Remodelling of skeletal muscle myosin metabolic states in hibernating mammals

Author:

Lewis Christopher T. A.1ORCID,Melhedegaard Elise G.1,Ognjanovic Marija M.1,Olsen Mathilde S.1,Laitila Jenni1,Seaborne Robert A. E.12ORCID,Grønset Magnus Nørregaard3,Zhang Chengxin4ORCID,Iwamoto Hiroyuki5ORCID,Hessel Anthony L.67,Kuehn Michel N.67,Merino Carla8,Amigó Nuria8,Fröbert Ole910,Giroud Sylvain1112,Staples James F.13,Goropashnaya Anna V.14,Fedorov Vadim B.14,Barnes Brian M.14,Tøien Øivind14,Drew Kelly L.14,Sprenger Ryan J.15,Ochala Julien1ORCID

Affiliation:

1. Department of Biomedical Sciences, University of Copenhagen

2. Centre for Human and Applied Physiological Sciences, Faculty of Life Sciences & Medicine, King’s College London

3. Department of Cellular and Molecular Medicine, University of Copenhagen

4. Department of Computational Medicine and Bioinformatics, University of Michigan

5. Spring-8, Japan Synchrotron Radiation Research Institute

6. Institute of Physiology II, University of Muenster

7. Accelerated Muscle Biotechnologies Consultants

8. Biosfer Teslab

9. Department of Clinical Medicine, Faculty of Health, Aarhus University

10. Faculty of Health, Department of Cardiology, Örebro University

11. Energetics Lab, Department of Biology, Northern Michigan University

12. Research Institute of Wildlife Ecology, Department of Interdisciplinary Life Sciences, University of Veterinary Medicine Vienna

13. Department of Biology, University of Western Ontario

14. Center for Transformative Research in Metabolism, Institute of Arctic Biology, University of Alaska Fairbanks

15. Department of Zoology, University of British Columbia

Abstract

Hibernation is a period of metabolic suppression utilized by many small and large mammal species to survive during winter periods. As the underlying cellular and molecular mechanisms remain incompletely understood, our study aimed to determine whether skeletal muscle myosin and its metabolic efficiency undergo alterations during hibernation to optimize energy utilization. We isolated muscle fibers from small hibernators, Ictidomys tridecemlineatus and Eliomys quercinus and larger hibernators, Ursus arctos and Ursus americanus . We then conducted loaded Mant-ATP chase experiments alongside X-ray diffraction to measure resting myosin dynamics and its ATP demand. In parallel, we performed multiple proteomics analyses. Our results showed a preservation of myosin structure in U. arctos and U. americanus during hibernation, whilst in I. tridecemlineatus and E. quercinus , changes in myosin metabolic states during torpor unexpectedly led to higher levels in energy expenditure of type II, fast-twitch muscle fibers at ambient lab temperatures (20°C). Upon repeating loaded Mant-ATP chase experiments at 8°C (near the body temperature of torpid animals), we found that myosin ATP consumption in type II muscle fibers was reduced by 77-107% during torpor compared to active periods. Additionally, we observed Myh2 hyper-phosphorylation during torpor in I. tridecemilineatus , which was predicted to stabilize the myosin molecule. This may act as a potential molecular mechanism mitigating myosin-associated increases in skeletal muscle energy expenditure during periods of torpor in response to cold exposure. Altogether, we demonstrate that resting myosin is altered in hibernating mammals, contributing to significant changes to the ATP consumption of skeletal muscle. Additionally, we observe that it is further altered in response to cold exposure and highlight myosin as a potentially contributor to skeletal muscle non-shivering thermogenesis.

Publisher

eLife Sciences Publications, Ltd

Reference90 articles.

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2. Renal adaptation during hibernation;Am J Physiol Renal Physiol,2013

3. Hibernation and Gas Exchange, in Comprehensive Physiology . p. 397-420

4. Changes in CO2 sensitivity during entrance into, and arousal from hibernation in Ictidomys tridecemlineatus;Journal of Comparative Physiology B,2022

5. Lipid Metabolism in Hibernators: The Importance of Essential Fatty Acids1;FLORANT, G.L;American Zoologist,2015

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