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Biomedical subjects

H R Adams

Publications and source records attributed to H R Adams.

At least 55 records · Page 3Linked to original sources

Coronary vascular smooth muscle function in E. coli endotoxemia in dogs.

The purpose of this study was to determine whether intrinsic contraction-relaxation properties of coronary arteries are altered during acute gram-negative endotoxemia. Coronary vascular smooth muscle (VSM) was evaluated in vitro using large and small left circumflex coronary ring preparations isolated from dogs 4 h after administration of either saline (control; C) or 1.5 mg/kg Escherichia coli endotoxin (ET). ET dogs exhibited marked systemic hypotension and cardiovascular depression throughout the 4-h in vivo phase of the study accompanied by reduction in total left ventricular myocardial blood flow. Isolated coronary vessels were stretched to the apex of the length-contractile tension curve; no differences were observed in length-active or length-passive tension (vessel compliance) relationships between C and ET vessels. Isometric contractions produced by K+ and prostaglandin F2 alpha (PGF2 alpha) were similar in C and ET coronary arteries. VSM relaxant responses to nitroprusside (NP; 10(-10) to 10(-4) M) were also similar in C and ET vessels. In contrast to the apparent lack of effect of ET on directly acting VSM agents, relaxation responses to the endothelial-dependent vasodilator acetylcholine (ACh) were significantly less in ET vessels. Impaired vasodilator response to ACh was not improved by in vivo treatment with the combination antioxidant therapy of allopurinol, superoxide dismutase, and catalase. We conclude that both depolarization (K+) and receptor (PGF2 alpha)-mediated contractile mechanisms, as well as basal cGMP (NP)-mediated vasodilator mechanisms, remained functional in coronary vasculature during acute endotoxemia. Inhibition of ACh-mediated relaxation in ET vessels suggests altered endothelial-dependent vasodilation in coronary arteries during endotoxemia, but this change did not seem to be associated causally with oxygen free radicals.

Acetylcholine↗

Systolic and diastolic dysfunction of the left ventricle induced by dietary taurine deficiency in cats.

Isovolumic left ventricular (LV) preparations were used to assess myocardial failure associated with dietary taurine deficiency in cats. Adult female cats (n = 12) were fed a purified diet devoid of taurine for 6-8 mo. Six of the cats received 1,000 mg of crystalline taurine orally once daily. The remaining six cats were not provided taurine replacement. Compared with control preparations, hearts isolated from taurine-deficient cats generated significantly lower values for developed LV systolic pressure (107 +/- 6 vs. 66 +/- 15 mmHg; P less than 0.05), maximal rate of LV pressure rise (+dP/dtmax; 1,103 +/- 38 vs. 718 +/- 172 mmHg/s; P less than 0.05), and fall (-dP/dtmax; 930 +/- 46 vs. 587 +/- 129 mmHg/s; P less than 0.05). LV function curves generated by hearts from taurine-deficient cats were shifted downward and to the right of control curves, demonstrating inotropic depression. In addition, end-diastolic pressure-volume (compliance) relationships in hearts from taurine-deficient cats were shifted downward and to the right of controls in the direction of increased chamber compliance or distensibility. Ten millimolar taurine significantly improved inotropic indexes only in hearts from taurine-deficient cats but failed to affect diastolic compliance. Myocardial contractile dysfunction and LV chamber dilatation in hearts from taurine-deficient cats verify a causal association between dietary deficiency of this amino acid and dilated cardiomyopathy in this species.

Animals↗

Postinjection L-phenylalanine increases basal ganglia contrast in PET scans of 6-18F-DOPA.

The sensitivity of 18F-DOPA positron emission tomography for imaging presynaptic dopamine systems is limited by the amount of specific-to-nonspecific accumulation of radioactivity in brain. In rhesus monkeys, we have been able to increase this ratio by taking advantage of the lag time between 18F-DOPA injection and the formation of its main metabolite, the amino acid 18F-fluoromethoxydopa, the entrance of which into brain is responsible for most of the brain's nonspecific radioactivity. By infusing an unlabeled amino acid, L-phenylalanine, starting 15 min after 18F-DOPA administration, we preferentially blocked the accumulation of 18F-fluoromethoxydopa by preventing its entrance into brain through competition at the large neutral amino acid transport system of the blood-brain barrier. This method appears as reliable as the original and more sensitive, as demonstrated by the comparison of normal and MPTP-treated animals under both conditions.

