Analyze Diet

Topic:Metabolism

Equine metabolism encompasses the biochemical processes that occur within horses to maintain life, including the conversion of food into energy, the synthesis of necessary compounds, and the elimination of waste products. These processes are essential for supporting various physiological functions such as growth, reproduction, and physical performance. Key components of equine metabolism include carbohydrate, fat, and protein metabolism, each of which contributes to the overall energy balance and health of the horse. Factors influencing metabolic rate and efficiency in horses include age, breed, diet, exercise, and health status. This page compiles peer-reviewed research studies and scholarly articles that explore the mechanisms, regulation, and implications of metabolic processes in equine physiology.
Calcium metabolism in ponies fed varying levels of calcium.
The Journal of nutrition    August 1, 1970   Volume 100, Issue 8 955-964 doi: 10.1093/jn/100.8.955
Schryver HF, Craig PH, Hintz HF.Calcium metabolism of young, growing ponies fed diets containing 1.5, 0.8 and 0.15% calcium was studied using combined balance and kinetic methods. Variations in calcium intake produced large differences in excretion and retention but had no effect on the level of plasma calcium or on the size of the exchangeable pool. Intestinal absorption, renal excretion and calcium removal from bone responded to the dietary level of calcium to maintain calcium homeostasis. The rates of intestinal absorption and the removal of calcium from the skeleton increased while renal excretion decreased in response t...
Acid-soluble phosphorus compounds in mammalian semen.
The Biochemical journal    August 1, 1970   Volume 118, Issue 5 851-857 doi: 10.1042/bj1180851
Brooks DE.1. A method is described for the extraction, purification and separation of acid-soluble phosphorus compounds from mammalian semen. [8-(14)C]ATP and [8-(14)C]AMP were used as internal recovery standards to measure the breakdown and loss of these nucleotides in the procedure. 2. Bull, ram, boar and stallion semen was separated into seminal plasma and spermatozoa and the two fractions were examined separately. The overall composition of the mixture of the phosphorus compounds extracted from the two fractions was similar for the four species. 3. Glycerylphosphorylcholine and glycerylphosphorylino...
Effect of fasting on bilirubin metabolism.
The New England journal of medicine    July 23, 1970   Volume 283, Issue 4 204 doi: 10.1056/nejm197007232830412
Gronwall R, Cornelius CE.No abstract available
Urea utilization in the horse.
Nutrition reviews    July 1, 1970   Volume 28, Issue 7 194-196 doi: 10.1111/j.1753-4887.1970.tb06225.x
No abstract available
Pathways of steroid biosynthesis in the intact Graafian collicle of mares in oestrus.
The Journal of endocrinology    July 1, 1970   Volume 47, Issue 3 321-331 doi: 10.1677/joe.0.0470321
Younglai EV, Short RV.No abstract available
Horse liver alcohol dehydrogenase. The primary structure of an N-terminal part of the protein chain of the ethanol-active isoenzyme.
European journal of biochemistry    July 1, 1970   Volume 14, Issue 3 521-534 doi: 10.1111/j.1432-1033.1970.tb00319.x
Jörnvall H.No abstract available
Comparative action of various kininogenases on crude horse plasma substrates.
Biochemical pharmacology    June 1, 1970   Volume 19, Issue 6 2083-2090 doi: 10.1016/0006-2952(70)90306-0
Budnitskaya P, Gapanhuk E, Henriques OB.The kininogenase activity of trypsin, plasmin, plasma kallikrein and heated Bothrops venom was compared, using fresh, heated and heat-acid-denatured horse plasma as source of kininogen. The venom kininogenase was found to have the highest activity on fresh horse plasma, followed by plasmin and trypsin which were equally active, and plasma kallikrein which was half as active as plasmin on these substrates. Plasmin and trypsin released more kinin from heat-treated than from fresh plasma whereas kallikrein released half as much as it liberates from fresh plasma. On heat-aciddenatured plasma equal...
