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Novel DNM1L variants impair mitochondrial dynamics through divergent mechanisms

Authors :
Kelsey A Nolden
John M Egner
Jack J Collier
Oliver M Russell
Charlotte L Alston
Megan C Harwig
Michael E Widlansky
Souphatta Sasorith
Inês A Barbosa
Andrew GL Douglas
Julia Baptista
Mark Walker
Deirdre E Donnelly
Andrew A Morris
Hui Jeen Tan
Manju A Kurian
Kathleen Gorman
Santosh Mordekar
Charu Deshpande
Rajib Samanta
Robert McFarland
R Blake Hill
Robert W Taylor
Monika Oláhová
Medical College of Wisconsin [Milwaukee] (MCW)
Newcastle University [Newcastle]
McGill University = Université McGill [Montréal, Canada]
Newcastle Upon Tyne Hospitals NHS Foundation Trust
Physiologie & médecine expérimentale du Cœur et des Muscles [U 1046] (PhyMedExp)
Institut National de la Santé et de la Recherche Médicale (INSERM)-Centre National de la Recherche Scientifique (CNRS)-Université de Montpellier (UM)
Centre Hospitalier Régional Universitaire [Montpellier] (CHRU Montpellier)
King‘s College London
University Hospital Southampton NHS Foundation Trust
University of Southampton
Plymouth University
Belfast City Hospital
Manchester Centre for Genomic Medicine [Manchester, UK] (MCGM)
St Mary's Hospital Manchester-Manchester Academic Health Science Centre (MAHSC)
University of Manchester [Manchester]-University of Manchester [Manchester]-Manchester University NHS Foundation Trust (MFT)-Faculty of Biology, Medicine and Health [Manchester, UK]
University of Manchester [Manchester]
Central Manchester University Hospitals [Manchester, U.K.]
University College of London [London] (UCL)
Children's Health Ireland [Crumlin, Dublin, Ireland] (CHI)
University College Dublin [Dublin] (UCD)
Sheffield Children's NHS Foundation Trust
Guy's and St Thomas' NHS Foundation Trust [London, UK]
University Hospitals Leicester
MORNET, Dominique
Source :
Life Science Alliance, Life Science Alliance, 2022, 5 (12), pp.e202101284. ⟨10.26508/lsa.202101284⟩
Publication Year :
2022
Publisher :
HAL CCSD, 2022.

Abstract

Imbalances in mitochondrial and peroxisomal dynamics are associated with a spectrum of human neurological disorders. Mitochondrial and peroxisomal fission both involve dynamin-related protein 1 (DRP1) oligomerisation and membrane constriction, although the precise biophysical mechanisms by which distinct DRP1 variants affect the assembly and activity of different DRP1 domains remains largely unexplored. We analysed four unreported de novo heterozygous variants in the dynamin-1-like geneDNM1L, affecting different highly conserved DRP1 domains, leading to developmental delay, seizures, hypotonia, and/or rare cardiac complications in infancy. Single-nucleotide DRP1 stalk domain variants were found to correlate with more severe clinical phenotypes, with in vitro recombinant human DRP1 mutants demonstrating greater impairments in protein oligomerisation, DRP1-peroxisomal recruitment, and both mitochondrial and peroxisomal hyperfusion compared to GTPase or GTPase-effector domain variants. Importantly, we identified a novel mechanism of pathogenesis, where a p.Arg710Gly variant uncouples DRP1 assembly from assembly-stimulated GTP hydrolysis, providing mechanistic insight into how assembly-state information is transmitted to the GTPase domain. Together, these data reveal that discrete, pathologicalDNM1Lvariants impair mitochondrial network maintenance by divergent mechanisms.

Details

Language :
English
ISSN :
25751077
Database :
OpenAIRE
Journal :
Life Science Alliance, Life Science Alliance, 2022, 5 (12), pp.e202101284. ⟨10.26508/lsa.202101284⟩
Accession number :
edsair.doi.dedup.....62b8a9c027c7e13c25a6467a334e8cc1