Animals↗

Potentiation by glycine of anticonvulsant drugs in maximal electroshock seizures in rats.

This study evaluated the potentiation by glycine of anticonvulsant drugs in maximal electroshock seizures in rats. Administered alone, glycine (40 mmol/kg, p.o.) induced no anticonvulsant effect or neurotoxicity. Administered together with the anticonvulsants, glycine significantly enhanced the anticonvulsant potency of phenobarbital and carbamazepine. Glycine also potentiated the anticonvulsant actions of MK-801 and diazepam but did not improve the selectivity of the drugs, as effective doses were still associated with neurotoxicity. Glycine did not potentiate phenytoin or sodium divalproate. Administration together with glycine had no significant effect on the concentrations of phenobarbital or carbamazepine in the brain. Administration together with phenobarbital had no relevant effect on the concentration of glycine in the brain but administration of glycine and carbamazepine together resulted in an increased concentration of glycine in the hippocampus and brainstem. These findings indicate a possible glycine-sensitive component in the mechanism of action of phenobarbital, carbamazepine and diazepam in maximal electroshock seizures. Although the mechanism may not be mediated by a glycine-GABA interaction, the evidence does implicate a possible interaction between glycine and anticonvulsant drugs at NMDA receptors.

Animals↗

Inotropic and chronotropic profile of MCI-154: comparison with isoproterenol and imazodan in guinea pig cardiac preparations.

Although recent studies indicate that MCI-154 exerts novel positive inotropic actions in heart muscle, the chronotropic properties of this new drug remain undefined. The present study compared the inotropic/chronotropic profile of MCI-154 with those of a nonselective beta 1/beta 2-agonist (isoproterenol, Iso) and a type III phosphodiesterase inhibitor (imazodan, CI-914) in cardiac preparations isolated from guinea pigs. The inotropic efficacy of MCI-154 was approximately equal to that of Iso and CI-194 in electrically paced (1 Hz) atrial muscle, with each agent increasing isometric contractile tension approximately 170% above basal (predrug) values. The inotropic EC50 for Iso (2.9 +/- 0.7 x 10(-9) M) was several orders of magnitude less than that for MCI-154 (1.4 +/- 0.4 x 10(-4) M) and CI-914 (1.1 +/- 0.2 x 10(-4) M). The inotropic potency of MCI-154 was equivalent in atrial and left ventricular myocardium. Both Iso and CI-194 substantially increased spontaneous beating frequency of sinoatrial preparations, and the inotropic/chronotropic potency ratio for each was unity. In contrast, MCI-154 exerted a slight negative chronotropic action on basal sinoatrial rate. Moreover, the negative chronotropic influence of MCI-154 was increased several-fold in the presence of Iso-stimulated maximal increases in heart rate (HR), and this inhibitory chronotropic action of MCI-154 was not prevented by muscarinic receptor blockade with atropine. These findings indicate that MCI-154 has a unique inotropic/chronotropic profile in cardiac tissues of guinea pigs in that this drug (a) efficaciously increased myocardial contractility, (b) had minimal effect on basal sinoatrial automaticity and yet (c) markedly inhibited sympathetically mediated sinus tachycardia.

Animals↗

Left ventricular dysfunction in early E. coli endotoxemia: effects of naloxone.

Although the opiate receptor antagonist naloxone (NAL) has been reported to improve in vivo systolic performance of the heart in different circulatory shock syndromes, the influence of this drug on intrinsic cardiac mechanical function during hypodynamic circulatory states is unknown. The present study was designed to determine the effects of in vivo NAL on contraction-relaxation properties of isovolumic left ventricular (LV) preparations isolated from guinea pigs 4 h after induction of gram-negative endotoxemia. Animals were given a 1 mg/kg ip injection of Escherichia coli endotoxin and immediately treated intravenously with either NAL (4 mg/kg iv bolus plus 4 mg.kg-1.h-1 infusion) or an equivalent volume of saline. Endotoxin produced significant reduction of LV contractile function in coronary-perfused hearts, a response unaffected by NAL therapy. For example, LV systolic pressure at approximately 10 mmHg end-diastolic pressure averaged 78 +/- 3 and 82 +/- 6 mmHg in hearts from saline and NAL control animals, respectively, but only 41 +/- 2 and 40 +/- 2 mmHg in endotoxin and endotoxin plus NAL groups, respectively. LV end-diastolic pressure-volume relationships in endotoxin hearts were shifted upward and to the left of controls in the direction of decreased diastolic compliance (P less than 0.05). Importantly, in vivo NAL prevented the endotoxin-induced decrease in LV compliance of the isolated heart preparations (P less than 0.05). Thus intrinsic cardiac complications of early (4 h) nonhypotensive endotoxemia included decreased diastolic compliance as well as diminished contractility of the left ventricle. Only the diastolic compliance changes were NAL responsive and therefore may involve endogenous opioid systems in their pathophysiological expression.

