression and decreased the accumulation of hyperphosphorylated tau (pTau), oligomeric and insoluble tau, thereby rescuing tau-associated neuronal toxicity. Importantly, our lead SMC corrected the 3R/4R splice ratio in vivo and significantly reduced pTau in the brain of a gene- replacement (GR) mouse model expressing the human tau-N279K splicing mutation. These findings support the therapeutic potential of this class of small molecules and establish MAPT pre- mRNA splicing modulation as a promising strategy for the treatment of 4R tauopathies. One Sentence SummaryDiscovery of SMCs that correct MAPT splicing, reduce 4R tau, and rescue pathology in patient- derived neuronal and in vivo models of 4R tauopathies.

neuroscience↗

A common Alu element insertion in the 3'UTR of TMEM106B is associated with an increased risk of dementia

Sequence variants in TMEM106B have been associated with an increased risk of developing several different types of dementia. As part of our efforts to generate a set of mouse lines in which we replaced the mouse Tmem106b gene with a human TMEM106B gene comprised of either a risk or protective haplotype, we conducted an in-depth sequence analysis of these alleles. We identified an AluYb8 insertion in the 3 untranslated region (3UTR) of the TMEM106B risk haplotype. We analyzed transcribed TMEM106B sequences using RNA-seq data available through the AD Knowledge portal and full genome sequences from the 1000Genomes databases and found that every risk allele analyzed shares this same AluYb8 insertion. The allele frequency of the risk haplotype ranges from 26% to 60% in the populations examined, and the balance of the alleles in each population is the protective haplotype. The primary sequence features of both haplotypes are distinct from the variants found in other primates. We conclude that the risk haplotype arose early in human development with a single Alu-insertion event within a unique haplotype context. Together these two non-ancestral allele variant types now appear to constitute the vast majority of the TMEM106B alleles but neither has come to fully predominate in any modern human population.

genetics↗

Regional vulnerability in a neurodegenerative disease: Delineating SCA1 CNS and muscle therapeutic targets using a conditional mutant ATXN1 mouse

Spinocerebellar ataxia type 1 (SCA1) is a fatal neurodegenerative disease caused by an expanded polyglutamine tract in the widely expressed ATXN1 protein. To elucidate anatomical regions and cell types that underlie mutant ATXN1-induced disease phenotypes, we developed a floxed conditional knockout mouse model (f-ATXN1146Q/2Q) having mouse Atxn1 coding exons replaced by human exons encoding 146 glutamines. F-ATXN1146Q/2Q mice manifest SCA1-like phenotypes including motor and cognitive deficits, wasting, and decreased survival. CNS contributions to disease were revealed using ATXN1146Q/2Q;Nestin-Cre mice, that showed improved rotarod, open field and Barnes maze performances. Striatal contributions to motor deficits were examined using f-ATXN1146Q/2Q;Rgs9-Cre mice. Mice lacking striatal ATXN1146Q/2Q had improved rotarod performance late in disease. Muscle contributions to disease were revealed in f-ATXN1146Q/2Q;ACTA1-Cre mice which lacked muscle pathology and kyphosis seen in f-ATXN1146Q/2Q mice. Kyphosis was not improved in f-ATXN1146Q/2Q;Nestin-Cre mice. Thus, optimal SCA1 therapeutics will require targeting mutant ATXN1 toxic actions in multiple brain regions and muscle.

neuroscience↗