4.5 Article

Impaired mitochondrial oxidative phosphorylation in the peroxisomal disease X-linked adrenoleukodystrophy

期刊

HUMAN MOLECULAR GENETICS
卷 22, 期 16, 页码 3296-3305

出版社

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddt186

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资金

  1. European Commission [FP7-241622]
  2. European Leukodystrophy Association [ELA2009-036C5, ELA2008-040C4]
  3. Spanish Institute for Health Carlos III [FIS PI080991, FIS PI11/01043, CP11/00080]
  4. Autonomous Government of Catalonia [2009SGR85, 2009SGR735]
  5. COST action [BM0604]
  6. Spanish Ministry of Science and Innovation [BFU2009-11879/BFI, SAF2008-01896, SAF2011-23636]
  7. Spanish Ministry of Health [PI11/1532]
  8. 'La Caixa' Foundation
  9. European Union
  10. ICREA Funding Source: Custom

向作者/读者索取更多资源

X-linked adrenoleukodystrophy (X-ALD) is an inherited metabolic disorder of the nervous system characterized by axonopathy in spinal cords and/or cerebral demyelination, adrenal insufficiency and accumulation of very long-chain fatty acids (VLCFAs) in plasma and tissues. The disease is caused by malfunction of the ABCD1 gene, which encodes a peroxisomal transporter of VLCFAs or VLCFA-CoA. In the mouse, Abcd1 loss causes late onset axonal degeneration in the spinal cord, associated with locomotor disability resembling the most common phenotype in patients, adrenomyeloneuropathy. We have formerly shown that an excess of the VLCFA C26:0 induces oxidative damage, which underlies the axonal degeneration exhibited by the Abcd1 mice. In the present study, we sought to investigate the noxious effects of C26:0 on mitochondria function. Our data indicate that in X-ALD patients fibroblasts, excess of C26:0 generates mtDNA oxidation and specifically impairs oxidative phosphorylation (OXPHOS) triggering mitochondrial ROS production from electron transport chain complexes. This correlates with impaired complex V phosphorylative activity, as visualized by high-resolution respirometry on spinal cord slices of Abcd1 mice. Further, we identified a marked oxidation of key OXPHOS system subunits in Abcd1 mouse spinal cords at presymptomatic stages. Altogether, our results illustrate some of the mechanistic intricacies by which the excess of a fatty acid targeted to peroxisomes activates a deleterious process of oxidative damage to mitochondria, leading to a multifaceted dysfunction of this organelle. These findings may be of relevance for patient management while unveiling novel therapeutic targets for X-ALD.

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