Animals↗

Intrinsic myocardial dysfunction during endotoxemia: dependent or independent of myocardial ischemia?

The cardiac mechanisms responsible for endotoxin-mediated disruptions in left ventricular (LV) contraction-relaxation dynamics have been controversial. Recently, a combination of clinical cardiodynamic studies in patients along with experimental cardiodynamic studies in endotoxemic/septic animals and isolated heart tissue has yielded corroborating evidence for a consistent deleterious alteration(s) of intrinsic LV contractility during shock syndromes. Cardiac dysfunction in shock patients and intact animals was characterized by reduced LV ejection fraction in the presence of unchanging LV stroke volume, or by reduced LV end-systolic pressure-volume ratio. In hearts isolated from experimental shock subjects, LV contractile abnormality was characterized by reduced isovolumetric intraventricular pressure development and stroke volume, even in the presence of maximally effective increments in end-diastolic volume or preload. Cardiodynamic changes developed early in experimental septicemic shock syndromes (less than 4 hr) and were not irreversible. Furthermore, and this is a key element, both clinical and experimental study indicated that coronary perfusion inadequacy was not an obligatory etiologic factor in the shock-associated loss of cardiac contractile function. Thus, clinical and experimental data are now available to assemble a consensus that 1) intrinsic LV contractile reserves are diminished early during endotoxemia and sepsis and 2) this diminution is not simply a consequence of global myocardial ischemia.

Animals↗

6-18F-L-dopa imaging of the dopamine neostriatal system in normal and clinically normal MPTP-treated rhesus monkeys.

Positron emission tomography following intravenous administration of 6-[18F]-L-fluorodopa was used to investigate the usefulness of PET for the assessment of normal and abnormal dopaminergic function. For this purpose, the incracerebral distribution of 6-[18F]-L-fluorodopa and its metabolites was evaluated in normal control and asymptomatic MPTP-treated rhesus monkeys. MPTP is a neurotoxic compound which destroys selectively the dapaminergic neurons of the nigrostriatal pathways in primates. The 18F accumulation was found to be significantly reduced in the striatum, putamen more than caudate, of the MPTP-treated animals compared to the normal controls. The 18F accumulation in dopamine-poor areas did not differ between the two groups. The ratios of striatum to dopamine-poor brain area were highly correlated to the concentrations of the dopamine metabolite, homovanillic acid, in the cerebrospinal fluid of the same animals. The findings are consistent with the hypothesis that "silent damage" to the dopaminergic nigral neurons may precede the onset of parkinsonism by many years and that PET scanner examination using 6-[18F]-L-fluorodopa may be useful in the detection of subtle dopaminergic dysfunctions as may exist in DA-related motor syndromes and neuropsychiatric disorders.

Animals↗

Quality control procedure for 6-[18F]fluoro-L-DOPA: a presynaptic PET imaging ligand for brain dopamine neurons.

The goal of the current study was to establish a quality control procedure for clinical use of 6-[18F]fluoro-L-DOPA (6-[18F]-DOPA) as a selective presynaptic positron emission tomographic (PET) imaging ligand for brain dopamine neurons. A high performance liquid chromatographic procedure using a 5-mu C-18 reverse phase column and ion-pairing mobile phase was used for the quantification of 6-[18F]-DOPA. The radiochemical purity of 6-[18F]-DOPA was measured by 18F radioactivity in HPLC fractions while the chemical purity was determined by an amperometric electrochemical detector with a sensitivity of 25 pg. Quality control of eight consecutive batches of highly purified 6-[18F]-DOPA sample used in a pre-clinical trial revealed that the chemical and/or radiochemical purity of the PET imaging ligand, 6-[18F]-DOPA was greater than 97 +/- 0.5% with a specific activity of 365 +/- 31 mCi/mmol. The knowledge and assurance of radiochemical purity of PET ligands are essential for the interpretation of clinical PET imaging results. The assurance of such quality control would enable comparisons of 6-[18F]-DOPA/PET data obtained from various medical centers using different radiopharmaceutical procedures.

