Imbalanced mitochondrial dynamics contributes to the pathogenesis of X-linked adrenoleukodystrophy

Author:

Launay Nathalie12,Lopez-Erauskin Jone13,Bianchi Patrizia14,Guha Sanjib15,Parameswaran Janani16,Coppa Andrea1,Torreni Lorenzo17,Schlüter Agatha12,Fourcade Stéphane12,Paredes-Fuentes Abraham J8,Artuch Rafael29ORCID,Casasnovas Carlos1210,Ruiz Montserrat12,Pujol Aurora1211

Affiliation:

1. Neurometabolic Diseases Laboratory, Institute of Neuropathology, IDIBELL , 08908 L’Hospitalet de Llobregat, Barcelona , Spain

2. CIBERER, Centro de Investigación Biomédica en Red de Enfermedades Raras, ISCIII , 28029 Madrid , Spain

3. Department of Cellular and Molecular Medicine, Ludwig Institute for Cancer Research, University of California at San Diego , La Jolla, CA 92093 , USA

4. Physiology and Immunology, Facultat de Medicina, Institut de Neurociències and Department of Cell Biology, Universitat Autònoma de Barcelona , 08193 Bellaterra , Spain

5. Nautilus Biotechnology , San Carlos, CA 94070 , USA

6. Department of Cell Biology, Emory University , Atlanta, GA 30322 , USA

7. Programa de Doctorat en Biomedicina, Universitat de Barcelona , 08193 Barcelona , Spain

8. Division of Inborn Errors of Metabolism-IBC, Biochemistry and Molecular Genetics Department, Hospital Clínic de Barcelona , 08028 Barcelona , Spain

9. Clinical Biochemistry Department, Institut de Recerca Sant Joan de Déu, Hospital Sant Joan de Déu , 08950 Barcelona , Spain

10. Neuromuscular Unit, Neurology Department, Bellvitge University Hospital, Universitat de Barcelona , 08907 Lhospitalet de Llobregat, Barcelona , Spain

11. Catalan Institution of Research and Advanced Studies (ICREA) , 08010 Barcelona , Spain

Abstract

Abstract The peroxisomal disease adrenoleukodystrophy (X-ALD) is caused by loss of the transporter of very-long-chain fatty acids (VLCFAs), ABCD1. An excess of VLCFAs disrupts essential homeostatic functions crucial for axonal maintenance, including redox metabolism, glycolysis and mitochondrial respiration. As mitochondrial function and morphology are intertwined, we set out to investigate the role of mitochondrial dynamics in X-ALD models. Using quantitative 3D transmission electron microscopy, we revealed mitochondrial fragmentation in corticospinal axons in Abcd1− mice. In patient fibroblasts, an excess of VLCFAs triggers mitochondrial fragmentation through the redox-dependent phosphorylation of DRP1 (DRP1S616). The blockade of DRP1-driven fission by the peptide P110 effectively preserved mitochondrial morphology. Furthermore, mRNA inhibition of DRP1 not only prevented mitochondrial fragmentation but also protected axonal health in a Caenorhabditis elegans model of X-ALD, underscoring DRP1 as a potential therapeutic target. Elevated levels of circulating cell-free mtDNA in patients’ CSF align this leukodystrophy with primary mitochondrial disorders. Our findings underscore the intricate interplay between peroxisomal dysfunction, mitochondrial dynamics and axonal integrity in X-ALD, shedding light on potential avenues for therapeutic intervention.

Funder

Centro de Investigación biomedica en Red- Enfermedades Rares

Instituto de Salud Carlos III

European Regional Development Fund

Centro de Investigación biomedica en REd- Enfermedades Rares

Generalitat de Catalunya

Publisher

Oxford University Press (OUP)

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