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Biomedical subjects

M B Bottorff

Publications and source records attributed to M B Bottorff.

At least 19 recordsLinked to original sources

Use of diagnostic cluster methodology for therapeutic costing and drug surveillance of HMG-CoA reductase-inhibitor therapy.

Diagnostic cluster methodology groups patients having similar medical conditions according to their International Classification of Diseases, 9th Revision codes. Episodes of care related to the diagnostic cluster can then be tracked from the claims data to determine the total charges associated with patient management. A retrospective claims analysis using an episode registry database was conducted to determine the 1-year (July 1, 1995, to June 30, 1996) covered charge for statin therapy, the overall cost of treating related cardiovascular (CV) disease, and the cost impact of coadministration of drugs that potentially compete for hepatic metabolism. The three statin treatment groups (lovastatin, pravastatin, and simvastatin) were similar with respect to age, gender, mean number of prescription refills, rate of refill compliance, and prevalence of the coadministration of potentially interacting agents. Before adjustment for severity of illness, there were no significant differences between groups in prescription drugs/services (statin Rx/Svc) or total CV charges. After adjustment for severity of illness, the pravastatin group had the lowest statin Rx/Svc and total CV charges. Within the group with the greatest severity of illness, statin Rx/Svc charges were significantly lower with pravastatin than with lovastatin and simvastatin. The statin Rx/Svc charges were not significantly different between lovastatin and simvastatin. Coadministration of a potentially interacting agent significantly increased both the statin Rx/Svc and total CV charges within the simvastatin-treated group but did not significantly influence costs in the lovastatin- or pravastatin-treated groups. The estimates of direct costs derived from this analysis are consistent with findings in the published literature and demonstrate that pravastatin has cost advantages compared with lovastatin and simvastatin. Diagnostic cluster methodology also generated valuable information regarding drug surveillance and the health care cost impact of potential drug-drug interactions with selected statins.

Cardiovascular Diseases↗

Pharmacokinetics of eprosartan in healthy subjects, patients with hypertension, and special populations.

After oral administration of eprosartan to healthy volunteers, bioavailability is approximately 13%, with peak plasma concentrations occurring 1-2 hours after an oral dose in the fasted state. Food slows the rate of absorption and changes the overall extent by less than 25%, which is unlikely to be of clinical consequence. Plasma concentrations increase in a slightly less than dose-proportional manner from 100-800 mg. There is no evidence of significant accumulation of eprosartan with long-term therapy. The drug's terminal elimination half-life is typically 5-9 hours after oral administration. The agent is highly protein bound (approximately 98%), with low plasma clearance (approximately 130 ml/minute) and small volume of distribution (approximately 13 L). It is primarily unmetabolized by the liver, with less than 2% of an oral dose recovered in the urine as a glucuronide. Biliary (primary) and renal excretion contribute to its elimination. No dosage adjustment is required in patients with mild to moderate renal impairment. Although an increase in systemic exposure to eprosartan was observed in the elderly, in patients with hepatic impairment, and in those with severe renal disease, this finding is unlikely to be of clinical consequence, based on the drug's excellent safety and tolerability profile (doses up to 1200 mg) in phase III clinical trials in hypertensive patients. Eprosartan can be safely administered to these special populations without an initial dosage adjustment, with subsequent dosing individualized based on tolerability and response.

Absorption↗

Aging effects on the organic base transporter and stereoselective renal clearance.

