Altered skeletal muscle glucose-fatty acid flux in amyotrophic lateral sclerosis

Author:

Steyn Frederik J1234,Li Rui15,Kirk Siobhan E5,Tefera Tesfaye W5,Xie Teresa Y1,Tracey Timothy J5,Kelk Dean5,Wimberger Elyse5,Garton Fleur C6,Roberts Llion78,Chapman Sarah E9,Coombes Jeff S7,Leevy W Matthew9,Ferri Alberto1011,Valle Cristiana1011,René Frédérique1213,Loeffler Jean-Philippe1213,McCombe Pamela A234,Henderson Robert D234,Ngo Shyuan T234514

Affiliation:

1. School of Biomedical Sciences, The University of Queensland, St Lucia, Brisbane, Australia

2. Centre for Clinical Research, The University of Queensland, Herston, Brisbane, Australia

3. Department of Neurology, Royal Brisbane & Women’s Hospital, Brisbane, Australia

4. Wesley Medical Research, Level 8 East Wing, The Wesley Hospital, Queensland, Australia

5. The Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, St Lucia, Brisbane, Australia

6. Institute for Molecular Bioscience, The University of Queensland, St Lucia, Brisbane, Australia

7. School of Human Movements and Nutrition Sciences, The University of Queensland, St Lucia, Brisbane, Australia

8. School of Allied Health Sciences, Griffith University, Gold Coast, Australia

9. Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana, USA

10. IRCCS Fondazione Santa Lucia, Rome, Italy

11. National Research Council, Institute of Translational Pharmacology (IFT), Rome, Italy

12. INSERM, U1118, Mécanismes Centraux et Périphériques de la Neurodégénérescence, Strasbourg, France

13. Université de Strasbourg, UMRS1118, Strasbourg, France

14. Queensland Brain Institute, The University of Queensland, St Lucia, Brisbane, Australia

Abstract

Abstract Amyotrophic lateral sclerosis is characterized by the degeneration of upper and lower motor neurons, yet an increasing number of studies in both mouse models and patients with amyotrophic lateral sclerosis suggest that altered metabolic homeostasis is also a feature of disease. Pre-clinical and clinical studies have shown that modulation of energy balance can be beneficial in amyotrophic lateral sclerosis. However, the capacity to target specific metabolic pathways or mechanisms requires detailed understanding of metabolic dysregulation in amyotrophic lateral sclerosis. Here, using the SOD1G93A mouse model of amyotrophic lateral sclerosis, we demonstrate that an increase in whole-body metabolism occurs at a time when glycolytic muscle exhibits an increased dependence on fatty acid oxidation. Using myotubes derived from muscle of amyotrophic lateral sclerosis patients, we also show that increased dependence on fatty acid oxidation is associated with increased whole-body energy expenditure. In the present study, increased fatty acid oxidation was associated with slower disease progression. However, within the patient cohort there was considerable heterogeneity in whole-body metabolism and fuel oxidation profiles. Thus, future studies that decipher specific metabolic changes at an individual patient level are essential for the development of treatments that aim to target metabolic pathways in amyotrophic lateral sclerosis.

Publisher

Oxford University Press (OUP)

Subject

General Earth and Planetary Sciences,General Environmental Science

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