Equine glucose tolerance.
Journal of animal science    May 1, 1970   Volume 30, Issue 5 764-766 doi: 10.2527/jas1970.305764x
Mehring JS, Tyznik WJ.No abstract available
Nitrogen metabolism in nonruminant herbivores. I. The influence of nonprotein nitrogen and protein quality on the nitrogen retention of adult mares.
Journal of animal science    May 1, 1970   Volume 30, Issue 5 753-760 doi: 10.2527/jas1970.305753x
Slade LM, Robinson DW, Casey KE.No abstract available
[Biosynthesis of N-acetyl-O-acetylneuraminic acids. I. Incorporation of (14C) acetate into sections of the submaxillary salivary gland of ox and horse].
Hoppe-Seyler's Zeitschrift fur physiologische Chemie    May 1, 1970   Volume 351, Issue 5 595-602 
Schauer R.No abstract available
[Nutritional physiology studies of the horse. I. Nutrient balances].
Zeitschrift fur Tierphysiologie, Tierernahrung und Futtermittelkunde    April 1, 1970   Volume 26, Issue 3 163-169 
Geyer H, Drepper K, Engelbart W.No abstract available
[Nutritional physiology studies of the horse. II. Raw nutrient studies of the gastrointestinal tract of slaughtered horses].
Zeitschrift fur Tierphysiologie, Tierernahrung und Futtermittelkunde    April 1, 1970   Volume 26, Issue 3 169-174 
Hertel J, Altmann HJ, Drepper K.No abstract available
Glucose tolerance and effect of volatile fatty acid on plasma glucose concentration in ponies.
Journal of animal science    April 1, 1970   Volume 30, Issue 4 514-518 doi: 10.2527/jas1970.304514x
Argenzio RA, Hintz HF.Factors affecting glucose tolerance and the effect of volatile fatty acids on plasma glucose were studied with five ponies in two 5×5 latin square trials. The treatments were equimolar infusions of glucose, acetate, propionate, butyrate and isontonic saline in fed or fasted ponies. Animals fasted for 72 hr. exhibited a markedly lower glucose tolerance than those fed ad libitum. Propionate appeared to be the only VFA stimulating a significant glucose response in the fasted animals, but no response was noted in the fed animals. The data suggest that length of fast is an important variable in...
Differences in E and S chains from isoenzymes of horse liver alcohol dehydrogenase.
Nature    March 21, 1970   Volume 225, Issue 5238 1133-1134 doi: 10.1038/2251133a0
Jörnvall H.No abstract available
Amino acids in equine cecal contents, cecal bacteria and serum.
The Journal of nutrition    March 1, 1970   Volume 100, Issue 3 349-354 doi: 10.1093/jn/100.3.349
Reitnour CM, Baker JP, Mitchell GE, Little CO, Kratzer DD.No abstract available
Pharmacokinetics and metabolism of glyceryl guaiacolate in ponies.
American journal of veterinary research    March 1, 1970   Volume 31, Issue 3 469-473 
Davis LE, Wolff WA.No abstract available
[On the fatty acid content of the lipid fraction of colostrum and milk of horses. Studies in Avelignese breed mares].
Acta medica veterinaria    January 1, 1970   Volume 16, Issue 1 89-98 
Intrieri F, Minieri L.No abstract available
[Parameters of energy metabolism and oxygen transport in thoroughbred racing horses in periods of different training intensity]. Krzywanek H, Wittke G.No abstract available
[Studies on adenosine tetraphosphate in the skeletal muscles of rat, rabbit and horse].
Roczniki Akademii Medycznej im. Juliana Marchlewskiego w Bialymstoku    January 1, 1970   Volume 15 245-308 
Jaroszewicz K.No abstract available
Blood selenium in naturally fed horses and the effect of selenium administration.