Brain↗

Gram-negative endotoxemia: effects on cardiac Na-Ca exchange and stoichiometry.

We studied the acute effects of gram-negative endotoxemia on Na-Ca exchange activity and stoichiometry in cardiac sarcolemmal (SL) vesicles isolated from pentobarbital-anesthetized dogs. Dogs were given either endotoxin (ET; 1.5 mg/kg IV) or saline vehicle (C; n = 4 dogs/group). Characteristic of endotoxemia, endotoxin produced a decrease in mean arterial pressure from 120 to 60 mmHg, an increase in packed cell volume from 38% to 60%, and an increase in heart rate from 130 to 190 bpm. After 2 hr, hearts were removed and SL vesicles were prepared from left and right ventricular tissue. For ET and C, Na-dependent Ca2+ uptake (left ventricle) was 3.13 and 3.44 (2 sec) and 18.60 and 19.42 (60 sec) nmole Ca2+/mg protein, respectively; ET group values were not significantly different from corresponding C values in either left or right ventricles. The stoichiometry of Na-Ca exchange was determined in left ventricular vesicles by a previously described thermodynamic approach utilizing a K+-valinomycin gradient opposed by Na+ equilibrium potentials (Reeves and Hale: J Biol Chem 259:7733-7739, 1984). The stoichiometry of exchange of Na+ for Ca2+ was 2.84 +/- 0.09 and 2.74 +/- 0.14 for ET and C, respectively. We conclude that during the developmental phase (2 hr) of endotoxemia, there were no ET-mediated changes in cardiac Na-Ca exchange activity in SL vesicles from either left or right ventricular tissue and the exchange process remained electrogenic with a stoichiometry of 3Na+ for 1Ca2+.

Animals↗

Evidence for lack of importance of oxygen free radicals in Escherichia coli endotoxemia in dogs.

Reactive oxygen species have been proposed as pathophysiological factors responsible for the hypodynamic circulatory response to gram-negative endotoxin. To test this hypothesis, we examined the cardiorespiratory effects of mechanistically different oxygen free radical scavenging agents during Escherichia coli endotoxemia in beagle dogs. Pentobarbital-anesthetized dogs were instrumented for repeated sampling of cardiorespiratory, hematologic, and tissue blood flow (radiolabeled 15-micron microspheres) indexes. Four groups were studied: 1) time-matched control dogs (n = 6); 2) dogs receiving only endotoxin (1.5 mg/kg; n = 6); 3) dogs receiving endotoxin and combination therapy with allopurinol (150 mg/kg) plus superoxide dismutase (5 mg/kg) and catalase (5 mg/kg; n = 6); and 4) dogs receiving endotoxin and deferoxamine (30 mg/kg; n = 5). Measured variables in control dogs were constant during the 4-h study, whereas endotoxin-injected dogs consistently demonstrated the following: 1) maintained reductions in blood pressure (greater than 45%), left ventricular systolic pressure (greater than 43%), left ventricular maximum rate of pressure development (+/- dP/dtmax) (greater than 41%), cardiac index (greater than 33%), and blood flow in all sampled tissues except liver and skeletal muscle; 2) transient tachypnea, bradycardia, and arterial acidosis; and 3) persistent neutropenia and hemoconcentration. Neither of the free radical scavenging protocols significantly improved measured variables during endotoxemia (P greater than 0.05). This lack of efficacy suggests that superoxide anion, hydrogen peroxide, and hydroxyl radical may lack primary pathophysiological importance during the development of E. coli endotoxicosis in intact dogs.

Animals↗

Coronary blood flow and cardiac adenine nucleotides in E. coli endotoxemia in dogs: effects of oxygen radical scavengers.

