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Biomedical subjects

E F Williams

Publications and source records attributed to E F Williams.

At least 37 records · Page 2Linked to original sources

Affinity of calcium channel inhibitors, benzodiazepines, and other vasoactive compounds for the nucleoside transport system.

There is evidence to suggest that several different groups of drugs including the so-called coronary vasodilators, benzodiazepines, and calcium channel inhibitors may owe their vasoactivity, in part, to the potentiation of the vasorelaxant effects of endogenous adenosine. To measure the affinity of some of these agents for the membrane-located nucleoside transport system, competition binding assays have been performed using the high-affinity radioligand [3H]nitrobenzylthioinosine (NBMPR). Experiments were performed on human erythrocytes and cardiac membranes from guinea pigs and rats. Recognized nucleoside transport inhibitors had high affinity (less than 50 nM) for NBMPR recognition sites associated with the nucleoside transporter complex in human erythrocytes, whereas calcium channel inhibitors and benzodiazepines had predominantly low affinity (greater than 1 microM). Although some recognized transport inhibitors, such as dipyridamole, show marked differences in affinity for NBMPR sites in guinea pig and rat tissues, benzodiazepines and calcium channel blockers displayed no such species selectivity and had low affinity (greater than 1 microM) for NBMPR sites in both guinea pig and rat cardiac membranes. Consequently, it is unlikely that agents such as benzodiazepines and calcium channel inhibitors cause significant inhibition of adenosine transport, and hence potentiate adenosine actions, at the concentrations required to induce effects through occupation of their respective, specific high-affinity sites.

Animals↗

Nucleoside transport in heart: species differences in nitrobenzylthioinosine binding, adenosine accumulation, and drug-induced potentiation of adenosine action.

The site-specific binding of the potent and selective nucleoside transport inhibitor, [3H]nitrobenzylthioinosine (NBMPR), to the nucleoside transport system of cardiac membranes of several species was investigated. The affinity of [3H]NBMPR for these sites ranged from 0.03 nM in rat to 0.78 nM in dog. The maximal binding capacity of cardiac membranes for [3H]NBMPR was also species dependent and was greatest in bovine and guinea pig heart (2551 and 1700 fmol/mg protein, respectively) and least in rat (195 fmol/mg protein). The affinities of recognized nucleoside transport inhibitors and benzodiazepines for these transport inhibitory sites in guinea pig and rat heart were estimated by studying the inhibition of the site-specific binding of [3H]NBMPR in competition experiments. These values were compared with their inhibitory effects on the transporter-dependent accumulation of [3H]adenosine in guinea pig and rat cardiac muscle segments and with their ability to potentiate the negative inotropic action of adenosine in electrically driven guinea pig and rat left atria. In guinea pig heart, the recognized nucleoside transport inhibitors and benzodiazepines had an order of affinity (dilazep greater than hydroxynitrobenzylthioguanosine greater than dipyridamole greater than hexobendine much greater than lidoflazine much greater than flunitrazepam greater than diazepam greater than lorazepam greater than flurazepam) for the NBMPR site which was similar to those for the inhibition of [3H]adenosine accumulation and for potentiation of adenosine action. In contrast, in rat heart, where the maximal binding capacity of [3H]NBMPR was lower (eightfold), the nucleoside transporter dependent accumulation of [3H]adenosine was also lower (sixfold) and the negative inotropic action of adenosine was not significantly potentiated.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

Saturable, high affinity binding of the nucleoside transport inhibitor, nitrobenzylthioinosine, to guinea pig cardiac membranes.

The site-specific binding of the potent nucleoside transport inhibitor, [3H]nitrobenzylthioinosine ([3H]NBMPR), to guinea pig cardiac membranes was rapid, reversible and saturable. [3H]NBMPR bound with high affinity to a single class of sites at which the KD was 0.23 +/- 0.07 nM and which had a Bmax of 1700 +/- 290 fmol/mg protein. Several recognized nucleoside transport inhibitors and benzodiazepines inhibited the binding of [3H]NBMPR with an order of potency similar to that observed for the inhibition of the binding of [3H]NBMPR to human erythrocytes and guinea pig synaptosomes.

Animals↗

An in vitro binding assay which differentiates benzodiazepine 'agonists' and 'antagonists'.

