Using risk adjustment to improve the interpretation of global inpatient pediatric antibiotic prescribing

Julia A Bielicki1,2,3, Mike Sharland1, Ann Versporten4

  • 1Paediatric Infectious Diseases Research Group, Infection and Immunity, St George's University of London, London, United Kingdom.

Plos One
|July 7, 2018
PubMed

Insights

Pediatric last-resort antibiotic use varies globally. A new risk-adjustment model using simple patient data helps compare antibiotic prescribing rates across regions more accurately.

Area of Science:

  • Global Health
  • Infectious Diseases
  • Pediatric Pharmacology

Background:

  • Assessing regional pediatric last-resort antibiotic utilization is challenging due to population differences.
  • Pediatric conserve antibiotic (pCA) exposure is a critical indicator of last-resort antibiotic use.

Purpose of the Study:

  • To develop a risk-adjustment model for comparing pediatric last-resort antibiotic utilization across diverse regions.
  • To evaluate the effectiveness of a simple patient classification system against a risk model for this comparison.

Main Methods:

  • Investigated associations between pCA exposure and patient/treatment characteristics using global point prevalence survey data.
  • Developed a risk-adjustment model via multivariable logistic regression.
  • Compared the performance of a simple patient classification to the risk model.

Main Results:

  • Overall pCA exposure was 35%, significantly associated with patient age, ward, disease, acquisition type, and treatment strategy.
  • The risk-adjustment model showed good discrimination (c-statistic = 0.83) and calibration.
  • Risk adjustment substantially reduced regional variations in pCA exposure rates, from 10.3%-67.4% to 17.1%-42.8%.

Conclusions:

  • Risk-adjusted rates, derived from easily collected variables, enhance the comparability of pediatric last-resort antibiotic exposure.
  • The developed model and simple classification aid in more accurate international comparisons of antibiotic prescribing patterns.
Abstract

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