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Biomedical subjects

A Anthony

Publications and source records attributed to A Anthony.

At least 91 records · Page 5Linked to original sources

Metabolism-permeability coupling in the normal rabbit aorta.

Microfluorimetric and quantitative cytoenzymatic techniques were employed to examine regional variations in endothelial macromolecular uptake as related to inner mural intermediary metabolism in aortas from normocholesterolemic rabbits. Concomitant reductions in luminal fluorescein isothiocyanate-conjugated bovine serum albumin (FITCBSA) accumulation and succinate (SDH), lactate (LDH) and glucose-6-phosphate (G-6-PDH) dehydrogenase activities were evidenced from ascending to upper abdominal segments. Further diminution of FITCBSA accumulation was observed in the lower abdominal aorta, whereas there was a corresponding elevation of enzyme activities. Highly significant but not exceedingly close correlations were obtained between luminal FITCBSA uptake and inner mural SDH and LDH activities. However, much of the associated variability was attributable to the lower abdominal segment, where there was a microscopically-discernible augmentation in adventitial surface FITCBSA accumulation. The overall data provide direct in vivo support for the concept that endothelial macromolecular transport is coupled to mural oxidative demands, but also indicate that luminal metabolism-permeability relationships are influenced by factors such as extensiveness of the vasoral network and wall thickness. Details of the metabolism-permeability coupling hypothesis and observations implicating metabolic events as basic causative factors underlying vascular pathogenesis are discussed.

Animals↗

Quantitative cytophotometric analyses of mesenteric mast cell granulation in acute soman intoxicated rats.

Effects of the organophosphate neurotoxin soman on rat mesenteric mast cell granule content were determined using scanning-integrating microdensitometric analysis of individual cell metachromasia. Mast cell degranulation was evidenced both with sublethal (0.5 LD50) and lethal (1.5 LD50) dosages and as early as 3-10 min post-injection. These data indicate a possible contribution of mast cell autacoids in the genesis of organophosphate-induced respiratory and circulatory collapse.

Animals↗

Adrenocortical metabolism and plasma corticosterone in soman intoxicated rabbits.

The organophosphate neurotoxin soman produced impairments in adrenocortical RNA and protein metabolism. Fasciculate and reticular cell RNA and protein contents were suppressed with sublethal to acutely lethal dosages (20, 30 and 40 micrograms/kg, s.c.) during the acute excitatory phase of intoxication and at 6-8 h post injection. All three dosages produced ca 90% inactivation of plasma cholinesterase. A transient elevation of plasma corticosterone occurred with 20 micrograms/kg soman whereas there was a protracted increase with 30 micrograms/kg. Corticosterone was not significantly elevated with 40 micrograms/kg, but death occurred at 13 +/- 4 min. Thus, the magnitude and/or nature of soman-induced metabolic impairments does not appear to prevent adrenal activation.

Adrenal Cortex↗

Effects of diazepam on soman-induced brain neuronal RNA depletion and lethality in rats.

Studies were conducted to determine effects of the benzodiazepine anticonvulsant diazepam on soman induced brain neuronal RNA depletion and lethality in rats. Quantitative azure B-RNA cytophotometry was used to monitor RNA responses of cerebrocortical (layer V) and striatal neurons following dosages of 0.5, 0.9 and 1.5 LD50 soman (LD50 = 135 micrograms/kg, sc), whereas mean time of death and 24-h survival following 0.8, 1.2 and 1.5 LD50 were used to assess the antidotal efficacy of diazepam (2.2 mg/kg, im) pretreatment. Soman produced dose-dependent RNA depletion in both brain regions. This RNA impairment was almost completely prevented by diazepam, although neuronal RNA contents were generally slightly lower than corresponding control values. However, diazepam pretreatment was not associated with any change in mean time of death or in 24-h survival. The overall data suggest that excessive neural activity per se may underlie the genesis of soman-induced central metabolic impairments, but also appear to effectively dissociate epileptiform activity from lethal actions of soman.

Acetylcholinesterase↗

Protective effect of diazepam pretreatment on soman-induced brain lesion formation.

Histopathological analyses of brains of rats receiving a single 0.9 LD50 injection of soman, a potent anticholinesterase neurotoxin, revealed massive widespread lesions in the cerebral cortex and thalamus 4 weeks post-injection. Such lesions were not evidenced in rats receiving diazepam (2.2 mg/kg, i.m.) 10 min prior to soman treatment. Thus, anticonvulsant antidotes may aid in preventing extensive or permanent brain damage in rats surviving near-lethal soman dosages.