An in vitro test which discriminates benzodiazepine "agonists' and 'antagonists' has been developed by exploiting the apparent differences in modulation of the benzodiazepine receptor by these classes of compounds. In the presence of 10 microM GABA, the potency of benzodiazepine 'agonists' (i.e., compounds which bind to the benzodiazepine receptor with a relatively high affinity and share pharmacologic properties with benzodiazepines) to displace [3H]3-carboethoxy-beta-carboline is significantly increased. In contrast, the potency of benzodiazepine 'antagonists' (compounds which have been demonstrated to antagonize some of the pharmacologic actions of benzodiazepines) is not altered by GABA. Several chemically diverse classes of compound have been examined in this test, and within the limited number of compounds examined, this test accurately predicts 'agonist' and 'antagonist' actions in vivo.

Animals↗

In vivo effects of two novel alkylating benzodiazepines, irazepine and kenazepine.

Intracerebroventricular administration of the alkylating benzodiazepines irazepine or kenazepine (20 nmol) resulted in a complete protection against convulsant doses of pentylenetetrazole (PTZ) for at least one hour, and a statistically significant protection for at least two and four hours, respectively. In contrast, administration of the non-alkylating parent benzodiazepine Ro-7/1986 or diazepam (20-60 nmol) resulted in no detectable anticonvulsants effects at fifteen minutes post-injection, the earliest interval examined. These results suggest that alkylating benzodiazepines which bind to brain benzodiazepine receptors in a non-competitive (covalent) fashion in vitro may exert a long lasting anticonvulsants effect by a similar mechanism.

Animals↗

Heterogeneity of benzodiazepine receptors in the central nervous system demonstrated with kenazepine, an alkylating benzodiazepine.

Binding studies using the alkylating benzodiazepine kenazepine strongly suggest the existence of several populations of benzodiazepine receptors in the CNS. Kenazepine reacts noncompetitively and irreversibly with some receptors and competitively (reversibly) with others. Cerebellum contains the largest proportion (approx. 80%) of the noncompetitive type, while hippocampus and cortex contain a preponderance of competitive-type receptors (approx. 80 and 50%, respectively). The Hill coefficients for kenazepine are approx. 0.7 in cortex and cerebellum, and near unity in dorsal hippocampus. Different populations of benzodiazepine receptors may mediate different physiologic and pharmacologic effects in vivo.

Animals↗

Specific inhibition of a calcium dependent activation of brain cyclic AMP phosphodiesterase activity by vinblastine.

Vinblastine selectively inhibits the activation of brain cyclic AMP phosphodiesterase activity by Ca++-protein activator (50% inhibition by 2 x 10(-5) M). This inhibitory effect was reversed by excessive amounts of the activator, whereas large quantities of Ca++ caused only a slight suppression of the vinblastine effect. This result of vinblastine suggests a new site of its action and also suggests the possible role of protein activator, phosphodiesterase proteins or cyclic nucleotides in the previously known effects of vinblastine in vivo and in vitro.

3',5'-Cyclic-AMP Phosphodiesterases↗

Dental resins with reduced shrinkage during hardening.

Unsaturated spiro-orthocarbonates are monomers that expand on polymerization and will co-polymerize with conventional BIS-GMA based resins. This combination has good physical properties and bonding to enamel with some polymerization expansion evident at 50 C. Dispersion of the carbonate in microcrystalline form in liquid monomer appears to be a method to allow its reaction in the initial polymerization.

Adhesiveness↗

Effects of sound stimulus on gastric secretion and plasma corticosterone level in rats.

The effects of sound stimulus were studied on the gastric secretion in rats with chronically implanted cannulas. Attempts were made to correlate the changes in the secretion with those of the plasma corticosterone level. Exposure of the animals to sound stimulus (1 hr or 2 hr) produced a marked decrease in gastric secretion and a concomitant increase in plasma corticosterone. It appears that in producing these effects sound stimulus acted as a stressor. Furthermore, a paradoxical increase in secretion was noted in the first hour collection prior to the sound stimulus. This initial increase in secretion may be due to an adaptive compensatory mechanism in anticipation of its marked inhibition.

Acoustic Stimulation↗