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Hypoxia-acclimation adjusts skeletal muscle anaerobic metabolism and burst swim performance in a marine fish. | LitMetric

Hypoxia-acclimation adjusts skeletal muscle anaerobic metabolism and burst swim performance in a marine fish.

Comp Biochem Physiol A Mol Integr Physiol

Marine Science Institute, The University of Texas at Austin, Port Aransas, TX 78373, USA.

Published: November 2024

AI Article Synopsis

  • Red drum fish can adapt to low oxygen environments by improving their aerobic performance, but the effects on their anaerobic metabolism and recovery after exercise are still unclear.
  • Juvenile red drum were acclimated to either normal or hypoxic conditions and tested at rest, after exercise, and after recovery, showing that hypoxia acclimated fish had different metabolic responses, particularly in muscle tissue.
  • The study found that hypoxia-acclimated fish exhibited higher pH levels and altered enzyme activity, suggesting they relied more on anaerobic metabolism during lower-intensity swimming compared to control fish, but did not show better recovery after exhaustive exercise.

Article Abstract

Red drum, Sciaenops ocellatus, are a marine teleost native to the Gulf of Mexico that routinely experiences periods of low oxygen (hypoxia). Recent work has demonstrated this species has the capacity to improve aerobic performance in hypoxia through respiratory acclimation. However, it remains unknown how hypoxia acclimation impacts anaerobic metabolism in red drum, and the consequences of exhaustive exercise and recovery. Juvenile fish were acclimated to normoxia (n = 15, DO 90.4 ± 6.42 %) or hypoxia (n = 15, DO 33.6 ± 7.2 %) for 8 days then sampled at three time points: at rest, after exercise, and after a 3 h recovery period. The resting time point was used to characterize the acclimated phenotype, while the remaining time points demonstrate how this phenotype responds to exhaustive exercise. Whole blood, red muscle, white muscle, and heart tissues were sampled for metabolites and enzyme activity. The resting phenotype was characterized by lower pH and changes to skeletal muscle ATP. Exhaustive exercise increased muscle lactate, and decreased phosphocreatine and ATP with no effect of acclimation. Interestingly, hypoxia-acclimated fish had higher pH and pH than control in all exercise time points. Red muscle ATP was lower in hypoxia-acclimated fish versus control at each sample period. Moreover, acclimated fish increased lactate dehydrogenase activity in the red muscle. Hypoxia acclimation increased white muscle ATP and hexokinase activity, a glycolytic enzyme. In a gait-transition swim test, hypoxia-acclimated fish recruited anaerobic-powered burst swimming at lower speeds in normoxia compared to control fish. These data suggest that acclimation increases reliance on anaerobic metabolism, and does not benefit recovery from exhaustive exercise.

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Source
http://dx.doi.org/10.1016/j.cbpa.2024.111734DOI Listing

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