The purposes of this study were to determine the effects of E. coli endotoxin shock on coronary blood flow (CBF) and myocardial adenine nucleotides and to determine if reactive oxygen species are major causal factors in these effects of endotoxin. Twenty-three pentobarbital-anesthetized Beagle dogs were instrumented for recording cardiorespiratory parameters, injected i.v. with saline (time-matched controls; n = 6) or endotoxin (1.5 mg/kg; n = 17), and studied for 4 h. Endotoxin dogs also received either i.v. saline (shock controls; n = 6) or i.v. treatment with either deferoxamine (30 mg/kg; n = 5) or triple therapy (n = 6) with a combination of allopurinol (150 mg/kg), superoxide dismutase (SOD) (5 mg/kg), and catalase (CAT) (5 mg/kg). Cardiorespiratory and tissue blood flow variables were constant in sham-shock controls during the study, whereas endotoxin dogs developed typical canine endotoxemia with decreased left ventricular (LV) function. CBF was decreased by approximately 40% (P less than or equal to 0.5) in all endotoxin groups throughout the 4 h study period. However, based on hemodynamic estimates of myocardial O2 demand and endocardial/epicardial blood flow ratios, it seemed that coronary flow was matched to metabolic rate in all endotoxin groups. Endotoxin significantly lowered LV myocardial concentrations of ADP, AMP, NADH, and NADPH (range = 37 to 54%, P less than or equal to 0.05), but ATP, NAD, and NADP concentrations were not changed. The adenylate charge of the myocardium was between 0.91 and 0.95 in all endotoxin groups, suggesting that adequate energy was available in the myocardium during endotoxin shock. The lack of influence of deferoxamine, allopurinol, SOD, and CAT is indirect evidence that oxygen radicals are not primary pathophysiologic mediators in the cardiac response to gram-negative endotoxemia in this endotoxin model.

Adenine Nucleotides↗

New perspectives in cardiovascular medicine: the calcium channel blocking drugs.

Calcium channel blocking drugs reduce the influx of calcium (Ca++) through cell membrane passageways in excitable tissues. This unique pharmacodynamic action represents an important new addition to cardiovascular therapeutics. Clinically available members of this diverse group of compounds are verapamil, nifedipine, and diltiazem. Beneficial responses to these drugs can be explained by vasodilatation and resulting hemodynamic improvement in tissue perfusion-oxygen demand relationships, by suppression of Ca++-dependent arrhythmogenic mechanisms, by direct reduction of pathologic Ca++ overload in ischemic injured cells, or by a combination of these effects. Calcium channel blockade already has become a therapeutic mainstay in human medicine for management of ischemic heart disease and some forms of cardiac dysrhythmias. Relative to veterinary medicine, Ca++ channel blocking drugs may provide a clinical option for controlling supraventricular tachyarrhythmias. Other indications might include obstructive cardiomyopathies, shock-trauma, and congestive heart failure. Importantly, however, essential issues about adverse cardiovascular side effects of Ca++ channel blocking drugs remain unresolved and controversial. Recent studies especially have raised questions about the tendency for Ca++ channel blockade to exacerbate preexisting or occult myocardial contractile failure. Such pharmacodynamic complexities should be assessed judiciously as the Ca++ channel blocking drugs are appraised for entry into veterinary internal medicine.

Animals↗

Experimental endotoxemia increases plasma von Willebrand factor antigen concentrations in dogs with and without free-radical scavenger therapy.

Pentobarbital-anesthetized beagles were infused with physiologic saline (control dogs) or E. coli endotoxin (1.5 mg/kg i.v.) for 1 min. The plasma von Willebrand factor antigen (vWf:Ag) concentration, a potential index of endothelial damage, was monitored before and for 4 h after endotoxin challenge. The plasma vWf:Ag concentration increased only slightly in the control dogs (n = 6); whereas, in dogs infused with endotoxin (n = 20), the vWf:Ag concentration increased progressively to 2.1 times prechallenge values in 4 h. In addition to endotoxin, some of these dogs were treated with free-radical scavengers; allopurinol (n = 3), allopurinol plus superoxide dismutase and catalase (n = 6), or deferoxamine (n = 5). The free-radical scavengers did not prevent endotoxin-induced increases in vWf:Ag concentration.

Animals↗