OBJECTIVE: The organic base transporter is responsible for stereoselective renal excretion. Changes in activity of this system secondary to aging may affect the disposition of an organic base in a stereoselective manner. METHODS: Eight young men (age range, 22 to 33 years) and seven elderly men (age range, 62 to 79 years) were given 10 mg pindolol twice daily, pindolol with 200 mg trimethoprim once daily (a known inhibitor of organic base secretion) and pindolol with 1.5 gm ammonium chloride (NH4Cl) four times daily for 3 days on three occasions. On day 4, urine and plasma were collected over 24 hours to determine renal clearance (CLR) values of pindolol isomers. RESULTS: R(+)-Pindolol CLR values in young versus elderly men were 203 +/- 82 versus 150 +/- 87 ml/min, 128 +/- 51 versus 113 +/- 35 ml/min, and 480 +/- 248 versus 247 +/- 59 ml/min during the control, trimethoprim, and NH4Cl study phases, respectively. S(-)-Pindolol CLR values in young versus elderly were 279 +/- 81 versus 207 +/- 105 ml/min, 178 +/- 70 versus 136 +/- 42 ml/min, and 593 +/- 294 versus 276 +/- 49 ml/min during control, trimethoprim, and NH4Cl phases, respectively. NH4Cl increased R(+)-pindolol CLR by 138% (p < 0.05 versus pindolol alone) in young men, which was significantly greater than that observed in elderly subjects (66%; p < 0.05 versus pindolol alone; p = 0.016 young versus old). NH4Cl affected S(-)-pindolol CLR in a similar manner. Trimethoprim decreased R(+)-pindolol CLR in the young subjects by 37% (p < 0.05 versus pindolol alone), which was similar to that observed in the elderly subjects (26%; p < 0.05 versus pindolol alone; p = 0.94 young versus elderly). Trimethoprim affected S(-)-pindolol CLR in a similar manner. Stereoselective renal excretion of pindolol was unaffected by NH4Cl and trimethoprim, where the R(+)/S(-)-pindolol CLR ratio was unchanged (p = NS) from control in the young and elderly subjects. Comparison of the pindolol CLR isomer ratio between young and elderly groups showed no significant differences. Changes in pindolol clearance values resulted in significant changes in beta-blocking activity, assessed by isoproterenol (INN, isoprenaline) testing. CONCLUSIONS: Trimethoprim and NH4Cl significantly affect pindolol renal and total clearance values. Aging does not alter renal excretion of pindolol except for the magnitude by which renal excretion can be stimulated.

Adrenergic beta-Antagonists↗

Hypertonic saline does not reverse the sodium channel blocking actions of lidocaine: evidence from electrophysiologic and defibrillation studies.

Studies have shown that increasing extracellular sodium concentration can partially reverse sodium channel blockade. However, there is conflicting in vitro evidence in this regard for lidocaine. The effects of lidocaine on cardiac electrophysiology and defibrillation were studied in a basal and hypernatremic state to determine reversibility of sodium channel blockade. Electrophysiologic studies measured right ventricular effective refractory period at 350 ms pacing cycle length and QRS interval, JT interval, and monophasic action potential duration during sinus rhythm and right ventricular pacing (350 ms cycle length) in 14 pentobarbital-anesthetized swine (25-30 kg). Defibrillation threshold (DFT) was measured by quantitating successful conversion of sustained ventricular fibrillation to normal sinus rhythm. Each pig was randomly assigned to a treatment group with three study phases; group 1 = baseline, lidocaine (20 mg/kg/h), and lidocaine plus placebo (D5W; n = 7); and group 2 = baseline, lidocaine, and lidocaine plus hypertonic saline (2-3 mM/kg/h; n = 7). In groups 1 and 2, lidocaine infused alone significantly (p < 0.01) increased DFT values from baseline (9.8 +/- 3.9 to 15.7 +/- 5.8 J and 8.9 +/- 2.9 to 14.7 +/- 5.4 J, respectively) and increased QRS duration from baseline during right ventricular pacing (89 +/- 6 to 109 +/- 10 ms; p < 0.01; and 87 +/- 6 to 103 +/- 12 ms; p < 0.01). Lidocaine alone reduced right ventricular action potential duration (APD) in groups 1 and 2 (214 +/- 18 to 206 +/- 20 ms; p < 0.10; and 228 +/- 8 to 212 +/- 8 ms; p < 0.05), respectively, and it reduced paced JT interval in both groups (194 +/- 20 to 184 +/- 18 ms; p < 0.10; and 200 +/- 12 to 183 +/- 16 ms; p < 0.05), respectively. When hypertonic saline was added to lidocaine, DFT and QRS duration values were unaffected (14.7 +/- 5.4 to 16.1 +/- 3.7 J and 103 +/- 12 to 100 +/- 11 ms, respectively). However, APD and JT intervals returned to basal values when hypertonic saline was added to lidocaine (212 +/- 8 to 225 +/- 13; p < 0.05; and 183 +/- 16 to 192 +/- 18; p < 0.05, respectively). When D5W was added in the control group, no changes occurred in DFT or electrophysiologic values. Lidocaine slowed ventricular conduction velocity and reduced APD. The administration of hypertonic saline to increase extracellular sodium concentrations failed to reverse the effect of lidocaine on conduction-velocity slowing or elevated DFT values. Hypertonic saline did reverse the effects of lidocaine on repolarization parameters. These data suggest that shortening of repolarization is not a mechanism by which lidocaine makes it more difficult to defibrillate the heart.

