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PolyGR and polyPR knock-in mice reveal a conserved neuroprotective extracellular matrix signature in C9orf72ALS/FTD neurons

Authors :
Milioto, Carmelo
Carcolé, Mireia
Giblin, Ashling
Coneys, Rachel
Attrebi, Olivia
Ahmed, Mhoriam
Harris, Samuel S.
Lee, Byung Il
Yang, Mengke
Ellingford, Robert A.
Nirujogi, Raja S.
Biggs, Daniel
Salomonsson, Sally
Zanovello, Matteo
de Oliveira, Paula
Katona, Eszter
Glaria, Idoia
Mikheenko, Alla
Geary, Bethany
Udine, Evan
Vaizoglu, Deniz
Anoar, Sharifah
Jotangiya, Khrisha
Crowley, Gerard
Smeeth, Demelza M.
Adams, Mirjam L.
Niccoli, Teresa
Rademakers, Rosa
van Blitterswijk, Marka
Devoy, Anny
Hong, Soyon
Partridge, Linda
Coyne, Alyssa N.
Fratta, Pietro
Alessi, Dario R.
Davies, Ben
Busche, Marc Aurel
Greensmith, Linda
Fisher, Elizabeth M. C.
Isaacs, Adrian M.
Source :
Nature Neuroscience; 20240101, Issue: Preprints p1-13, 13p
Publication Year :
2024

Abstract

Dipeptide repeat proteins are a major pathogenic feature of C9orf72amyotrophic lateral sclerosis (C9ALS)/frontotemporal dementia (FTD) pathology, but their physiological impact has yet to be fully determined. Here we generated C9orf72dipeptide repeat knock-in mouse models characterized by expression of 400 codon-optimized polyGR or polyPR repeats, and heterozygous C9orf72reduction. (GR)400 and (PR)400 knock-in mice recapitulate key features of C9ALS/FTD, including cortical neuronal hyperexcitability, age-dependent spinal motor neuron loss and progressive motor dysfunction. Quantitative proteomics revealed an increase in extracellular matrix (ECM) proteins in (GR)400 and (PR)400 spinal cord, with the collagen COL6A1 the most increased protein. TGF-β1 was one of the top predicted regulators of this ECM signature and polyGR expression in human induced pluripotent stem cell neurons was sufficient to induce TGF-β1 followed by COL6A1. Knockdown of TGF-β1 or COL6A1 orthologues in polyGR model Drosophilaexacerbated neurodegeneration, while expression of TGF-β1 or COL6A1 in induced pluripotent stem cell-derived motor neurons of patients with C9ALS/FTD protected against glutamate-induced cell death. Altogether, our findings reveal a neuroprotective and conserved ECM signature in C9ALS/FTD.

Details

Language :
English
ISSN :
10976256 and 15461726
Issue :
Preprints
Database :
Supplemental Index
Journal :
Nature Neuroscience
Publication Type :
Periodical
Accession number :
ejs65656901
Full Text :
https://doi.org/10.1038/s41593-024-01589-4