Linked from
The 27 pages that link to Exercise physiology, each with the reason it gives.
Cellular respirationRelated: Exercise changes oxygen use and fuel demand, increasing the rate of cellular ATP production.
Oxidative stressRelated: Exercise transiently changes oxidant production and can also strengthen antioxidant defenses.
GlycolysisNarrower topic: Rapid glycolytic ATP production helps meet muscle energy demand during intense exercise.
Cardiac outputRelated: During exercise, increased cardiac output helps deliver more oxygen to working muscles.
PhysiologyBroader topic: Exercise exposes how physiological systems respond to changing demands and training.
Creatine kinaseRelated: Changes in creatine kinase activity and blood levels are relevant to exercise and muscle stress.
Lactic acidNarrower topic: Lactate measurements help characterize energy use and exercise intensity.
Lactate dehydrogenaseRelated: During intense exercise, muscle lactate production reflects glycolytic flux and redox demands.
Heart rateNarrower topic: It explains how exertion raises heart rate and how training changes the response.
Lactate thresholdNarrower topic: Lactate threshold is an applied measure within the broader study of exercise responses.
GlycogenolysisNarrower topic: Exercise rapidly increases muscle demand for glycogen-derived energy.
Cori cycleNarrower topic: Exercise increases muscle glycolysis and reveals how lactate and glucose circulate between tissues.
LactateNarrower topic: Exercise research tracks lactate as production and clearance change with workload.
Venous returnNarrower topic: During exercise, muscle contractions and breathing changes increase blood return while circulation accelerates.
LipolysisRelated: Exercise alters hormonal signals and fatty-acid mobilization from adipose tissue.
SweatingNarrower topic: Exercise raises heat production, making sweat rate relevant to performance and safety.
QigongRelated: It can explain some qigong outcomes through movement, balance, and conditioning without invoking qi.
Sports biomechanicsCompared with: Focuses on physiological responses such as oxygen use, while biomechanics centers on mechanics of movement.
Branched-chain amino acidRelated: Exercise changes branched-chain amino acid use and has motivated supplement research.
Cardiovascular systemRelated: Exercise reveals how circulation increases oxygen delivery to active muscles.
Sports scienceRelated: It explains cardiovascular, muscular, and metabolic responses that shape training and performance.
August KroghNarrower topic: His experiments on muscle work and oxygen transport helped make exercise a quantitative subject in physiology.
KinesiologyRelated: It explains the energetic and systemic demands of sustained movement.
PerspirationNarrower topic: Exercise raises heat production and changes sweating rate and fluid needs.
Otto Fritz MeyerhofNarrower topic: Meyerhof’s work on muscle chemistry helped connect exercise with measurable metabolic changes.
Physiological phenomenaNarrower topic: Exercise provides a clear setting for observing integrated physiological responses.
Stationary bicycleNarrower topic: It explains the cardiovascular and muscular changes produced by stationary cycling.