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Topic:Exercise Physiology

Exercise physiology in horses involves the study of the physiological responses and adaptations of horses to physical activity. This field examines how exercise impacts various systems in the equine body, including the cardiovascular, respiratory, muscular, and metabolic systems. Researchers focus on understanding how these systems interact during different types and intensities of exercise, and how they contribute to performance and recovery. Key areas of interest include the assessment of aerobic and anaerobic capacity, muscle fiber composition, energy metabolism, and thermoregulation. This page compiles peer-reviewed research studies and scholarly articles that explore the mechanisms of exercise physiology in horses, with an emphasis on performance optimization, training regimens, and the prevention of exercise-related disorders.
The effect of training and detraining on several enzymes in horse skeletal muscle.
Archives internationales de physiologie et de biochimie    February 1, 1979   Volume 87, Issue 1 87-93 doi: 10.3109/13813457909070488
Snow DH, Guy PS.Training and detraining had little effect on the activity of glycogen synthase, hexokinase, glycerol 3-phosphate dehydrogenase or total protein. The activity of 3-hydroxyacyl-CoA dehydrogenase increased markedly during training. After 5 weeks of detraining, the activity of 3-hydroxyacyl-CoA dehydrogenase was returning to pre-training values, whilst by 10-week detraining, the levels were increasing again.
Dynamics of the hind limb at walk in horse and dog.
Anatomy and embryology    January 30, 1979   Volume 155, Issue 2 179-190 doi: 10.1007/BF00305750
Wentink GH.The dynamics of the hind limbs of the horse and dog at walk are compared. The kinematics were studied by electromyography of animals walking on a moving belt, and by cinephotography in horses walking on the ground and in dogs walking on a moving belt and on the ground. This study reveals that: 1) the retraction of the hoof or foot relative to the hip at the end of the support phase is less in the horse than in the dog; 2) the change in the sense of the movements of the hind limb segments at the end of the support phase and at the beginning of the swing phase occurs earlier in the horse (55â...
[Effects of exercise and training on the heart and circulation in horses (author’s transl)].
DTW. Deutsche tierarztliche Wochenschrift    January 5, 1979   Volume 86, Issue 1 2-7 
von Engelhardt W.No abstract available
Blood-gas, acid-base and haematological values in horses during an endurance ride.
Equine veterinary journal    January 1, 1979   Volume 11, Issue 1 56-59 doi: 10.1111/j.2042-3306.1979.tb01300.x
Rose RJ, Ilkiw JE, Martin IC.The effects of prolonged strenuous exercise on arterial and venous oxygen tension, carbon dioxide tension, pH, bicarbonate, standard bicarbonate, base excess, haemoglobin, packed cell volume and total plasma protein were studied in 36 horses during a 100 km endurance ride. There were significant changes in many parameters when pre-ride values were compared with both mid-ride and end of ride values. The prominent changes were the development of dehydration and a metabolic alkalosis. At the mid-ride sampling time those horses with higher heart rates had a greater degree of metabolic alkalosis th...
Differences in the histochemical properties of skeletal muscles of different breeds of horses and dogs.
Journal of anatomy    December 1, 1978   Volume 127, Issue Pt 3 615-634 
Gunn HM.Histochemical profiles of individual muscle fibres were established using myosin adenosine triphosphatase (myosin ATPase), succinate dehydrogenase (SDHase), and glycogen phosphorylase (GPase) reactions in three muscles (semitendinosus, diaphragm, and pectoralis transversus) of the horse and dog. The major histochemical difference between fibres lies in their myosin ATPase activity; fibres can be subdivided into those with a high and those with a low activity. In horse muscle, all fibres have a high activity of GPase. In the diaphragm and pectoralis transversus, all fibres have a high SDHase ac...
Swimming–a method to study the physiologic response of the horse to exercise.
Journal of the South African Veterinary Association    December 1, 1978   Volume 49, Issue 4 313-315 
Nicholl TK, Fregin GF, Gerber NH.The literature on exercise physiology in the horse with special reference to swimming is briefly reviewed. The use of a pool for swimming horses is described and a technique discussed for the collection of haematologic and haemodynamic data using this form of exercise.
[Studies of the activity of serum enzymes in race horses with special reference to their racing capabilities].
