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Acta Physiologica (Oxford, England)|September 3, 2011
The effect of continuous and interval exercise on PGC-1α and PDK4 mRNA in type I and type II fibres of human skeletal muscleL Wang, K SahlinInternational Journal of Sports Medicine|May 1, 1990
Adenine nucleotide depletion in human muscle during exercise: causality and significance of AMP deaminationK Sahlin, S BrobergActa Physiologica Scandinavica|October 13, 2005
Mitochondrial efficiency in rat skeletal muscle: influence of respiration rate, substrate and muscle typeM Mogensen, K SahlinJournal of Applied Physiology (Bethesda, Md. : 1985)|December 1, 1988
Hyperammoniemia during prolonged exercise: an effect of glycogen depletion?S Broberg, K SahlinCritical Care Medicine|February 1, 1985
Induction and treatment of metabolic acidosis: a study of pH changes in porcine skeletal muscle and cerebrospinal fluidL Wiklund, K SahlinThe American Journal of Physiology|August 13, 1999
Actively phosphorylating mitochondria are more resistant to lactic acidosis than inactive mitochondriaM Tonkonogi, K SahlinActa Physiologica Scandinavica|December 24, 1997
Rate of oxidative phosphorylation in isolated mitochondria from human skeletal muscle: effect of training statusM Tonkonogi, K SahlinJournal of Applied Physiology (Bethesda, Md. : 1985)|July 1, 1989
Adenine nucleotide degradation in human skeletal muscle during prolonged exerciseS Broberg, K SahlinActa Physiologica (Oxford, England)|June 19, 2008
Control of lipid oxidation during exercise: role of energy state and mitochondrial factorsK Sahlin, R C HarrisJournal of Applied Physiology (Bethesda, Md. : 1985)|August 1, 1989
Relationship of contraction capacity to metabolic changes during recovery from a fatiguing contractionK Sahlin, J M RenPageof 189