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Biomedical subjects

S Hishida

Publications and source records attributed to S Hishida.

48 records · Page 3Linked to original sources

Alcohol sensitivity related to polymorphism of alcohol-metabolizing enzymes in Japanese.

Normal Japanese subjects were divided into two groups, i.e., one with both low and high Km isozymes of aldehyde dehydrogenase for acetaldehyde, and the other deficient in the low Km isozyme. After intake of 0.4 g/kg alcohol, the deficient subjects showed high level of blood acetaldehyde, facial flushing and the other dysphoric symptoms, including increase of pulse rate, decrease of diastolic blood pressure, changes of pulse wave in the fingertip, and elevation of the arterial pressure and blood flow rate in common carotid arteries as well as increase of plasma catecholamines level. In contrast, subjects with normal ALDH did not show these changes. From the observation of liver specimens obtained at autopsy, the frequency of deficient phenotype of ALDH in Japanese was presumed to be about 36%.

Acetaldehyde↗

Comparative study of field desorption and secondary ion mass spectra for antibiotics.

Nonvolatile and thermolabile antibiotics are investigated both by field desorption and by secondary ion mass spectrometry (SIMS). It has been successfully demonstrated that these two methods are complementary in obtaining informations about molecular weight and structure. Although FD is most widely used for the investigation of nonvolatile biologically active compounds, there are some compounds of which FD can not provide reliable information. SIMS is successfully applied to obtain structural information of these compounds. SIMS spectra frequently depend on the surface conditions of sample holder materials.

Aminoglycosides↗

Individual differences in blood and breath acetaldehyde levels and urinary excretion of catecholamines after alcohol intake.

Sixty three male Japanese, aged 20-40 yr were evaluated as to the degree of facial flushing following a controlled dose of ethanol either as Japanese rice wine or ethanol 0.4 g kg body weight. Thirty four subjects responded with overt facial flushing. The acetaldehyde levels in blood and expired air were significantly higher in the flushing group without a change in ethanol elimination rate. Urinary excretion of Vanilmandelic acid (VMA) and 3 methyoxy-4-Hydroxyphenylglycol (MHPG) are reported.

Acetaldehyde↗

Relationship between facial flushing and blood acetaldehyde levels after alcohol intake.

Normal subjects were divided into two groups, i.e., those showing, and those not showing, facial flushing after consuming a small amount of alcohol. In the flushing group, increases of pulse rate, facial skin temperature and carotid arterial pressure and blood flow rate, as well as changes of digital plethysmogram and electrocardiogram, were found together with a conspicuous rise in blood acetaldehyde levels after the drinking. However, significant changes of the signs as mentioned above and elevation of blood acetaldehyde did not occur in the non-flushing group. The maximum blood alcohol levels and the rate of alcohol elimination showed not difference between these two groups. Furthermore, urinary excretions of epinephrine and norepinephrine increased in the flushing cases after the drinking.

Acetaldehyde↗

Isolated corticotrophin-deficiency found through alcohol-induced hypoglycemic coma.

A case of hypoglycemic coma after alcohol ingestion was observed in a chronic alcoholic. Upon close examination isolated corticotrophin-deficiency was found. It is suggested that ethanol-induced hypoglycemia may be consistent with dysfunction of mitochondria in hepatic cells and that there may be disorder of the hypothalamus in the chronic drinker.

Adrenocorticotropic Hormone↗

Cholinergic nerves mediate acetaldehyde action in the gastrointestinal tract.

The regulation mechanism of inhibition of intestinal ethanol absorption induced by high acetaldehyde (AcH) concentration in blood was investigated. We used atropine (AT), atropine methylbromide (ATMB), pirenzepine (PI), bethanechol (BE) and pilocarpine (PL) with or without cyanamide (CY; a potent inhibitor of aldehyde dehydrogenase, which induces high AcH concentration in blood). The K(a) (absorption rate constant) value after the CY-alone pretreatment was significantly lower than that in controls. In the high AcH-induced cases, the values of K(a) in AT and ATMB pretreatments were similar to controls, but the value of K(a) in PI pretreatment was lower than that in controls. The values of K(a) in the case of BE pretreatment with and without high AcH levels were lower than in controls. The K(a) value in the PL with CY was significantly lower than that with CY alone. However, its action was blocked by ATMB pretreatment. These results suggest that high blood AcH concentrations inhibit intestinal ethanol absorption through the peripheral cholinergic nerves via muscarinic receptors, except for the muscarinic M(1) receptor, compared to other subtypes of muscarinic receptors.

Acetaldehyde↗