Animals↗

Effects of HI-6 and pralidoxime on neuronal RNA in thalamic cholinergic sites.

Quantitative azure B-RNA cytophotometry was employed to compare effects of the oximes HI-6 and pralidoxime (2-PAM) to those of atropine sulfate (AS) on neuronal RNA metabolism in the thalamic ventrobasal nuclear complex (VBC) and nucleus reticularis (NR). The ability of these compounds to mitigate soman (pinacolyl methylphosphonofluoridate)-induced neuronal RNA alterations (i.e., VBC-RNA depletion/NR-RNA elevation) in these muscarinic cholinergic sites was also determined. Generally, HI-6 (125 mg/kg, i.p.) and 2-PAM (43.2 mg/kg, i.m.) elicited similar patterns of neuronal RNA changes, i.e., diminution of VBC-RNA and NR-RNA with oximes alone; partial amelioration of soman (1.5 LD50, s.c.)-induced VBC-RNA loss; and slight or no effect on soman induced NR-RNA accumulation. HI-6 produced more severe RNA reduction than 2-PAM in both brain regions of non-poisoned rats, whereas 2-PAM was more effective in reversing the effects of soman in these two regions. The muscarinic antagonist, AS, also produced VBC-RNA depletion and partially counteracted the VBC-RNA loss in soman intoxicated rats. Unlike the oximes, however, AS resulted in NR-RNA accumulation and it also antagonized soman induced NR-RNA elevation. Neither oxime reactivated soman inhibited brain acetylcholinesterase but HI-6 did reactivate appreciable plasma cholinesterase. The overall data suggest that HI-6 and 2-PAM do exert pharmacologic actions on cholinergic neurons in the rat CNS. However, the greater effectiveness of HI-6 over 2-PAM in countering lethal actions of soman does not appear to be correlated with oxime mediated restoration of neuronal RNA levels in these two cholinergic regions.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Influence of dose and sex on the disposition and hepatic effects of cinnamyl anthranilate in the B6C3F1 mouse.

Cinnamyl anthranilate is a synthetic food flavouring and fragrance agent, formerly used at very low levels. There is currently some concern over the potential risk to man from its use, since it has been found to cause liver tumours in mice, following the administration of very large doses. This paper reports studies of its disposition and hepatic effects in B6C3F1 mice in relation to dose. Following a single oral dose of 500 mg cinnamyl anthranilate/kg body weight to B6C3F1 mice peak plasma levels of unchanged compound were reached in 30 min, and were higher in males than in females. Unchanged cinnamyl anthranilate in the urine accounted for 0.3-0.4% of the dose. Anthranilic acid (c. 17%) and hippuric acid (35%; the major metabolite of cinnamyl alcohol) were present in the urine, and recoveries of both were higher in females. Groups of male and female B6C3F1 mice were given 0, 10, 100, 1000, 5000, 15,000 and 30,000 ppm cinnamyl anthranilate in the diet. After 4 days, the diet was removed and urine collected for 24 hr. This contained cinnamyl anthranilate (more in males) hippuric and anthranilic acids (more in females) in concentrations that increased with dose. Other animals were given these diets for 19 days and then killed. Relative liver weight and hepatic microsomal cytochrome P-450 increased with increasing dose above 1000 ppm cinnamyl anthranilate, more markedly in males than in females although the maximum response (roughly twofold) was very similar in the two sexes. SDS-PAGE examination of the microsomes revealed the induction of a cytochrome P-450 isozyme of 53.1 kDa, but the aniline hydroxylase and p-nitroanisole O-demethylase activities of the 9000 g supernatant of liver were not induced. The data are discussed in terms of their significance for the human safety evaluation of cinnamyl anthranilate. It is important to note that liver hypertrophy, microsomal enzyme induction and the excretion of unchanged cinnamyl anthranilate all have the same dose-threshold for their appearance. This suggests that the hepatic effects of cinnamyl anthranilate may be mediated by unhydrolysed cinnamyl anthranilate, which is present only at very high doses due to the saturation of its hydrolysis.

Animals↗

Cytophotometric analyses of thalamic neuronal RNA in soman intoxicated rats.

