PubMed Health⌕ Search

Biomedical subjects

R L Drake

Publications and source records attributed to R L Drake.

29 records · Page 2Linked to original sources

Abnormal hepatic lipid accumulation following treatment of diabetic rats with insulin and a high-carbohydrate, fat-free diet.

This study correlates the morphological and biochemical events during the accumulation of hepatic lipids in diabetic rats in response to insulin treatment and a high-carbohydrate, fat-free diet. Alloxan-diabetic rats were fed a high-carbohydrate, fat-free diet and treated with insulin for 12, 36, or 60 hr or 4.5 or 6.5 days. Samples of livers were obtained for determination of malic enzyme activity and the histochemical demonstration of lipids. An increased accumulation of hepatic lipids, although delayed, was observed following insulin treatment of diabetic rats fed the special diet. Small lipid droplets were visible after 36 hr of treatment, which later increased and coalesced into larger droplets present in all hepatocytes. Maximal accumulation was observed at 4.5 days of treatment. These changes were paralleled by an increase in the activity of hepatic malic enzyme. By 6.5 days of treatment, the lipid content of the hepatocytes had decreased and a periportal pattern was discernible. In contrast, malic enzyme activity continued to increase through 6.5 days of treatment. By comparison, no hepatic lipid accumulation occurred in regular chow-fed diabetic rats receiving insulin treatment or in diabetic rats placed on the special diet alone. These results suggest that the combination of insulin treatment and a high-carbohydrate, fat-free diet caused an imbalance in the production and mobilization of hepatic lipids.

Animals↗

Insulin regulation of fat cell ribosomes, protein synthesis, and lipoprotein lipase.

Ribosomes of high purity were isolated from fat cells by discontinuous sucrose gradient centrifugation. Approximately 23% of the ribosomes were membrane bound. A reproducible fraction of ribosomes was recovered as polysomes capable of incorporating [3H]leucine into peptides in a cell-free system. Insulin (0.1-1.0 mU/ml) produced an increase in polysomal activity. Linear sucrose gradient profiles also revealed an increase in the ratio of polysomes to total ribosomes. Coincident with this effect, insulin increased the lipoprotein lipase activity fraction inhibitable by cycloheximide (0.01 mg/ml), and the immunotitratable enzyme activity. Insulin also enhanced the incorporation of labeled amino acids into adipose tissue immunoprecipitable lipoprotein lipase and total fat cell proteins. Cordycepin (0.1 mg/ml) or alpha-amanitin (10 micrograms/ml) partially inhibited insulin effects on ribosomes and protein synthesis but not on lipoprotein lipase. EGTA (1mM) prevented all of the insulin effects, whereas the calcium ionophore A-23187 (2 microM) augmented the hormone actions. The ionophore alone partially mimicked the insulin effects. In adipocytes, insulin increased the size of the protein-synthesizing polysomal pool by a mechanism which, in part, requires nuclear mRNA processing. Insulin, however, increased lipoprotein lipase synthesis independent of nuclear events. Calcium ions may be important for the expression of these insulin effects.

Adipose Tissue↗

Insulin mediates the stimulation of pyruvate kinase by a dual mechanism.

A radioimmunoassay specific for liver pyruvate kinase was used to determine the mechanism(s) involved in the insulin stimulation of this enzyme activity in chronically diabetic rats. Rats, made diabetic with alloxan, were fed on a high-carbohydrate (50%-sucrose) fat-free diet and treated with insulin for 12, 36 or 60 h. Livers were removed at the various times, a piece was kept for determination of glycogen, and the remainder was homogenized. The 100000 g supernatant was prepared and used for determination of pyruvate kinase activity and quantity. Glycogen increased to a maximum of approx. 7% by 12 h after insulin treatment, and was maintained at this elevated value for 60 h. Liver pyruvate kinase activity, which is depressed in diabetes, did not respond to insulin until 36 h of treatment, with a more substantial increase occurring by 60 h. Radioimmunoassay data indicated that the increase in activity was concomitant with a substantial increase in the quantity of the enzyme and a moderate increase in its specific activity. These results demonstrate that a dual mechanism, i.e. an increase in both the quantity and specific activity of the enzyme, regulates the insulin-mediated stimulation of liver pyruvate kinase in the diabetic rat.

Animals↗

A dual mechanism regulates the insulin stimulation of hepatic malic enzyme.

The activity of malic enzyme, an important hepatic lipogenic enzyme, is stimulated in diabetic rats by insulin administration. This process was shown to involve increases in both enzyme quantity and the specific activity (units activity/nmol enzyme) of the enzyme. Therefore, the coupling of these two regulatory mechanisms was responsible for the insulin-mediated increase in malic enzyme activity.

Animals↗

Induction of hepatic malic enzyme in response to insulin.

The activity and quantity of hepatic malic enzyme were determined in diabetic rats at various times after insulin treatment. The increase in activity observed following insulin treatment was accompanied by a similar increase in the quantity of this enzyme, as determined by a specific radioimmunoassay. These results demonstrate that the insulin-mediated increase in malic enzyme activity was due to an increase in the quantity of enzyme and did not involve a modification of existing enzyme molecules.

Animals↗

Rapid alterations induced by insulin in hepatocyte ultrastructure and glycogen levels.

The speed with which insulin alters hepatocyte ultrastructure and glycogen levels in insulin-deficient rats has been studied. Insulin deficiency was induced with alloxan, followed by insulin treatment with regular and NPH insulin. Rats were killed at various times after the insulin injection, blood samples were obtained, plasma glucose levels were determined, and liver samples were prepared for electron microscopy and glycogen determinations. Plasma glucose levels in insulin-deficient rats declined to normal values by 4 hours post insulin, returning to insulin-deficient levels by 8 hours post insulin. Hepatic glycogen was considerably reduced in the insulin-deficient rats. By 1 hour post insulin hepatic glycogen increased, reached maximal levels by 8 hours, then declined to insulin-deficient levels by 36 hours. The ultrastructural appearance of both centrilobular and periportal hepatocytes from insulin-deficient rats showed abundant vesicular smooth endoplasmic reticulum (SER), decreased rough endoplasmic reticulum (RER), and enlarged RER intracisternal spaces. One-half hour post insulin, centrilobular hepatocytes were unchanged. In periportal hepatocytes, however, vesicular SER was no longer visible, the RER intracisternal spaces appeared normal, and the amount of RER had increased. By 1 hour post insulin the centrilobular hepatocytes showed similar ultrastructural changes. These changes became more pronounced in the next few hours and remained through 24 hours. By 36 hours both centrilobular and periportal hepatocytes appeared similar to those in the insulin-deficient rat. These results demonstrate the rapid and lobular-specific effects insulin has on the hepatocyte.

Animals↗