Search PubMed⌕ Search

Biomedical subjects

D Ito

Publications and source records attributed to D Ito.

63 records · Page 4Linked to original sources

First-pass metabolism of ethanol is predominantly gastric.

Oral consumption of alcohol results in much lower blood alcohol concentrations (BACs) than does the same dose administered intravenously, suggesting significant first-pass metabolism (FPM). The questions remain, however, (1) whether this difference truly represents FPM or simply reflects slower absorption of alcohol, and (2) if there is FPM, is it mainly of gastric or hepatic origin. To study this, rats were given the same dose alcohol (1 g/kg) by either intragastric intubation or by intravenous, intraportal, and intraduodenal infusions at a rate that mimicked the loss of alcohol from the stomach. Higher BAC levels after intravenous than intragastric alcohol indicated true FPM. Higher levels after intraportal or intraduodenal infusions (in fact, comparable to those obtained with the intravenous route) demonstrated negligible FPM when the route of delivery bypassed the stomach, yet included the liver. Furthermore, rats that had developed portosystemic shunts after ligation of the portal ven exhibited blood alcohol curves and FPM equivalent to those of sham-operated controls, indicating that FPM is not dependent on first-pass flow through the liver, but reflects gastric metabolism. The absence of significant hepatic FPM is attributable to the saturation of hepatic alcohol dehydrogenase by recirculating alcohol, resulting in no appreciable increase in metabolism secondary to newly absorbed alcohol. Finally, the in vivo gastric metabolism of alcohol in pylorus-ligated rats was demonstrated by significantly lower BACs when alcohol was administered intragastrically than when an amount identical to that lost from the ligated stomach was given intraportally. Thus, the lower BACs with oral as opposed to intravenous alcohol are not simply a consequence of slow absorption, but result from FPM occurring predominantly in the stomach.

Alcohol Dehydrogenase↗

Histochemical and immunohistochemical evidence for hepatic zone 3 distribution of alcohol dehydrogenase in rats.

The distribution of alcohol dehydrogenase in the hepatic acinus was examined by both histochemical and immunohistochemical approaches. The immunohistochemical method using anti-alcohol dehydrogenase antibody indicated zone 3 predominance of this enzyme in the hepatic acinus, whereas a conventional histochemical method showed slight zone 1 predominance. However, when the histochemical technique was improved by using 2% glutaraldehyde instead of formalin for fixation and by adding phenazine methosulfate (0.33 mmol/L) to the staining incubation mixture, this method also supported zone 3 predominance of alcohol dehydrogenase. Evidence for zone 3 distribution of alcohol dehydrogenase may be of value in elucidating the mechanism of zone 3 liver damage by alcohol.

Alcohol Dehydrogenase↗

Ethanol oxidation by deermice mitochondria under physiologic conditions.

Mitochondria obtained from alcohol dehydrogenase-positive or - negative deermice do not oxidize significant amounts of ethanol at pH 7.4. A slight activity, equivalent to less than 0.3% of the elimination rate in alcohol dehydrogenase-negative deermice was observed at pH 10; it was strongly inhibited by cyanide and thiourea, and was not dependent on exogenous NAD. Whereas ethanol oxidation by the cytosol of alcohol dehydrogenase-positive deermice was time-dependent, that of mitochondria from alcohol dehydrogenase-negative deermice was not. These findings indicate that deermice mitochondria do not oxidize ethanol at physiological pH, and that the mitochondrial system is not likely to play a significant physiologic role.

Alcohol Dehydrogenase↗

Role of peroxisomal fatty acid beta-oxidation in ethanol metabolism.

The contribution of peroxisomal fatty acid beta-oxidation to ethanol metabolism was examined in deermice hepatocytes. Addition of 1 mM oleate to hepatocytes isolated from fasted alcohol dehydrogenase (ADH)-positive deermice in the presence of 4-methylpyrazole or to hepatocytes from fasted or fed ADH-negative deermice produced only a slight and statistically not significant increase in ethanol oxidation. Lactate (10 mM), which is not a peroxisomal substrate, showed a greater effect on ethanol oxidation. There was also a lack of oleate effect on the oxidation of ethanol by hepatocytes of ADH-positive deermice. Furthermore, in ADH-negative deermice, the catalase inhibitor azide (0.1 mM) did not inhibit the increase in ethanol oxidation by oleate and lactate. The rate of oleate oxidation by hepatocytes from fasted ADH-negative deermice was much lower than that of ethanol. These results indicate that in deermice hepatocytes, peroxisomal fatty acid oxidation does not play major role in ethanol metabolism.

Alcohol Dehydrogenase↗

Significance of alcohol dehydrogenase (ADH) as a marker of hepatic centrilobular injury: a biochemical and immunohistochemical study.

Since we demonstrated previously that alcohol dehydrogenase (ADH) is distributed predominantly in zone 3 of the hepatic acinus, we have investigated the usefulness of determinations of serum ADH activity in the assessment of hepatic injuries. The measurement of serum ADH activity appears to be useful for the detection of acute and early centrilobular hepatic damage, as deduced from the results obtained from experimental hepatic injuries produced by bromobenzene, hypoxia and acute administration of ethanol. Whereas serum ADH activity increased slightly after the generation of an acute ethanol load in rats which were given ethanol chronically, the hepatic content of ADH tended to decrease. Moreover, a rather selective reduction of hepatic ADH activity was found in zone 3 of the hepatic acinus. Thus, it is conceivable that chronic alcoholic injury to the liver may result in persistent release of ADH from hepatocytes resulting in a relatively low elevation of the level of the enzyme in the blood, rather than a sudden release of the enzyme leading to a sharp increase in the serum enzyme activity.

Alanine Transaminase↗