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D Siehl

Publications and source records attributed to D Siehl.

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Mechanical factors affecting protein turnover in isolated rat hearts.

Induction of cardiac work increased protein synthesis in hearts supplied glucose or a mixture simulating normal plasma levels of glucose, insulin, glucagon, lactate, and beta-hydroxybutyrate. During 2 h of perfusion, cardiac work did not accelerate protein synthesis in hearts supplied a mixture of glucose, lactate, and higher concentrations of insulin. Protein degradation was decreased by work in hearts supplied glucose. Nitrogen balance was negative in Langendorff-perfused hearts provided glucose, but was less so in working preparations. Nitrogen balance was zero or positive in working hearts provided the mixture simulating plasma or the mixture of glucose, lactate, and insulin. In Langendorff preparations, increased aortic pressure accelerated protein synthesis during the second hour of perfusion in hearts supplied glucose, glucose plus insulin, or pyruvate. When ventricular pressure development was prevented by ventricular draining or when drained hearts were arrested with tetrodotoxin, protein synthesis still increased as perfusion pressure was raised from 60 to 120 mm Hg. Oxygen consumption increased as aortic pressure was increased in drained, beating hearts, but was unaffected in arrested, drained hearts. These studies indicated that increased aortic pressure and its attendant stretch of the ventricular wall were the mechanical parameter most closely associated with faster rates of protein synthesis.

Animals↗

Faster protein and ribosome synthesis in thyroxine-induced hypertrophy of rat heart.

Rates of protein synthesis and degradation were measured in hearts from normal and thyroxine-injected rats that were perfused as working preparations with Krebs-Henseleit bicarbonate buffer containing 400 microU insulin/ml, 2 mM lactate, 10 mM glucose, and normal plasma concentrations of amino acids. Hearts were perfused after four daily injections (1 microgram/g body wt) of thyroxine. Protein synthesis was 24% greater in hypertrophying hearts compared with controls; ribosomal RNA content increased 25%. In addition, the proportion of total RNA in free ribosomal subunits in hypertrophying hearts was unchanged from perfused hearts of control rats and from unperfused normal hearts. These results indicated that increased protein synthetic machinery as monitored by content of ribosomes, rather than more efficient initiation or elongation of peptide chains, accounted for the faster rate of protein synthesis in hypertrophying hearts. Rates of protein degradation were the same in hearts from thyroxine-injected and control animals. When rates of ribosome production were measured in vitro at various times after a single injection of thyroxine in vivo, faster ribosome synthesis was detected within 8 h; no change in the rate of total protein synthesis occurred after a single injection of thyroxine. These studies indicated that accelerated ribosome formation was an early and quantitatively important factor in cardiac hypertrophy.

Adenine Nucleotides↗

Faster protein and ribosome synthesis in hypertrophying heart.

Faster rates of protein synthesis in hypertrophying rat heart were associated with a 25% greater content of ribosomal RNA, termed capacity for protein synthesis. Efficiency of synthesis, nmol phenylalanine/mg RNA X h, was unchanged in hypertrophy induced by aortic banding or thyrotoxicosis. The proportion of total RNA in free ribosomal subunits in hypertrophying hearts was unchanged from that observed in perfused hearts from control rats and from unperfused normal hearts. Accelerated synthesis of new ribosomes was observed within 8 h of the injection of a pharmacologic dose of thyroxine, well before an increase in whole heart protein synthesis was observed. These results indicated that increased protein synthetic machinery, as monitored by content of ribosomes, rather than more efficient initiation or elongation of peptide chains, accounted for the faster rate of protein synthesis and that accelerated ribosome formation was an early and quantitatively important factor in hypertrophy.

Animals↗

Regulation of protein synthesis and degradation during in vitro cardiac work.

Cardiac work increased protein synthesis in hearts supplied glucose (mixture 1), glucose-insulin-glucagon-lactate-beta-hydroxybutyrate (mixture 2) or palmitate-beta-hydroxybutyrate-glucose (mixture 3). In hearts provided mixture 1, acceleration of synthesis involved increased rates of peptide chain initiation. In these hearts intracellular concentrations of 5 amino acids decreased and 13 others were unchanged, indicating that faster protein synthesis did not depend on increased amino acid availability. In hearts supplied mixtures 2, 3, or 4 (lactate-glucose-insulin), intracellular concentrations of branched-chain amino acids were decreased by work, whereas intracellular levels of some acidic and neutral amino acids increased. Protein degradation was decreased by work in hearts supplied mixtures 1 and 2, but not mixtures 3 and 4. In hearts provided mixture 1, nitrogen balance was negative, but less so in working preparations. Nitrogen balance was zero or positive in working hearts provided mixtures 2 and 4. These studies indicated that in hearts supplied some, but not all, of the substrate mixtures, cardiac work maintained efficiently of protein synthesis and inhibited protein degradation. An improved method for perfusion of working hearts with albumin-containing buffer is described.

Amino Acids↗

Effects of diabetes on protein turnover in cardiac muscle.

Effects of alloxan diabetes of 10-day duration on protein turnover were investigated in hearts perfused with buffers simulating control and diabetic sera. Diabetes produced a 30% inhibition of protein synthesis in hearts perfused as Langendorff or working preparations. This reduction was attributable to a 20% fall in RNA concentration and a 10% decrease in efficiency of protein synthesis. Determination of RNA in ribosomal subunits indicated that the reduction in efficiency that was observed with diabetes may be due to an inhibition of polypeptide chain elongation/termination. Pharmacological levels of insulin (25 mU/ml) and cardiac work stimulated protein synthesis in both control and diabetic hearts. Effects of diabetes and insulin on protein synthesis in isolated heart muscle cells were similar to those found in whole heart. Diabetes increased protein degradation in hearts perfused with buffer similating diabetic serum and under conditions of cardiac work. Insulin (25 mU/ml) decreased protein degradation in both control and diabetic hearts. These studies indicate that long-term diabetes produces a greater negative nitrogen balance that, in contrast to control hearts, cannot be normalized by pharmacological levels of insulin or by cardiac work.

Amino Acids↗

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