Quantitative azure B-RNA cytophotometry was used to monitor metabolic responses of individual neurons within the ventrobasal nuclear complex (VBC) and nucleus reticularis (NR) of the rat thalamus following administration of soman (0.5, 0.9 or 1.5 LD50, sc). A dose-dependent depression in brain acetylcholinesterase (AChE) was evidenced. With respect to thalamic RNA responses, a complex pattern of RNA alterations was evidenced, with these two regions generally exhibiting opposite patterns of dose-related RNA changes. With sub-lethal dosages of soman, RNA accumulation was evidenced in the acetylcholine (ACh) mediated excitatory VBC region and RNA depletion in the ACh mediated inhibitory NR neurons. With a lethal dose, an opposite RNA response pattern was observed in both thalamic regions. It is postulated that the observed RNA response pattern with sub-lethal dosages of soman is what one would anticipate with cholinergic brainstem reticular formation activation. The absence of such a response with lethal doses strongly suggests some disruption of functional excitatory cholinergic activity and perhaps also an impairment of inhibitory cholinergic synaptic activity.

Acetylcholinesterase↗

Nuclear chromatin changes in hepatocytes of soman treated rats.

Cytochemical and morphometric indices of DNA metabolism and nuclear transcriptional-translational capabilities were used to monitor liver responses in Sprague-Dawley X Wistar rats subcutaneously injected with 0.9 LD50 soman, a highly toxic acetylcholinesterase-inhibiting organophosphate. Thirty minutes post-soman the following were evident: (1) increased polyploidization; (2) expansion of the nuclear envelope; and (3) elevated deoxyribonucleoprotein (DNP) complex lability to acid hydrolysis. Nuclear changes were accompanied by cytoplasmic correlates of impaired hepatocyte function, i.e., vacuolation and depressed basophilia. The overall data suggest that with acute soman toxication there are concomitant adaptive and maladaptive responses occurring within liver parenchymal elements. It is postulated that nuclear changes represent an early proliferative response and DNP activation to enhance detoxification capabilities, whereas cytoplasmic changes reflect the disruption of normal function and hepatotoxic injury.

Animals↗

Brain neuronal RNA metabolism during sustained low-level soman toxication.

Quantitative azure B-RNA cytophotometry was used to monitor metabolic responses of cholinergic elements of the rat brain during sustained low-level administration of soman (0.25-0.50 LD50, sc). RNA contents of caudate and cerebrocortical (Layers III and V) neurons were measured 60 min following 1-5 soman dosages given at 24 h intervals. Marked and progressive RNA depletion was evidenced after 1-4 soman injections, whereas partial or complete restitution of RNA levels was observed following the fifth injection. These data indicate that repetitive soman toxication is associated with metabolic correlates of impaired rather than accentuated activation of CNS cholinergic systems, and that tolerance is developed to CNS actions of the agent. It is postulated that impaired neuronal activation is related to soman or ACh-induced transmission block, and that the same adaptive processes responsible for recovery during acute poisoning may underlie the development of tolerance during repetitive administration of organophosphates.

Acetylcholinesterase↗

Scanning cytophotometric analysis of myocardial nucleic acid and chromatin changes in soman toxicated rabbits.

Myocardial nucleic acid responses were analysed in New Zealand White rabbits 20 min-1 h and 6-8 h following single subcutaneous injections of soman (20, 30, or 40 micrograms kg-1). Scanning-integrating microdensitometry was used to quantify Azure B-RNA and Feulgen-DNA (F-DNA) levels, and changes in the susceptibility of chromatin to Feulgen acid hydrolysis (F-DNA reactivity) of individual ventricular myocardial cells. With a dosage of 20 micrograms kg-1 soman, no RNA alterations were evidenced at 1 h whereas at 6-8 h myocardial cells exhibited higher RNA levels and an increase in F-DNA reactivity of chromatin. With dosages of 30 and 40 micrograms kg-1 soman there was an augmentation in RNA levels and in the acid hydrolysability of nuclear chromatin at both 20 min-1 h and 6-8 h. It is postulated that the observed cellular transformations represent a compensatory augmentation in myocardial metabolic functioning presumably in response to an increased functional demand on the ventricular myocardium. The absence of cytopathic or cytochemical evidence of impairment in nucleic acid metabolism is inconsistent with the premise that soman exerts direct cytotoxic effects on rabbit myocardium.

Animals↗

Soman toxication in hypoxia acclimated rats: alterations in brain neuronal RNA and survival.

