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C H Ballow

Publications and source records attributed to C H Ballow.

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Azithromycin: the first azalide antibiotic.

OBJECTIVE: To discuss the chemistry, mechanism of action, spectrum of activity, pharmacokinetics, clinical trials, adverse-effect profile, drug interactions, and dosage guidelines of azithromycin, the first azalide antibiotic. DATA SOURCES: Pertinent literature published between 1988 and the present was identified via a MEDLINE search. Of 77 articles retrieved, 37 have been referenced. STUDY SELECTION: Azithromycin is a new agent, and as such, limited data regarding this drug are available in the literature. We evaluated all pharmacokinetic, microbiologic, and basic science articles pertaining to azithromycin, and reviewed the clinical efficacy trials that we believed were of good quality for each indication for which azithromycin has received approval to date. Comparative clinical trials involving large numbers of patients, clinical outcome assessments, and recommendations for azithromycin use are included. DATA SYNTHESIS: Azithromycin is a macrolide derivative and the first of the 15-membered ring azalide class of antimicrobials. Although its mechanism of action and susceptibility to resistance are similar to those of the macrolide antibiotics, azithromycin's extended spectrum of activity includes gram-positive and gram-negative organisms, as well as atypical pathogens. Azithromycin is stable at gastric pH and has an absolute bioavailability of approximately 37 percent following oral administration. Although its serum concentrations are typically low, the drug concentrates to a high degree in tissue. Azithromycin is cleared primarily by the biliary and fecal routes; its serum half-life is in excess of 60 hours. Several clinical trials have proven that a 5-day course of azithromycin administered once a day is equally efficacious to a 7- to 14-day course of other commonly used oral antimicrobials, administered two to four times a day, for the treatment of upper and lower respiratory tract and skin and skin-structure infections. Urethritis and cervicitis caused by chlamydia are treated with a single 1-g dose. Trials have shown azithromycin's adverse-effect profile to be equal or even superior to that of other agents, with only 0.7 percent of patients discontinuing therapy versus 2.6 percent for comparable drugs. CONCLUSIONS: Azithromycin represents a significant improvement in the treatment of selected community-acquired infections. Although this agent may revolutionize the treatment of sexually transmitted diseases caused by chlamydia, it also should impact the management of respiratory tract and skin and skin-structure infections. Because of its unique pharmacokinetics and excellent adverse-effect profile, patient compliance should be greatly enhanced compared with other commonly used oral antimicrobials. Azithromycin's primary role in the near future will be in the community setting. Although its use in the hospital may be limited, this drug will be a convenient therapeutic option to have on hand in the emergency room and outpatient clinic. Azithromycin may also be used in the future to treat opportunistic infections in immunocompromised patients.

Azithromycin

Trends in antibiotic utilization and bacterial resistance. Report of the National Nosocomial Resistance Surveillance Group.

The increasing use of "third-generation" cephalosporins has been associated with a rising prevalence of resistant bacteria possessing type-I beta-lactamases. At Millard Fillmore Hospital (Buffalo, New York), we observed an unusually high occurrence of multiply resistant Enterobacter cloacae infections, especially in the intensive care unit. Susceptibilities were found to have declined substantially from 1988 to 1990, most notably for ceftazidime and mezlocillin, which decreased from 83% to 54% and from 85% to 64%, respectively. During the same period, there was a substantial increase in the use of ceftazidime and a decline in the use of the broad-spectrum penicillins. The latter drugs had been used in combination with an aminoglycoside as the primary empiric antibiotic therapy for nosocomial infections. This change in antibiotic-prescribing patterns was coincident with the decline in E. cloacae susceptibility, and therefore the emergence of multiply resistant E. cloacae was probably a direct consequence of the increased prescribing of ceftazidime. The experience at out institution led to the formation of the National Nosocomial Resistance Surveillance Group (NNRSG) to determine whether this antibiotic use-mediated resistance was a nationwide phenomenon. Clinical pharmacists and medical microbiologists were recruited and asked to complete a survey of hospital demographics, antibiotic purchases (between the beginning of 1988 and the third quarter of 1990), and bacterial susceptibilities of six representative organisms to 12 commonly used antibiotics (primarily broad-spectrum penicillins and cephalosporins). Evaluable data were obtained from 18 hospitals varying widely in bed capacity, antibiotic use, and geographic location.(ABSTRACT TRUNCATED AT 250 WORDS)

Anti-Bacterial Agents

Tissue-directed pharmacokinetics.

Azalide antibiotics demonstrate pharmacokinetics distinct from all antibacterial agents in common use. Following oral absorption, conventional oral antibiotics diffuse through serum and interstitial compartments and are eliminated rapidly. A minimal to moderate degree of intracellular penetration may be observed. The pharmacokinetics of azithromycin, the first azalide, are characterized by a rapid and extensive movement of the drug from the serum into intracellular compartments. A dynamic equilibrium exists between the intracellular, interstitial, and serum compartments, with predominant flux into tissue sites. Azithromycin is concentrated to a high degree within phagocytes and transported by chemotactic mechanisms to the site of infection. High concentrations of azithromycin are found in pulmonary, genital, and lymphatic tissues. Azithromycin's serum levels decline in a polyphasic manner with a terminal half-life of approximately 60 hours. These kinetics allow azithromycin to be administered once daily. It is predicted that after drug administration for 5 days, therapeutic levels of azithromycin will be maintained at the tissue sites of infection for an additional 4-7 days. Consideration of the extravascular pharmacodynamics of azithromycin is necessary when making predictions regarding its therapeutic application.

Animals

Seizure activity associated with imipenem use: clinical case reports and review of the literature.

Two patients with multiple organ systems failure developed seizures after receiving imipenem/cilastatin (I/C) despite dose adjustment for poor renal function. Neither patient had a past history of seizures, nor had experienced seizures after receiving high doses of other beta-lactam antibiotics. Simple dose adjustment of I/C based on low creatinine clearances may not be adequate to prevent seizures.

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