Pharmacokinetics of nebulized colistin methanesulfonate in critically ill patients

Matthieu Boisson1,2,3, Nicolas Grégoire1,2, Marielle Cormier3

  • 1Inserm U1070, Pôle Biologie Santé, 1 rue Georges Bonnet, 86000 Poitiers, France.

Abstract

Insights

Nebulized colistin methanesulfonate (CMS) at 0.5 million IU resulted in higher concentrations in lung fluid than plasma, but lower than expected. The 2 million IU dose is preferred for treating ventilator-associated pneumonia.

Area of Science:

  • Pharmacology
  • Critical Care Medicine
  • Infectious Diseases

Background:

  • Optimal dosing for nebulized colistin methanesulfonate (CMS), the prodrug of colistin, remains undetermined.
  • Ventilator-associated pneumonia (VAP) requires effective antibiotic strategies.

Purpose of the Study:

  • To determine the pulmonary and systemic pharmacokinetics of CMS and colistin after nebulization of 0.5 million IU (MIU) in ventilated patients.
  • To compare the pharmacokinetic profiles of CMS and colistin at a lower dose (0.5 MIU) versus a previously studied higher dose (2 MIU).

Main Methods:

  • A pharmacokinetic study involving 12 critically ill, ventilated patients receiving nebulized CMS (0.5 MIU) every 8 hours.
  • Collection of plasma and mini-bronchoalveolar lavage (mini-BAL) samples at various time points post-nebulization.
  • Non-compartmental pharmacokinetic analysis of CMS and colistin plasma and epithelial lining fluid (ELF) concentrations.

Main Results:

  • CMS concentrations in ELF were significantly higher (100- to 1000-fold) than in plasma.
  • CMS and colistin concentrations in ELF were approximately 10-fold lower than anticipated based on previous studies using a 2 MIU dose.
  • Systemic bioavailability of CMS was only slightly decreased at the 0.5 MIU dose compared to the 2 MIU dose.

Conclusions:

  • Nebulized CMS at 0.5 MIU achieves high concentrations in the lungs but lower than expected levels compared to a 2 MIU dose.
  • The 2 MIU dose of nebulized CMS is recommended over the 0.5 MIU dose for treating VAP until further pharmacokinetic and pharmacodynamic data are available.

Related Concept Videos

Determination of Multiple Dosing Parameters: Steady-State, Minimum and Maximum Concentrations01:15

Determination of Multiple Dosing Parameters: Steady-State, Minimum and Maximum Concentrations

Gentamicin, an aminoglycoside antibiotic, is commonly administered via intermittent intravenous infusion to treat severe infections. An intermittent one-hour infusion of gentamicin, administered at eight-hour intervals, allows for precise control of plasma drug concentrations, minimizing toxicity while ensuring therapeutic efficacy. Pharmacokinetic principles govern the dynamics of plasma concentrations and can be mathematically described using specific equations.The plasma drug concentration...
301
Pharmacokinetics in Pediatric Patients: Drug Excretion01:26

Pharmacokinetics in Pediatric Patients: Drug Excretion

In pediatric medicine, understanding the renal function and drug elimination nuances is crucial for administering safe and effective treatments. Newborns, in particular, display markedly slower renal functions than adults, profoundly affecting how drugs are cleared from their bodies. This slower drug clearance requires clinicians to extend the dosing intervals for many medications to prevent drug accumulation and toxicity while ensuring therapeutic efficacy.One key area where these adjustments...
338
Estimation of k and VD of Aminoglycosides01:20

Estimation of k and VD of Aminoglycosides

Aminoglycosides are a class of antibiotics used to treat various bacterial infections. Clinicians must determine the elimination rate constant (k) and volume of distribution (VD) to optimize therapeutic efficacy and minimize toxicity. The k value represents the rate at which the drug is removed from the body, and the VD reflects the degree to which the drug distributes into body tissues. Accurately estimating these parameters allows healthcare professionals to tailor drug dosing to individual...
286
Pharmacokinetics in Pediatric Patients: Drug Distribution01:17

Pharmacokinetics in Pediatric Patients: Drug Distribution

Drug distribution in the pediatric population exhibits unique challenges and considerations due to the physiological differences between children, particularly neonates and infants, and adults. A crucial aspect of pediatric pharmacology is understanding how these differences impact the pharmacokinetics of various drugs, necessitating age-specific dosing strategies to ensure efficacy and safety.Neonates and infants have a higher total body water content, ~75%–90% of their body weight,...
387
Pharmacokinetics in Pediatric Patients: Overview and Drug Absorption01:23

Pharmacokinetics in Pediatric Patients: Overview and Drug Absorption

Understanding the physiological differences in the pediatric population is crucial for effective pharmacotherapy. Neonates, infants, and children exhibit significant variations in gastric pH, gastric emptying time, intestinal transit time, and biliary function. These variations profoundly affect oral drug absorption, necessitating a nuanced approach to pediatric dosing.Neonates present with a unique physiological profile, having a gastric pH greater than 4 and faster and more irregular gastric...
392
Pharmaceutical Alternatives: Stability-Related Therapeutic Nonequivalence01:22

Pharmaceutical Alternatives: Stability-Related Therapeutic Nonequivalence

Generic intravenous (IV) drugs are considered bioequivalent to their branded counterparts due to their 100% bioavailability upon administration. However, variations in stability among different drug products can significantly influence their therapeutic performance, even if they are pharmaceutically equivalent.Cefuroxime, a prophylactic antimicrobial, is often used as a single-dose IV injection for patients undergoing coronary artery bypass grafting surgery. A 3 g dose typically provides...
233