Hyperbaric oxygen treatment reveals spatiotemporal OXPHOS plasticity in the porcine heart

Author:

Heidler Juliana12ORCID,Cabrera-Orefice Alfredo1ORCID,Wittig Ilka1,Heyne Estelle3ORCID,Tomczak Jan-Niklas1,Petersen Bjoern4ORCID,Henze Dirk5,Pohjoismäki Jaakko L O6ORCID,Szibor Marten37ORCID

Affiliation:

1. Functional Proteomics, Institute of Cardiovascular Physiology, Faculty of Medicine, Goethe University Frankfurt , 60590 Frankfurt am Main , Germany

2. Experimental Vascular Surgery, University Clinic of Vascular Surgery, Innsbruck Medical University , 6020 Innsbruck , Austria

3. Department of Cardiothoracic Surgery, Center for Sepsis Control and Care (CSCC), Jena University Hospital, Friedrich Schiller University of Jena , 07747 Jena , Germany

4. Institute of Farm Animal Genetics, Friedrich-Loeffler-Institute (FLI) , 31535 Mariensee , Germany

5. Praxis für Anästhesiologie, Dr. Henze & Partner GbR , 06116 Halle (Saale) , Germany

6. Department of Environmental and Biological Sciences, University of Eastern Finland , 80101 Joensuu , Finland

7. Faculty of Medicine and Health Technology, Tampere University , 33014 Tampere , Finland

Abstract

Abstract Cardiomyocytes meet their high ATP demand almost exclusively by oxidative phosphorylation (OXPHOS). Adequate oxygen supply is an essential prerequisite to keep OXPHOS operational. At least two spatially distinct mitochondrial subpopulations facilitate OXPHOS in cardiomyocytes, i.e. subsarcolemmal (SSM) and interfibrillar mitochondria (IFM). Their intracellular localization below the sarcolemma or buried deep between the sarcomeres suggests different oxygen availability. Here, we studied SSM and IFM isolated from piglet hearts and found significantly lower activities of electron transport chain enzymes and F1FO-ATP synthase in IFM, indicative for compromised energy metabolism. To test the contribution of oxygen availability to this outcome, we ventilated piglets under hyperbaric hyperoxic (HBO) conditions for 240 min. HBO treatment raised OXPHOS enzyme activities in IFM to the level of SSM. Complexome profiling analysis revealed that a high proportion of the F1FO-ATP synthase in the IFM was in a disassembled state prior to the HBO treatment. Upon increased oxygen availability, the enzyme was found to be largely assembled, which may account for the observed increase in OXPHOS complex activities. Although HBO also induced transcription of genes involved in mitochondrial biogenesis, a full proteome analysis revealed only minimal alterations, meaning that HBO-mediated tissue remodeling is an unlikely cause for the observed differences in OXPHOS. We conclude that a previously unrecognized oxygen-regulated mechanism endows cardiac OXPHOS with spatiotemporal plasticity that may underlie the enormous metabolic and contractile adaptability of the heart.

Funder

German Federal Ministry of Education and Research

Deutsche Forschungsgemeinschaft

Publisher

Oxford University Press (OUP)

Reference77 articles.

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