Berliner und Munchener tierarztliche Wochenschrift    November 15, 1978   Volume 91, Issue 22 433-437 
Sommer H, Best I, Görner M.No abstract available
Locomotion in the horse: kinematics and external and internal forces in the normal equine digit in the walk and trot.
American journal of veterinary research    November 1, 1978   Volume 39, Issue 11 1728-1733 
Schryver HF, Bartel DL, Langrana N, Lowe JE.No abstract available
Heart rate during a defined exercise test in horses with heart and lung diseases.
Equine veterinary journal    October 1, 1978   Volume 10, Issue 4 235-242 doi: 10.1111/j.2042-3306.1978.tb02269.x
Maier-Bock H, Ehrlein HJ.During a gradually increasing exercise test heart rates were determined in healthy animals and in 2 groups of sick horse. These included 31 animals with a chronic pulmonary disorder and 5 with chronic heart disease. The alteration in heart rate was correlated with the clinical signs exhibited. In the horses with lung disease there was a close correlation between the stage of the diseases and the heart rate during the exercise test. In 3 animals with heart valve disease there was no apparent difference in heart rate compared with healthy horses. On the other hand the exercising heart rate of ho...
Lack of effect of selenium supplementation on the response of the equine erythrocyte glutathione system and plasma enzymes to exercise.
Journal of animal science    August 1, 1978   Volume 47, Issue 2 492-496 doi: 10.2527/jas1978.472492x
Brady PS, Ku PK, Ullrey DE.No abstract available
Changes of plasma uric acid levels in horses after galloping.
Research in veterinary science    July 1, 1978   Volume 25, Issue 1 127-128 
Keenan DM.Two horses were alternately galloped and cantered at 48 h intervals in a cross over trial. Galloping produced a rise in plasma lactic and uric acids. The lactic acid decreased in concentration whereas the uric acid increased in the hour after exercise. Plasma phosphate levels were depressed 1 h after galloping. There was no significant variation in these parameters after cantering. Possible reasons for these changes are discussed.
Limb skin thermometry in racehorses.
Equine veterinary journal    July 1, 1978   Volume 10, Issue 3 180-184 doi: 10.1111/j.2042-3306.1978.tb02253.x
Webbon PM.Skin temperature measurements were recorded of the legs of 13 racehorses between 2 and 5 years old. The normal limb temperature patterns are described. In over 90 per cent of the normal horses the difference between contralateral limbs was less than 1 degree C, but in the remainder differences of up to 8 degree C were recorded due to the excessive cooling of one limb. One horse had a constant temperature elevation of one foreleg, but it remained in training for 7 weeks without any obvious ill effects. Because of the small numbers of horses in the survey and their freedom from tendon injuries i...
Cerebrospinal fluid acid-base balance during muscular exercise.
Journal of applied physiology: respiratory, environmental and exercise physiology    July 1, 1978   Volume 45, Issue 1 94-101 doi: 10.1152/jappl.1978.45.1.94
Bisgard GE, Forster HV, Byrnes B, Stanek K, Klein J, Manohar M.Ventilation, metabolism, arterial blood gases, and blood and cerebrospinal fluid (CSF) acid-base status were measured in exercise studies on seven ponies during mild, moderate, and near-maximal treadmill exercise. CSF and arterial blood were sampled via indwelling catheters. Generally measurements were made during the 3rd, 6th, and 9th minute of steady-state exercise, with CSF sampled only during the 9th minute. Alveolar ventilation (VA) and metabolic rate (VO2) increased proportionately during exercise below the anaerobic threshold, but above this threshold, VA increased at a faster rate than...
Methods for measuring physical condition and energy expenditure in horses.
Journal of animal science    June 1, 1978   Volume 46, Issue 6 1666-1672 doi: 10.2527/jas1978.4661666x
Burke DJ, Albert WW.No abstract available
Biochemical changes in horses during endurance rides.
The Veterinary record    May 27, 1978   Volume 102, Issue 21 469 doi: 10.1136/vr.102.21.469
Orton RG.No abstract available
Plasma volume and extracellular fluid volume in horses at rest and following exercise.
American journal of veterinary research    May 1, 1978   Volume 39, Issue 5 871-874 
Kohn CW, Muir WW, Sams R.Plasma volume and extracellular fluid volume were determined in horses at rest and immediately after a standardized exercise test. Exercising during training demonstrated no detectable effect on plasma or extracellular fluid volume determinations when compared with resting values. An explanation of this finding and an argument for the proper analysis of plasma and extravascular fluid volumes are presented.
