Effect of parathyroid hormone on energy metabolism of skeletal muscle. 1985

R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar

Clinical states with primary or secondary hyperparathyroidism are associated with muscle dysfunction, suggesting that parathyroid hormone (PTH) may affect muscle metabolism. The present study examined the effect of 1-84 PTH and its amino-terminal fragment (1-34 PTH) on energy production, transfer, and utilization by skeletal muscle. Rats weighing 150 to 200 g were injected intraperitoneally with 1-84 or 1-34 PTH, 200 U/day, for 4 days, and control animals received vehicle only. The effect of the simultaneous administration of a calcium channel blocker, verapamil, was examined also. The muscle content of inorganic phosphorus, creatine phosphate, and adenine nucleotides were significantly (P less than 0.01) lower in the PTH-treated rats than in control animals. The hormone significantly reduced mitochondrial oxygen consumption without altering ADP:0 ratio, indicating reduced phosphorylation. Both 1-84 and 1-34 PTH produced significant (P less than 0.01) reduction in the activities of mitochondrial and myofibrillar CPK, and mitochondrial MgATPase. 1-84 PTH reduced the activity of myofibrillar CaATPase as well. There was a significant (P less than 0.01) increment in muscle uptake of 45Ca in the 1-84 PTH-treated rats. Verapamil abolished all the effects of PTH. Our data demonstrate that both 1-84 and 1-34 PTH impair energy production, transfer, and utilization. These biochemical derangements may, at least in part, underlie the myopathy observed in conditions associated with excess PTH.

UI MeSH Term Description Entries
D008931 Mitochondria, Muscle Mitochondria of skeletal and smooth muscle. It does not include myocardial mitochondria for which MITOCHONDRIA, HEART is available. Sarcosomes,Mitochondrion, Muscle,Muscle Mitochondria,Muscle Mitochondrion,Sarcosome
D009132 Muscles Contractile tissue that produces movement in animals. Muscle Tissue,Muscle,Muscle Tissues,Tissue, Muscle,Tissues, Muscle
D010101 Oxygen Consumption The rate at which oxygen is used by a tissue; microliters of oxygen STPD used per milligram of tissue per hour; the rate at which oxygen enters the blood from alveolar gas, equal in the steady state to the consumption of oxygen by tissue metabolism throughout the body. (Stedman, 25th ed, p346) Consumption, Oxygen,Consumptions, Oxygen,Oxygen Consumptions
D010281 Parathyroid Hormone A polypeptide hormone (84 amino acid residues) secreted by the PARATHYROID GLANDS which performs the essential role of maintaining intracellular CALCIUM levels in the body. Parathyroid hormone increases intracellular calcium by promoting the release of CALCIUM from BONE, increases the intestinal absorption of calcium, increases the renal tubular reabsorption of calcium, and increases the renal excretion of phosphates. Natpara,PTH (1-84),PTH(1-34),Parathormone,Parathyrin,Parathyroid Hormone (1-34),Parathyroid Hormone (1-84),Parathyroid Hormone Peptide (1-34),Hormone, Parathyroid
D010446 Peptide Fragments Partial proteins formed by partial hydrolysis of complete proteins or generated through PROTEIN ENGINEERING techniques. Peptide Fragment,Fragment, Peptide,Fragments, Peptide
D010710 Phosphates Inorganic salts of phosphoric acid. Inorganic Phosphate,Phosphates, Inorganic,Inorganic Phosphates,Orthophosphate,Phosphate,Phosphate, Inorganic
D010725 Phosphocreatine An endogenous substance found mainly in skeletal muscle of vertebrates. It has been tried in the treatment of cardiac disorders and has been added to cardioplegic solutions. (Reynolds JEF(Ed): Martindale: The Extra Pharmacopoeia (electronic version). Micromedex, Inc, Englewood, CO, 1996) Creatine Phosphate,Neoton,Phosphocreatine, Disodium Salt,Phosphorylcreatine,Disodium Salt Phosphocreatine,Phosphate, Creatine
D011919 Rats, Inbred Strains Genetically identical individuals developed from brother and sister matings which have been carried out for twenty or more generations or by parent x offspring matings carried out with certain restrictions. This also includes animals with a long history of closed colony breeding. August Rats,Inbred Rat Strains,Inbred Strain of Rat,Inbred Strain of Rats,Inbred Strains of Rats,Rat, Inbred Strain,August Rat,Inbred Rat Strain,Inbred Strain Rat,Inbred Strain Rats,Inbred Strains Rat,Inbred Strains Rats,Rat Inbred Strain,Rat Inbred Strains,Rat Strain, Inbred,Rat Strains, Inbred,Rat, August,Rat, Inbred Strains,Rats Inbred Strain,Rats Inbred Strains,Rats, August,Rats, Inbred Strain,Strain Rat, Inbred,Strain Rats, Inbred,Strain, Inbred Rat,Strains, Inbred Rat
D003402 Creatine Kinase A transferase that catalyzes formation of PHOSPHOCREATINE from ATP + CREATINE. The reaction stores ATP energy as phosphocreatine. Three cytoplasmic ISOENZYMES have been identified in human tissues: the MM type from SKELETAL MUSCLE, the MB type from myocardial tissue and the BB type from nervous tissue as well as a mitochondrial isoenzyme. Macro-creatine kinase refers to creatine kinase complexed with other serum proteins. Creatine Phosphokinase,ADP Phosphocreatine Phosphotransferase,ATP Creatine Phosphotransferase,Macro-Creatine Kinase,Creatine Phosphotransferase, ATP,Kinase, Creatine,Macro Creatine Kinase,Phosphocreatine Phosphotransferase, ADP,Phosphokinase, Creatine,Phosphotransferase, ADP Phosphocreatine,Phosphotransferase, ATP Creatine
D004734 Energy Metabolism The chemical reactions involved in the production and utilization of various forms of energy in cells. Bioenergetics,Energy Expenditure,Bioenergetic,Energy Expenditures,Energy Metabolisms,Expenditure, Energy,Expenditures, Energy,Metabolism, Energy,Metabolisms, Energy

Related Publications

R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
January 1996, Nephron,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
January 1987, The International journal of pediatric nephrology,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
January 1982, Advances in experimental medicine and biology,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
June 1983, The Journal of clinical investigation,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
September 2008, Journal of theoretical biology,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
December 1978, Surgery, gynecology & obstetrics,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
September 2020, Nature metabolism,
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
October 2021, Obesity (Silver Spring, Md.),
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
January 2010, Journal of applied physiology (Bethesda, Md. : 1985),
R Baczynski, and S G Massry, and M Magott, and S el-Belbessi, and R Kohan, and N Brautbar
May 1976, Hormone and metabolic research = Hormon- und Stoffwechselforschung = Hormones et metabolisme,
Copied contents to your clipboard!