| Literature DB >> 32375043 |
Tiffany W Todd1, Zachary T McEachin2, Jeannie Chew1, Alexander R Burch1, Karen Jansen-West1, Jimei Tong1, Mei Yue1, Yuping Song1, Monica Castanedes-Casey1, Aishe Kurti1, Judith H Dunmore1, John D Fryer1, Yong-Jie Zhang1, Beatriz San Millan3, Susana Teijeira Bautista3, Manuel Arias4, Dennis Dickson1, Tania F Gendron1, María-Jesús Sobrido5, Matthew D Disney6, Gary J Bassell2, Wilfried Rossoll7, Leonard Petrucelli8.
Abstract
A G4C2 hexanucleotide repeat expansion in an intron of C9orf72 is the most common cause of frontal temporal dementia and amyotrophic lateral sclerosis (c9FTD/ALS). A remarkably similar intronic TG3C2 repeat expansion is associated with spinocerebellar ataxia 36 (SCA36). Both expansions are widely expressed, form RNA foci, and can undergo repeat-associated non-ATG (RAN) translation to form similar dipeptide repeat proteins (DPRs). Yet, these diseases result in the degeneration of distinct subsets of neurons. We show that the expression of these repeat expansions in mice is sufficient to recapitulate the unique features of each disease, including this selective neuronal vulnerability. Furthermore, only the G4C2 repeat induces the formation of aberrant stress granules and pTDP-43 inclusions. Overall, our results demonstrate that the pathomechanisms responsible for each disease are intrinsic to the individual repeat sequence, highlighting the importance of sequence-specific RNA-mediated toxicity in each disorder.Entities:
Keywords: ALS; C9orf72; FTD; RAN translation; RNA foci; SCA36; TDP-43; mouse; poly(GP); poly(PR)
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Year: 2020 PMID: 32375043 PMCID: PMC7480900 DOI: 10.1016/j.celrep.2020.107616
Source DB: PubMed Journal: Cell Rep Impact factor: 9.995