Action Potentials↗

Mechanism of antiarrhythmic drug-induced changes in defibrillation threshold: role of potassium and sodium channel conductance.

OBJECTIVES: We sought to determine which ion current predominantly affects defibrillation outcomes by using specific pharmacologic probes (lidocaine [a sodium channel blocking agent] and cesium [an outward potassium channel blocking agent]) in 26 swine. BACKGROUND: The effect of a drug on sodium or potassium channel conductance, or both, may affect defibrillation threshold values. However, it is unknown which ion channel predominates. METHODS: Each pig was randomly assigned to one of four treatment groups with two treatment phases: group 1 = placebo (D5W) in treatment phase I followed by placebo plus cesium in treatment phase II (n = 6); group 2 = lidocaine followed by lidocaine plus placebo (n = 7); group 3 = lidocaine followed by lidocaine plus cesium (n = 7); group 4 = placebo followed by placebo plus placebo (n = 6). Defibrillation threshold values and electrocardiographic measurements were obtained at baseline and at treatment phases I and II. RESULTS: Lidocaine increased defibrillation threshold values from baseline by 71% in group 2 (p = 0.02) and by 92% in group 3 (p < 0.01). There were no changes in defibrillation threshold values from baseline to D5W in groups 1 and 4. When D5W was added to lidocaine in group 2 and D5W in group 4, there were no significant changes in defibrillation threshold values. However, when cesium was added to lidocaine in group 3, the elevated defibrillation threshold values (mean +/- SD) returned to baseline values (from 15.7 +/- 3.46 to 7.55 +/- 3.19 J, p < 0.01). Cesium added to D5W in group 1 also significantly reduced defibrillation threshold values from 7.10 +/- 1.27 to 4.14 +/- 1.75 J (p < 0.01). The effect of cesium on defibrillation threshold values was similar between groups 1 and 3, regardless of lidocaine, such that these values were reduced by 40 +/- 14% and 51 +/- 18%, respectively (p = 0.28). CONCLUSIONS: Cesium, through potassium blockade, reverses lidocaine-induced elevation in defibrillation threshold values. The magnitude of defibrillation threshold reduction when cesium was added to lidocaine was similar to the defibrillation threshold reduction when cesium was added to placebo. Thus, inhibiting outward potassium conductance and prolonging repolarization decreases defibrillation threshold values independent of sodium channel blockade.

Animals↗

Influence of hypertonic saline solution infusion on defibrillation efficacy.