Biochemical changes in horses during a 50-mile endurance ride.
The Veterinary record    April 22, 1978   Volume 102, Issue 16 356-358 doi: 10.1136/vr.102.16.356
Lucke JN, Hall GM.Blood samples were taken from 15 horses before and after a 50-mile ride to examine the changes occurring in some biochemical constituents. There was a significant (P less than 0.05) decrease in plasma potassium, calcium and magnesium concentrations and a rise in inorganic phosphate but there was no alteration in plasma sodium, chloride or protein levels or change in haematocrit. After the ride there was a highly significant (P less than 0.01) fall in blood glucose corresponding with increased lipolysis and a rise in plasma free fatty acids (P less than 0.001) and glycerol (P less than 0.001). ...
[Biochemical and hematological changes in the blood of horses after the “Velká Pardubická” steeple chase].
Veterinarni medicina    March 1, 1978   Volume 23, Issue 3 169-174 
Komárek J, Matousek V, Jadrný L.Blood parameters were studied in two groups of horses in the "Velká Pardubická" steeple-chase in 1974, 1975 and 1976. After the race, the levels of lactate showed a manifold increase; an increase was also ascertained in the levels of glucose, sodium, potassium, haemoglobin, in the haematocrit value and in the number of erythrocytes. The following parameters significantly dropped: the levels of acid-base balance - pH, base excess, bicarbonate levels. It was proved that the values of the same parameters in horses during training were incomparably lower. It is advisable to examine horses thorou...
A laboratory system for production of flexion rates and forces in the forelimb of the horse.
American journal of veterinary research    March 1, 1978   Volume 39, Issue 3 365-369 
Kingsbury HB, Quddus MA, Rooney JR, Geary JE.The distal portion of the forelimb of the horse is provided with a stay apparatus composed of tendons, ligaments, and fascia. This stay apparatus provides the major resistance to joint flexion during the support phase of the stride. The laboratory test system described was shown to be able to reproduce in vitro limb motions and hoof forces measured with a running horse. These results indicated the stay apparatus operates in a largely passive mode, active muscle contraction apparently serving to provide rigidity only early in the support phase of the stride. The testing system described was des...
Biokinetical analysis of the movements of the pelvic limb of the horse and the role of the muscles in the walk and the trot.
Anatomy and embryology    February 20, 1978   Volume 152, Issue 3 261-272 doi: 10.1007/BF00350524
Wentink GH.The movements of the right hind limb of horses with normal locomotion were studied using cinephotography and electromyography. A model of the cycle of a stride in the walk and the trot was constructed and the kinetic parameters of the segments of the limb were calculated. A good correlation was obtained between the kinetics and the periods of the cycle of a stride during which individual muscles display activity. The results of this study demonstrate that: at placing and lifting, i.e., when a change occurs in the direction of the movement of the limb; b) At the walk, the greatest forces operan...
Calcium metabolism, body composition, and sweat losses of exercised horses.
American journal of veterinary research    February 1, 1978   Volume 39, Issue 2 245-248 
Schryver HF, Hintz HF, Lowe JE.The effect of exercise on the pathways of metabolism of 40Ca and 47Ca was studied in 4 yearling Standardbred horses in 4 consecutive treatment periods: (1) no exercise, (2) trotting 16 km/day, (3) trotting 10 km/day, and (4) no exercise. Metabolic balance studies and studies of 47Ca kinetics were conducted during the final week of each month-long treatment period. The urinary excretion of 40Ca and 47Ca decreased 50% to 75% during the exercise periods. Retention of 47Ca increased during the exercise periods, but the retention of dietary Ca (40Ca) did not change. The efficiency of Ca absorption ...
A relationship between gait and breakdown in the horse.
American journal of veterinary research    February 1, 1978   Volume 39, Issue 2 249-253 
Pratt GW, O'Connor JT.A biomechanical model of running has been presented. A basic premise has been that the swing time is nearly independent of speed. In fact, both the racehorse and the trotter have nearly equal swing times. Consequently, as speed increases and the stance phase becomes shorter, the horse must compensate by increasing his extension or the length of the airborne phase (or both). The safe speed which allows the horse adequate preparation time for contact of a leg with the ground is calculated, using a stride-by-stride analysis of the motion of the horse. This is seen to be a very sensitive function ...
