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The experimental type 2 diabetes therapy glycogen phosphorylase inhibition can impair aerobic muscle function during
David J Baker1, Paul L Greenhaff, Alan MacInnes
1Centre for Integrated Systems Biology and Medicine, School of Biomedical Science, University of Nottingham, Nottingham, UK.
Abstract:
Glycogen phosphorylase inhibition represents a promising strategy to suppress inappropriate hepatic glucose output, while muscle glycogen is a major source of fuel during contraction. Glycogen phosphorylase inhibitors (GPi) currently being investigated for the treatment of type 2 diabetes do not demonstrate hepatic versus muscle glycogen phosphorylase isoform selectivity and may therefore impair patient aerobic exercise capabilities. Skeletal muscle energy metabolism and function are not impaired by GPi during high-intensity contraction in rat skeletal muscle; however, it is unknown whether glycogen phosphorylase inhibitors would impair function during prolonged lower-intensity contraction. Utilizing a novel red cell-perfused rodent gastrocnemius-plantaris-soleus system, muscle was pretreated for 60 min with either 3 micromol/l free drug GPi (n=8) or vehicle control (n=7). During 60 min of aerobic contraction, GPi treatment resulted in approximately 35% greater fatigue. Muscle glycogen phosphorylase a form (P<0.01) and maximal activity (P<0.01) were reduced in the GPi group, and postcontraction glycogen (121.8 +/- 16.1 vs. 168.3 +/- 8.5 mmol/kg dry muscle, P<0.05) was greater. Furthermore, lower muscle lactate efflux and glucose uptake (P<0.01), yet higher muscle Vo(2), support the conclusion that carbohydrate utilization was impaired during contraction. Our data provide new confirmation that muscle glycogen plays an essential role during submaximal contraction. Given the critical role of exercise prescription in the treatment of type 2 diabetes, it will be important to monitor endurance capacity during the clinical evaluation of nonselective GPi. Alternatively, greater effort should be devoted toward the discovery of hepatic-selective GPi, hepatic-specific drug delivery strategies, and/or alternative strategies for controlling excess hepatic glucose production in type 2 diabetes.
Insights
Glycogen phosphorylase inhibitors (GPi) impair muscle function during prolonged exercise by reducing carbohydrate utilization. This highlights the need for selective inhibitors or alternative strategies for type 2 diabetes treatment.
Area of Science:
- Biochemistry
- Exercise Physiology
- Pharmacology
Background:
- Glycogen phosphorylase inhibitors (GPi) are explored for type 2 diabetes to reduce hepatic glucose output.
- Current GPi lack isoform selectivity, potentially impacting muscle glycogen utilization and exercise capacity.
- The effect of GPi on prolonged, lower-intensity muscle contraction remains unclear.
Purpose of the Study:
- To investigate the impact of non-selective glycogen phosphorylase inhibitors (GPi) on skeletal muscle function during prolonged aerobic contraction.
- To determine if GPi affects carbohydrate metabolism and endurance during submaximal exercise.
Main Methods:
- Utilized a red cell-perfused rodent gastrocnemius-plantaris-soleus ex vivo system.
- Pretreated muscle with either GPi or vehicle control for 60 minutes.
- Subjected muscle to 60 minutes of aerobic contraction, measuring fatigue, glycogen levels, and metabolic markers.
Main Results:
- GPi treatment led to approximately 35% greater fatigue during prolonged aerobic contraction.
- GPi reduced muscle glycogen phosphorylase activity and increased postcontraction glycogen levels.
- Impaired carbohydrate utilization was evidenced by lower lactate efflux and glucose uptake, and higher oxygen consumption (Vo2).
Conclusions:
- Muscle glycogen is essential for submaximal exercise performance.
- Non-selective GPi can impair endurance capacity by hindering carbohydrate utilization during prolonged contraction.
- Clinical evaluation of non-selective GPi for type 2 diabetes requires monitoring of exercise tolerance; selective inhibitors or alternative strategies are needed.
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