Hypertonic saline solution may enhance cardiac conduction via the fast inward sodium channel and alter transmembrane Ca+2 conductance via the sodium-calcium exchanger. Evidence suggests that both Ca+2 conductance and myocardial conduction velocity may affect ventricular defibrillation. Since hypertonic saline solution solutions (ie, sodium bicarbonate) may be administered to patients who have conditions that often require ventricular defibrillation (ie, cardiac arrest or hypovolemic shock), we studied the effect of hypertonic saline solution on the defibrillation threshold (DFT) in 16 pentobarbital-anesthetized domestic farm swine (20 to 30 kg). Defibrillation was performed using two interfaced epicardial electrode patches. DFTs were determined at baseline and during treatment phase. Pigs were randomly assigned to treatment consisting of either hypertonic saline solution (6 mmol/kg load, 2.0 to 3.0 mmol/kg infusion) to maintain serum sodium concentrations 10 to 15 mmol/L above baseline or control (D5W given in equal volume). DFT values (joules) that predicted 50% success were modeled from a best-fit histogram. Hypertonic saline solution did not change DFT values from baseline values (10.2 +/- 4.3 vs 10.8 +/- 7.0, respectively). Likewise, placebo (D5W) did not change DFT values from baseline values (10.1 +/- 4.5 vs 11.3 +/- 4.3). During treatment phase, DFT values were 99 +/- 28% of baseline values in the hypertonic saline solution group and 116 +/- 23% of baseline values in the D5W groups (p = 0.21). The administration of hypertonic saline solution also did not affect ventricular conduction velocity, right ventricular action potential duration, or right ventricular effective refractory period. These data indicate that hypertonic saline solution does not appreciably affect defibrillation efficacy or electrical treatment of ventricular fibrillation.

Animals↗

Urine acidification affects the activity of the organic base transporter in a nonstereoselective manner.

This investigation determined 1) the effect of urine acidification on renal clearance (Clrenal), total systemic clearance (Cltotal) and nonrenal clearance (Clnonrenal) of pindolol, 2) whether urine acidification affected the stereoselectivity of pindolol excretion and 3) the pharmacodynamic effects that may result from changes in the activity of the organic base transporter. The Clrenal, Cltotal and Clnonrenal values of pindolol isomers were determined during pindolol administration (10 mg twice daily; control phase) and during pindolol administration (10 mg twice daily) with NH4Cl, a systemic and urinary acidifier, (1.5 g every 6 hr). Eight healthy males (22-33 yr) randomly received this therapy for 3 days on two occasions. On day 4, urine and plasma were collected over 24 hr. R-(+) pindolol Clrenal values during control and NH4Cl were 203 +/- 82 and 480 +/- 248 ml/min, respectively (P = .03). S-(-) pindolol Clrenal values during control and NH4Cl were 279 +/- 81 and 593 +/- 294 ml/min, respectively (P = .005). NH4Cl increased R-(+) pindolol Clrenal by 173% +/- 136% (P = .003) and S-(-) pindolol Clrenal by 127% +/- 105% (P = .03). Stereoselective renal excretion of pindolol was unaffected by NH4Cl; the R(+)/S(-) pindolol Clrenal ratio was unchanged from control to NH4Cl (0.74 +/- 0.23 to 0.81 +/- 0.10, P = NS, respectively). NH4Cl, however, affected pindolol Clnonrenal in a stereoselective fashion; R-(+) pindolol Clnonrenal values increased (641 +/- 241 to 851 +/- 251 ml/min; P = .02), whereas S-(-) pindolol Clnonrenal values remained constant (354 +/- 116 vs. 370 +/- 213 ml/min). Changes in pindolol clearance values resulted in a significant reduction in beta-blocking activity assessed by isoproterenol testing. We conclude that increasing the urine proton gradient can increase the Clrenal value of organic bases by 2-fold in a manner that is not stereoselective. NH4Cl, however, did increase the Clnonrenal value of pindolol in a stereoselective manner. These data, therefore, indicate that the administration of a urine-acidifying agent can greatly enhance the elimination of organic bases and ultimately reduce the pharmacologic activity of the organic base.

Adult↗

Pharmacokinetic interactions with calcium channel antagonists (Part I).