Acta veterinaria Scandinavica    January 1, 1970   Volume 11, Issue 4 571-576 doi: 10.1186/BF03547955
Bergsten G, Holmbäck R, Lindberg P.Blood Se of adult horses was 26.1, 25.8, and 27.0 ng/ml (mean values at 3 farms), where the Se of food was about 20 ng/g dry substance. Experimental adult horses which received about 41 ng Se/g food showed 45.3 ng/ml blood. At low Se intake suckling foals show higher blood Se than mares, but with high Se intake, the opposite will occur. This is reflected in milk Se, which raises but slowly with rise of mare’s blood Se. Se in blood plasma and in blood corpuscles is on the same level. The effect of various dose levels of Se on blood Se was studied: From 1.5 to 6 mg Se/week, blood Se rose rathe...
Muscular tremors in an unweaned foal suffering from metabolic acidaemia.
The Veterinary record    December 20, 1969   Volume 85, Issue 25 702-704 
Rossdale PD, Mullen PA.No abstract available
Formation of estrogens by the pregnant mare. I. Metabolism of 7-3H-dehydroisoandrosterone and 4-14C-androstenedione injected into the umbilical vein.
Endocrinology    December 1, 1969   Volume 85, Issue 6 1172-1179 doi: 10.1210/endo-85-6-1172
Bhavnani BR, Short RV, Solomon S.No abstract available
Interaction of coenzyme with differently prepared zinc-free (apo) horse liver alcohol dehydrogenases.
The Journal of biological chemistry    November 10, 1969   Volume 244, Issue 21 5967-5971 
Hoagstrom CW, Iweibo I, Weiner H.No abstract available
Heterogeneity of erythrocyte catalase. Correlations between sulfhydryl group content, chromatographic and electrophoretic properties.
European journal of biochemistry    November 1, 1969   Volume 11, Issue 1 49-57 doi: 10.1111/j.1432-1033.1969.tb00737.x
Mörikofer-Zwez S, Cantz M, Kaufmann H, von Wartburg JP, Aebi H.No abstract available
The transport of oxidized glutathione from the erythrocytes of various species in the presence of chromate.
The Biochemical journal    October 1, 1969   Volume 114, Issue 4 833-837 doi: 10.1042/bj1140833
Srivastava SK, Beutler E.1. Erythrocytes from normal and glucose 6-phosphate dehydrogenase-deficient humans were subjected to hydrogen peroxide diffusion to oxidize the GSH. Studies were carried out in the presence and absence of chromate to inhibit glutathione reductase and with or without the addition of glucose. 2. The GSH content of erythrocytes from other species was oxidized by subjecting them to hydrogen peroxide diffusion in the presence of chromate and glucose. 3. Chromate (1.3mm) inhibited glutathione reductase by about 80%, whereas glucose 6-phosphate dehydrogenase, 6-phosphogluconate dehydrogenase, hexokin...
Zinc isotope exchange in horse liver alcohol dehydrogenase.
Biochemistry    September 1, 1969   Volume 8, Issue 9 3792-3797 doi: 10.1021/bi00837a045
Drum DE, Li TK, Vallee BL.No abstract available
Plasma polyunsaturated fatty acids of herbivores grazing pasture.
The Proceedings of the Nutrition Society    September 1, 1969   Volume 28, Issue 2 37A-38A doi: 10.1079/pns19690050
Leat WM, Baker J.No abstract available
Nitrogen digestion in different segments of the equine digestive tract.
Journal of animal science    August 1, 1969   Volume 29, Issue 2 332-334 doi: 10.2527/jas1969.292332x
Reitnour CM, Baker JP, Mitchell GE, Little CO.No abstract available
[Ultrafiltrability of bilirubin].
Archives internationales de physiologie et de biochimie    August 1, 1969   Volume 77, Issue 3 563-564 
Barac G, Hérion F.No abstract available
The isolation and identification of phenolic acids in the horse.
Comparative biochemistry and physiology    July 15, 1969   Volume 30, Issue 2 335-345 doi: 10.1016/0010-406x(69)90815-9
Chapman DI.No abstract available