Effects of prior hypoxia acclimation (14-day at 380 mm Hg) on soman (pinacolyl methylphosphonofluoridate) induced brain neuronal RNA and acetylcholinesterase (AChE) depletion and lethality were monitored in rats following their return to ambient oxygenation. Quantitative cytochemical techniques were used to measure RNA and AChE changes in individual cerebrocortical (Layer III) and striatal (caudate plus putamen) neurons. In ambient Po2 controls, soman eventuated in a moderate diminution of neuronal RNA in both brain regions and severe, dose-dependent suppression of AChE activity. Hypoxia acclimation per se induced RNA alterations as manifested in cortical RNA depletion and increased variability of striatal neuron RNA contents. In hypoxia acclimated rats, the extent of neuronal RNA depletion following soman injection was attenuated in both brain regions, yet there were no discernible differences in saline control AChE levels or in the extent of soman-induced AChE inhibition in ambient control versus hypoxia acclimated treatment groups. Hypoxia acclimated rats, however, were found to be even more susceptible to lethal actions of soman as assessed using 24- and 48-hour survival following a three-point treatment regimen. These data indicate that while compensatory systemic and central metabolic adjustments associated with 14d acclimation to reduced oxygen availability may retard soman-induced neuronal RNA depletion, resistance to lethal or near-lethal soman exposure is not enhanced. It is postulated that hypoxia acclimation is associated with complex adaptive and maladaptive neurophysiological alterations influencing CNS responsiveness to soman toxication, and that detrimental consequences exceed protection afforded by metabolic adaptation.

Acclimatization↗

Interferometric analysis of intrasection and intersection thickness variability associated with cryostat microtomy.

Mach-Zehnder interferometric measurements were used to assess the extent of section thickness variability (inter- and intrasection) associated with cryostat microtomy of adrenal sections over a typical working range of 10-20 micron. Sections were obtained using a Bright's Cambridge rocking type and a Damon rotary type cryostat microtome to allow comparative analyses. The effective thickness of tissue sections after being mounted onto slides by flash drying was reduced by 90% relative to microtome section thickness setting. A linear relationship between measured thickness and microtome setting was obtained with both instruments. Thickness variability between replicate sections over the range of microtome settings approximated 11% for the rocking microtome and 5% with the rotary microtome. Average intrasection variability was found to be 7% for rocking microtome sections and 4% for sections obtained with the rotary microtome. However, this variability is a negligible source of error in cytophotometric analyses, providing replicate sections are used and an adequate number of measurements are made on mask-delimited individual cells or tissue specimen areas.

Adrenal Glands↗

Cytochemical correlates of atherosclerosis-resistant and susceptible lesions of the normal rabbit aorta.

Quantitative cytochemical and microfluorimetric techniques were employed to compare mural intermediary metabolism--endothelial macromolecular uptake changes in spontaneous aortic-arteriosclerotic lesions of normolipemic New Zealand White rabbits. Specifically, mural succinic (SDH), lactic (LDH), and glucose-6-phosphate (G-6-PDH) dehydrogenase activities and luminal surface uptake of fluorescein isothiocyanate-conjugated bovine serum albumin (FITC-BSA) were measured in lesion sites abnormally resistant (calcified) and susceptible (proliferative) to dietary hypercholesterolemia. Calcified lesions exhibited severe (55-66%) diminution of SDH, LDH, and G-6-PDH activities within the involved inner mural zone and a comparable (68%) decline in luminal FITC-BSA uptake. Concomitant reductions in FITC-BSA uptake (30%) and marker enzymes of the predominant energy transducing pathways in arterial tissue, i.e., SDH (30%) and LDH (31%), were evidenced in proliferative foci, whereas G-6-PDH was augmented (52%) in comparison to nonlesioned aortic segments. These data lend additional support to the concept that endothelial uptake of plasma-borne macromolecules is coupled to oxidizable substrate requirements of inner avascular compartments of the arterial wall. It is postulated that diminished macromolecular transport in these degenerative lesions stems from reduced mural metabolic demands, and that pharmacologic reduction of vascular smooth muscle metabolism may depress uptake of sclerogenic macromolecules.

Animals↗

Effects of HI-6 on brain neuronal RNA and acetylcholinesterase: metabolic responses during acute soman intoxication.