Calcium channel antagonists are a diverse class of drugs widely used in combination with other therapeutic agents. The potential exists for many clinically significant pharmacokinetic interactions between these and other concurrently administered drugs. The mechanisms of calcium channel antagonist-induced changes in drug metabolism include altered hepatic blood flow and impaired hepatic enzyme metabolising activity. Increases in serum concentrations and/or reductions in clearance have been reported for several drugs used with a number of calcium channel antagonists. A number of reports and studies of calcium channel antagonist interactions have yielded contradictory results and the clinical significance of pharmacokinetic changes seen with these agents is ill-defined. The first part of this article deals with interactions between calcium antagonists and marker compounds, theophylline, midazolam, lithium, doxorubicin, oral hypoglycaemics and cardiac drugs.

Anti-Arrhythmia Agents↗

Pharmacokinetic interactions with calcium channel antagonists (Part II).

Since calcium channel antagonists are a diverse class of drugs frequently administered in combination with other agents, the potential for clinically significant pharmacokinetic drug interactions exists. These interactions occur most frequently via altered hepatic blood flow and impaired hepatic enzyme activity. Part I of the article, which appeared in the previous issue of the Journal, dealt with interactions between calcium antagonists and marker compounds, theophylline, midazolam, lithium, doxorubicin, oral hypoglycaemics and cardiac drugs. Part II examines interactions with cyclosporin, anaesthetics, carbamazepine and cardiovascular agents.

Anesthetics↗

Labetalol pharmacokinetics and pharmacodynamics: evidence of stereoselective disposition.

Labetalol pharmacokinetics and pharmacodynamics were evaluated in nine subjects before and during enzyme inhibition with cimetidine. Pharmacologic response was assessed by use of standardized treadmill tests during 24 hours after administration of oral labetalol. Oral clearance of labetalol decreased with cimetidine administration (58.7 +/- 23.3 to 32.9 +/- 13.2 ml/min/kg; p less than 0.05), thereby causing a 79% increase in area under the curve. Labetalol systemic clearance also decreased (23.2 +/- 5.3 to 17.7 +/- 3.7 ml/min/kg; p less than 0.05), but the volume of distribution was unchanged. Labetalol caused significant beta-blockade for 8 hours after the last oral dose, but cimetidine did not alter pharmacologic response. The Emax model provided a good description of the concentration-effect relationship. At peak labetalol concentrations after oral administration, (R,R)-labetalol concentrations were significantly lower than those of the other three stereoisomers (p less than 0.05). Cimetidine caused an increase in the concentrations of each stereoisomer, but the difference was significant (p less than 0.05) for only the (S,R)-, (S,S)-, and (R,S)-isomers. This first evidence of labetalol stereoselective disposition is consistent with the findings of previous (R,R)-labetalol pharmacokinetic studies and with previous pharmacodynamic investigations of labetalol and (R,R)-labetalol.

Administration, Oral↗

Effects of age on the protein binding and disposition of propranolol stereoisomers.

Previous studies of the effects of age on the disposition of propranolol have produced variable results. We evaluated the stereoselective disposition and protein binding of propranolol enantiomers in 10 young (mean age, 28 years) and 10 older (mean age, 64 years) healthy subjects. After receiving racemic propranolol orally for 6 days, the oral clearances of d-propranolol and l-propranolol were lower by 13% and 17% in the older group compared to the young group, but these differences were not statistically significant. The older subjects had higher alpha 1-acid glycoprotein concentrations (p less than 0.05) and lower unbound fractions of l-propranolol (p less than 0.05). After protein binding was accounted for, the unbound oral clearance of each enantiomer was similar in both groups. l-Propranolol was more highly protein bound than d-propranolol (p less than 0.05) in both young and older subjects. The unbound oral clearance d/l ratio was not different from unity in either group, indicating that the stereoselective differences in oral clearance were largely attributable to the stereoselective differences in protein binding.