Effect of exercise on platelet size and number in ponies.
The Veterinary record    December 10, 1977   Volume 101, Issue 24 488 
Lepherd EE.No abstract available
Endurance riding and “scoring” endurance rides.
New Zealand veterinary journal    December 1, 1977   Volume 25, Issue 12 393-394 doi: 10.1080/00480169.1977.34465
Kelly CM.No abstract available
The actions of the beta-adrenoceptor blocking agents propranolol and metoprolol in the maximally exercised horse [proceedings].
The Journal of physiology    October 1, 1977   Volume 271, Issue 2 39P-40P 
Snow DH, Summers RJ.No abstract available
Effect of training on some metabolic changes associated with submaximal endurance exercise in the horse.
Equine veterinary journal    October 1, 1977   Volume 9, Issue 4 226-230 doi: 10.1111/j.2042-3306.1977.tb04037.x
Snow DH, Mackenzie G.The effects of prolonged cantering before and after a 10 week training programme were studied in 6 horses. Determinations were carried on on venous blood for packed cell volume, glucose, glycerol, free fatty acids, beta-hydroxybutyrate, 11-hydroxycorticosteroids, pH and pCO2. Exercise caused a slight increase in glucose, lactate and pH, a moderate rise in PCV, glycerol and free fatty acids, and a marked rise in 11-hydroxycorticosteroids. A decrease in venous pCO2 occurred and a slight but not significant decrease in beta-hydroxybutyrate. Training was found to cause no significant difference in...
Rapid changes in equine erythrocyte glutathione reductase with exercise.
American journal of veterinary research    July 1, 1977   Volume 38, Issue 7 1045-1047 
Brady PS, Shelle JE, Ullrey DE.No abstract available
Some metabolic effects of maximal exercise in the horse and adaptations with training.
Equine veterinary journal    July 1, 1977   Volume 9, Issue 3 134-140 doi: 10.1111/j.2042-3306.1977.tb04005.x
Snow DH, Mackenzie G.The effects of intermittent maximal exercise (galloping) before and after a 10 week training programme were studied in 6 horses. Determinations were carried out on venous blood for packed cell volume, total plasma protein, glucose, glycerol, free fatty acids, lactate, 11-hydroxycorticosteroids, blood gases and pH. There were marked changes associated with galloping and some of these could be modified with training. The major findings included (i) an elevated blood glucose, (ii) a large increase in glycerol, which was greatest at 30 min post-exercise and was higher following training, (iii) sma...
The effect of training and detraining on muscle composition in the horse.
The Journal of physiology    July 1, 1977   Volume 269, Issue 1 33-51 doi: 10.1113/jphysiol.1977.sp011891
Guy PS, Snow DH.1. Percutaneous needle biopsies were obtained from six limb muscles in six horses before and during a training programme of 10 or 15 weeks designed to involve both aerobic and anaerobic work. In a subsequent detraining period, biopsies were also taken after 5 and 10 weeks. 2. Samples were analysed biochemically for enzyme activity of lactic dehydrogenase (LDH), creatine phosphokinase (CPK), aldolase (ALD), citrate synthase (CS), aspartate aminotransferase (AST), and alanine aminotransferase (ALT) and for glycogen content. Fibre typing was carried out histochemically before and 10 weeks after c...
Training and exercise change respiratory properties of blood in race horses.
Respiration physiology    May 1, 1977   Volume 29, Issue 3 315-325 doi: 10.1016/0034-5687(77)90006-8
Lykkeboe G, Schugaard H, Johansen K.Effects of training and exercise on blood respiratory properties were investigated in standard-bred race horses. Training caused an increase in the circulating O2 capacity at rest from 18.4 to 21.0 vol%, and in the O2 capacity during exercise from 24.9 to 30.3 vol%. An increase in the in vitro oxygen affinity [P50(PH 7.4, 37.9 degrees C)] of about 2 mm Hg correlated with a decrease in the red cell concentration of 2,3-diphosphoglycerate (DPG) from 6.35 mM-1-1(E), erythrocytes. Trained horses also showed an acute lowering of the red cell DPG concentration after maximal exercise. The physiologic...
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