Targeting RNA-mediated toxicity in C9orf72 ALS and/or FTD by RNAi-based gene therapy

A hexanucleotide GGGGCC expansion in intron 1 of chromosome 9 open reading frame 72 (C9orf72) gene is the most frequent cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). The corresponding repeat-containing sense and antisense transcripts cause a gain of toxicity through...

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Detalhes bibliográficos
Autores: Martier, R. (Raygene)|||/items/8a7eeace-9797-4883-9e4e-2dbe8ebe4336, Liefhebber, J.M. (Jolanda M.)|||/items/7569bd5e-5849-4d5c-862f-a738fff88990, Garcia-Osta, A. (Ana)|||/items/6a828922-d55a-4aca-9dec-ccfb2a7380f8, Miniarikova, J. (Jana)|||/items/ff25392a-6cf6-4202-9dc1-4223233f2b8b, Cuadrado-Tejedor, M. (Mar)|||/items/8e19b277-1821-4ae8-9617-975de11dbdd1, Espelosin, M. (Maria)|||/items/812c7f69-278b-44ac-8c6f-960b4d8dea3e, Ursua, S. (Susana)|||/items/8a8d5ddd-2aaf-44a1-8726-9f86c206113b, Petry, H. (Harald)|||/items/e2e94c6e-2f4b-4e3e-8af8-8896e010dec1, Deventer, S. (Sander) van|||/items/de96719d-a5ab-46ec-906d-89fa310ea3f5, Evers, M.M. (Melvin M.)|||/items/6ec1bcf9-f00e-4dd4-9590-0745084b66c6, Konstantinova, P. (Pavlina)|||/items/360ef41a-53d2-4a09-b297-f683044a977f
Formato: artículo
Fecha de publicación:2019
País:España
Recursos:Universidad de Navarra
Repositorio:Dadun. Depósito Académico Digital de la Universidad de Navarra
Idioma:inglés
OAI Identifier:oai:dadun.unav.edu:10171/63714
Acesso em linha:https://hdl.handle.net/10171/63714
Access Level:acceso abierto
Palavra-chave:C9orf72
ALS
FTD
miRNA
Gene therapy
AAV
Descrição
Resumo:A hexanucleotide GGGGCC expansion in intron 1 of chromosome 9 open reading frame 72 (C9orf72) gene is the most frequent cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). The corresponding repeat-containing sense and antisense transcripts cause a gain of toxicity through the accumulation of RNA foci in the nucleus and deposition of dipeptide-repeat (DPR) proteins in the cytoplasm of the affected cells. We have previously reported on the potential of engineered artificial anti-C9orf72-targeting miRNAs (miC) targeting C9orf72 to reduce the gain of toxicity caused by the repeat-containing transcripts. In the current study, we tested the silencing efficacy of adeno-associated virus (AAV)5-miC in human-derived induced pluripotent stem cell (iPSC) neurons and in an ALS mouse model. We demonstrated that AAV5-miC transduces different types of neuronal cells and can reduce the accumulation of repeat-containing C9orf72 transcripts. Additionally, we demonstrated silencing of C9orf72 in both the nucleus and cytoplasm, which has an added value for the treatment of ALS and/or FTD patients. A proof of concept in an ALS mouse model demonstrated the significant reduction in repeat-containing C9orf72 transcripts and RNA foci after treatment. Taken together, these findings support the feasibility of a gene therapy for ALS and FTD based on the reduction in toxicity caused by the repeat-containing C9orf72 transcripts.