PUBLICATION

Increased oxidative metabolism and myoglobin expression in zebrafish muscle during chronic hypoxia

Authors
Jaspers, R.T., Testerink, J., Della Gaspera, B., Chanoine, C., Bagowski, C.P., van der Laarse, W.J.
ID
ZDB-PUB-140728-5
Date
2014
Source
Biology Open   3(8): 718-27 (Journal)
Registered Authors
Bagowski, Christoph P.
Keywords
Acclimation, Acclimatization, Adaptation, Capillarization, Chronic hypoxia, Critical oxygen tension, Endurance, Hypertrophy, Mitochondrial density, Myoglobin, Skeletal muscle
MeSH Terms
none
PubMed
25063194 Full text @ Biol. Open
Abstract
Fish may be extremely hypoxia resistant. We investigated how muscle fibre size and oxidative capacity in zebrafish (Danio rerio) adapt during severe chronic hypoxia. Zebrafish were kept for either 3 or 6 weeks under chronic constant hypoxia (CCH) (10% air/90%N2 saturated water). We analyzed cross-sectional area (CSA), succinate dehydrogenase (SDH) activity, capillarization, myonuclear density, myoglobin (Mb) concentration and Mb mRNA expression of high and low oxidative muscle fibres. After 3 weeks of CCH, CSA, SDH activity, Mb concentration, capillary and myonuclear density of both muscle fibre types were similar as under normoxia. In contrast, staining intensity for Mb mRNA of hypoxic high oxidative muscle fibres was 94% higher than that of normoxic controls (P<0.001). Between 3 and 6 weeks of CCH, CSA of high and low oxidative muscle fibres increased by 25 and 30%, respectively. This was similar to normoxic controls. Capillary and myonuclear density were not changed by CCH. However, in high oxidative muscle fibres of fish maintained under CCH, SDH activity, Mb concentration as well as Mb mRNA content were higher by 86%, 138% and 90%, respectively, than in muscle fibres of fish kept under normoxia (P<0.001). In low oxidative muscle fibres, SDH activity, Mb and Mb mRNA content were not significantly changed. Under normoxia, the calculated interstitial oxygen tension required to prevent anoxic cores in muscle fibres (PO2crit) of high oxidative muscle fibres was between 1.0 and 1.7 mmHg. These values were similar at 3 and 6 weeks CCH. We conclude that high oxidative skeletal muscle fibres of zebrafish continue to grow and increase oxidative capacity during CCH. Oxygen supply to mitochondria in these fibres may be facilitated by an increased Mb concentration, which is regulated by an increase in Mb mRNA content per myonucleus.
Genes / Markers
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Mutations / Transgenics
Human Disease / Model
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