Is high-dose β-lactam therapy associated with excessive drug toxicity in critically ill patients?

Craig McDonald1, Menino O Cotta, Peter J Little

  • 1Royal Brisbane and Women's Hospital, Brisbane, Australia - m.o.cotta@uq.edu.au.

Abstract

Insights

Higher than licensed doses of meropenem and piperacillin-tazobactam, guided by therapeutic drug monitoring, did not increase toxicity in critically ill patients. This suggests potential for optimized dosing strategies in critical care settings.

Area of Science:

  • Pharmacology
  • Critical Care Medicine
  • Infectious Diseases

Background:

  • Critically ill patients often require higher than licensed doses of beta-lactam antibiotics for therapeutic efficacy.
  • Therapeutic drug monitoring (TDM) is crucial for optimizing antibiotic dosing to maximize benefits and minimize toxicity.

Purpose of the Study:

  • To evaluate the safety of higher-than-licensed doses of meropenem and piperacillin-tazobactam in critically ill patients.
  • To compare beta-lactam-associated toxicities between patients receiving high-dose and standard-dose antibiotics.

Main Methods:

  • Retrospective review of critically ill patients receiving higher-than-licensed doses (meropenem 3-6 g/day, piperacillin-tazobactam 16-2 g/day) guided by TDM.
  • Comparison of toxicity profiles with a control group receiving licensed doses of the same antibiotics, matched for age, sex, BMI, and diagnosis.

Main Results:

  • High-dose groups received over 40% higher daily doses.
  • No significant differences in hepatocellular derangement, cholestasis, need for renal replacement therapy, seizure incidence, thrombocytopenia, or neutropenia were observed between high-dose and licensed-dose groups for either antibiotic.
  • Specific P-values for meropenem: hepatocellular derangement (0.25), cholestasis (0.32), RRT (0.10), seizure (0.70), thrombocytopenia (0.85), neutropenia (0.95).
  • Specific P-values for piperacillin-tazobactam: hepatocellular derangement (0.90), cholestasis (0.26), RRT (0.16), seizure (N/A), thrombocytopenia (0.43), neutropenia (0.43).

Conclusions:

  • Higher-than-licensed doses of meropenem and piperacillin-tazobactam, when guided by TDM, are not associated with increased toxicity in critically ill patients.
  • Larger prospective studies are needed to confirm the clinical utility and safety of these optimized dosing strategies.

Related Concept Videos

Acute Pyelonephritis II: Diagnostic Studies and Management01:28

Acute Pyelonephritis II: Diagnostic Studies and Management

Introduction:For diagnosing acute pyelonephritis, a comprehensive patient history is collected to identify symptoms such as dysuria, frequent or urgent urination, flank pain, or costovertebral angle (CVA) tenderness that may suggest a kidney infection.Physical ExaminationDuring the physical examination, CVA tenderness is assessed. This involves gentle percussion over the costovertebral angle, where tenderness often indicates a kidney infection.Diagnostic TestsUrinalysis: Used to identify white...
616
Drug Toxicity: Dose-Dependent Reactions01:24

Drug Toxicity: Dose-Dependent Reactions

Drug toxicities can be stratified into pharmacological, pathological, or genotoxic based on their mechanisms. The incidence and severity of these toxicities generally increase with the drug's concentration in the body and exposure time.Pharmacological toxicity is evident when the therapeutic effects of drugs overshoot into adverse reactions in a predictable, dose-dependent manner. Central nervous system (CNS) depression from barbiturates is a classic example, with effects escalating from...
145
Pharmacokinetic–Pharmacodynamic Relationship: Influence of Elimination Half-Life on Effect Duration01:23

Pharmacokinetic–Pharmacodynamic Relationship: Influence of Elimination Half-Life on Effect Duration

Drug elimination from the body primarily occurs through metabolic and excretion pathways. Hepatic metabolism transforms lipophilic drugs into hydrophilic forms for excretion, typically via enzymatic processes classified as phase I (modification) and phase II (conjugation). Renal excretion eliminates drugs and metabolites through filtration and secretion in the kidneys. Impairment in liver or kidney function can hinder these processes, delaying drug clearance and extending the drug’s...
83
Drug Accumulation During Multiple Dosing: Intermittent IV Infusions01:24

Drug Accumulation During Multiple Dosing: Intermittent IV Infusions

Intermittent intravenous (IV) infusion is a method of drug administration where medications are delivered over short infusion periods followed by intervals of no drug delivery. This approach helps to prevent sustained high drug concentrations in the bloodstream, reducing the risk of adverse effects associated with prolonged exposure. Unlike continuous infusion, steady-state concentrations may not be achieved during a single dosing cycle but can be reached through repeated...
334
Combined Effects of Drugs: Synergism01:27

Combined Effects of Drugs: Synergism

Synergism is a useful mechanism where combining two or more drugs is more effective than each constituent used alone. Such combinations are also called supra-additive interactions. The drugs collectively enhance the final therapeutic effect by acting on different targets. Another advantage is that the low dose of each constituent drug is sufficient to achieve the desired effect. This helps reduce the duration of therapy and lower the adverse effects of these drugs.
Such synergistic combinations...
7.3K
Drug toxicity: Drug–Drug Interaction01:30

Drug toxicity: Drug–Drug Interaction

Drug–drug interactions can precipitate toxicity through multiple mechanisms. Absorption interactions alter how drugs enter the body, exemplified when ranitidine increases the absorption of basic drugs, while cholestyramine decreases the levels of propranolol. Protein binding interactions occur when drugs share the same binding sites on plasma proteins. Drugs like aspirin and warfarin, when bound in excess, can lead to increased free drug concentrations, enhancing the potential for...
314