NEK1 haploinsufficiency worsens DNA damage, but not defective ciliogenesis, in C9ORF72 patient-derived iPSC-motoneurons

Author:

Santangelo Serena1,Invernizzi Sabrina1,Sorce Marta Nice2,Casiraghi Valeria1,Peverelli Silvia2,Brusati Alberto3,Colombrita Claudia2,Ticozzi Nicola245,Silani Vincenzo245,Bossolasco Patrizia2,Ratti Antonia12ORCID

Affiliation:

1. Department of Medical Biotechnology and Translational Medicine, Università degli Studi di Milano , Via Fratelli Cervi 93, Segrate, Milan 20054, Italy

2. Department of Neuroscience - Laboratory of Neuroscience, IRCCS Istituto Auxologico Italiano , Via Zucchi 18, Cusano Milanino, Milan 20095, Italy

3. Department of Brain and Behavioral Sciences, University of Pavia , Via Bassi 21, Pavia 27100, Italy

4. “Dino Ferrari” Center , Department of Pathophysiology and Transplantation, , Via Francesco Sforza 35, Milan 20122, Italy

5. Università degli Studi di Milano , Department of Pathophysiology and Transplantation, , Via Francesco Sforza 35, Milan 20122, Italy

Abstract

Abstract The hexanucleotide G4C2 repeat expansion (HRE) in C9ORF72 gene is the major cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD), leading to both loss- and gain-of-function pathomechanisms. The wide clinical heterogeneity among C9ORF72 patients suggests potential modifying genetic and epigenetic factors. Notably, C9ORF72 HRE often co-occurs with other rare variants in ALS/FTD-associated genes, such as NEK1, which encodes for a kinase involved in multiple cell pathways, including DNA damage response and ciliogenesis. In this study, we generated induced pluripotent stem cells (iPSCs) and differentiated motoneurons (iPSC-MNs) from an ALS patient carrying both C9ORF72 HRE and a NEK1 loss-of-function mutation to investigate the biological effect of NEK1 haploinsufficiency on C9ORF72 pathology in a condition of oligogenicity. Double mutant C9ORF72/NEK1 cells showed increased pathological C9ORF72 RNA foci in iPSCs and higher DNA damage levels in iPSC-MNs compared to single mutant C9ORF72 cells, but no effect on DNA damage response. When we analysed the primary cilium, we observed a defective ciliogenesis in C9ORF72 iPSC-MNs which was not worsened by NEK1 haploinsufficiency in the double mutant iPSC-MNs. Altogether, our study shows that NEK1 haploinsufficiency influences differently DNA damage and cilia length, potentially acting as a modifier at biological level in an in vitro ALS patient-derived disease model of C9ORF72 pathology.

Funder

BIBLIOSAN

Italian Ministery of Health

Publisher

Oxford University Press (OUP)

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