Adult↗

Effects of calcium channel blockers on the pharmacokinetics of propranolol stereoisomers.

Diltiazem and verapamil inhibit oxidative drug metabolism both in vivo and in vitro. We compared their effects on the stereoselective pharmacokinetics and protein binding of propranolol in 12 subjects. After 6 days of coadministration with racemic propranolol, diltiazem caused decreases of 27% and 24% in d-propranolol and 1-propranolol oral clearances, respectively (p less than 0.05 versus control). With verapamil, d-propranolol oral clearance decreased 32% (p less than 0.05), and 1-propranolol oral clearance decreased 26% (p less than 0.05). The unbound fraction of d-propranolol was higher than that of 1-propranolol (p less than 0.05), but the protein binding was not altered by diltiazem or verapamil. Both drugs therefore decreased the unbound oral clearance of each propranolol enantiomer (p less than 0.05). Verapamil caused a stereoselective effect and increased the d/l ratio of propranolol serum concentrations (p less than 0.05) and decreased the d/l ratio of oral clearance (p less than 0.05).

Adult↗

Altered beta-adrenergic sensitivity and protein binding to 1-propranolol in the elderly.

The elderly are reported to be less sensitive to the beta-blocking effects of propranolol. However, age-related changes in the stereoselective pharmacokinetics or protein binding of propranolol enantiomers could have confounded the results of previous studies because only 1-propranolol contributes significantly to the beta-blocking effects of the racemate. To avoid these confounding variables, we studied 10 young (mean 28 years) and 10 elderly (mean 64 years) subjects, and determined the cardiac beta-receptor sensitivity in terms of unbound, active 1-propranolol. The doses of isoproterenol required to increase heart rate (HR) by 25 beats/min were determined before and during a continuous infusion of propranolol. The serum concentration of 1-propranolol was determined by enantioselective high-performance liquid chromatography (HPLC), and the unbound fraction was determined by equilibrium dialysis. The apparent in vivo receptor dissociation constant for unbound 1-propranolol increased from 0.066 +/- 0.047 ng/ml in the young to 0.218 +/- 0.264 ng/ml in the older group (p less than 0.05). The unbound fraction was decreased in the older subjects (0.141 +/- 0.023 vs. 0.121 +/- 0.025, p less than 0.05) because of an increase in alpha 1-acid glycoprotein concentration (55 +/- 11 mg/dl vs. 72 +/- 19 mg/dl, p less than 0.05). Advancing age was associated with a decreased sensitivity to isoproterenol (rs = 0.76, p less than 0.05) and to unbound 1-propranolol (rs = 0.45, p less than 0.05). We conclude that the older subjects have (a) decreased sensitivity to the beta-blocking effects of 1-propranolol and to the agonist effects of isoproterenol, and (b) a lower unbound fraction of 1-propranolol.

Adult↗

The effects of encainide versus diltiazem on the oxidative metabolic pathways of antipyrine.

The effects of diltiazem and encainide on the pharmacokinetics and metabolism of antipyrine were compared in nine healthy male volunteers. Diltiazem 90 mg every 8 hours for 5 days decreased the oral clearance of antipyrine from 2.34 to 1.86 L/hour (p less than 0.05) and increased half-life from 12.7 to 15.9 hours (p less than 0.05). Diltiazem reduced the formation rate constants for 3-hydroxymethylantipyrine by 27% (p less than 0.05) and 4-hydroxyantipyrine by 37% (p less than 0.05). There was also a 21% reduction in the formation rate constant for norantipyrine (0.05 less than p less than 0.10). Encainide 25 mg every 8 hours for 5 days had no apparent effect on the oral clearance or half-life of antipyrine, or on the formation rate constants for metabolites of antipyrine. In contrast to a previously published report in rats, encainide, unlike diltiazem, does not inhibit the oxidative metabolism of antipyrine in humans.

Adult↗