Quantitative cytochemical techniques were used to monitor effects of the bis-pyridinium oxime HI-6 with and without atropine sulfate (AS) on soman-induced cerebrocortical (layer V) and striatal neuron RNA and acetyl-cholinesterase (AChE) impairments. In addition, plasma cholinesterase (ChE) activity was measured to determine the extent of peripheral enzyme reactivation. Antidotal pretreatment effected complete (HI-6) or partial (AS) amelioration of neuronal RNA depletion evidenced following 1.5 LD50 (195 micrograms/kg) soman, whereas combined HI-6 + AS treatment only partially restored (cortical) or did not change (striatal) neuron RNA contents. HI-6 produced appreciable plasma ChE reactivation but brain AChE activity was not significantly altered. In rats treated only with antidotes, HI-6 or AS alone significantly reduced neuronal RNA in both brain regions. These data indicate that HI-6 influences the metabolic status of central cholinergic compartments and can completely protect against soman-induced neuronal RNA depletion. However, there are no precise relationships among RNA restitution, AChE reactivation or the protective potency of antidotal treatments. Effects of HI-6 on neuronal RNA may signify central cholinolytic activity in vivo, but indirect effects mediated by peripheral mechanisms can not be excluded at present.

Acetylcholinesterase↗

Cytophotometric analyses of brain neuronal RNA in soman intoxicated rabbits.

Quantitative azure B-RNA cytophotometry was used to monitor metabolic responses of individual neurons of the motor cortex (layer V) and caudate nucleus of soman (pinacolyl methylphosphonofluoridate) poisoned rabbits. Time- and dose-dependent RNA responses were related to the extent of acetylcholinesterase (AChE) inactivation of these 2 brain regions and to overt behavioral manifestations of toxication. A complex pattern of RNA responses was evidenced, with RNA depletion occurring at both arousal and convulsive doses of soman. In general, RNA changes paralleled previously reported metabolic responses observed in soman toxicated rats and mice: (1) linear dose-dependent suppression of RNA was evidenced during the depressant phase but not in the acute excitatory phase of toxication; and (2) RNA depletion was more severe following than during the appearance of excitatory symptoms. These data indicate that soman poisoning results in metabolic correlates of impaired rather than excessive CNS activation. It is postulated that metabolic disturbances are related to blockade of central cholinergic excitation, and that disruption of functionally integrated synaptic activity forms a critically important aspect of toxication.

Acetylcholinesterase↗

Bladder function following spinal cord injury: a urodynamic analysis of the outcome.

Repeated urodynamic testing was undertaken on a group of 58 consecutive patients admitted with acute spinal cord injury. Thirty-seven (64%) were able to void satisfactorily spontaneously, whereas 10 required bladder outlet surgery and 11 achieved emptying by either abdominal straining, intermittent self-catheterisation or an indwelling suprapubic catheter. The pattern of the initial cystometry soon after injury provided some idea of what possibilities could be expected of subsequent bladder function. Very high detrusor pressures exceeding 80 to 100 cm of water developed in a third of patients with supranuclear lesions. Six patients developed vesicoureteric reflux between 4 and 24 months after injury.

Acute Disease↗

Scanning-integrating cytophotometric analyses of brain neuronal RNA and acetylcholinesterase in acute soman toxicated rats.

Cytophotometric analyses of RNA and acetylcholinesterase responses of caudate and cerebrocortical neurons of soman toxicated rats were conducted to characterize impairments in regulatory aspects of neuronal metabolism occurring in the acute phase of cholinesterase impairment. There was a severe and dose-dependent suppression (20-60%) in neuronal acetylcholinesterase activity in both a.m. and p.m.-treated rats; no diurnal differences were apparent in control acetylcholinesterase levels or neuronal acetylcholinesterase responsiveness to soman toxication. RNA levels, however, were markedly higher in p.m. than in a.m. saline-treated controls. Soman depressed caudate neuron RNA contents in the afternoon, but not in the morning. Cerebrocortical neuron RNA levels were suppressed in both a.m. and p.m.-toxicated rats, although this RNA depletion was more severe in the afternoon. These results indicate that soman can elicit marked alterations in neuronal transcriptional-translational capabilities and that there are diurnal variations in cellular metabolic responsiveness to soman toxication. Although functional relationships between soman-induced cholinesterase inhibition and RNA depletion remain to be elucidated, depressed RNA metabolism appears to be a maladaptive response preventing rapid regeneration of cholinesterase following poisoning.

Acetylcholinesterase↗