Related Experiment Video
Updated: Jun 27, 2026

Murine Oropharyngeal Aspiration Model of Ventilator-associated and Hospital-acquired Bacterial Pneumonia
Published on: June 28, 2018
The business case for preventing ventilator-associated pneumonia in pediatric intensive care unit patients
Richard J Brilli1, Karen W Sparling, Michael R Lake
1Nationwide Children's Hospital, Columbus, Ohio, USA. rbrilli@nationwidechildrens.org
Insights
Implementing a ventilator-associated pneumonia (VAP) prevention bundle significantly reduced VAP rates in a pediatric intensive care unit (PICU). This intervention led to substantial cost savings for hospitals and payors, demonstrating a strong return on investment.
Area of Science:
- Pediatric critical care medicine
- Infection prevention and control
- Health economics
Background:
- Ventilator-associated pneumonia (VAP) poses a significant financial burden in pediatric intensive care units (PICUs).
- A case-control study was designed to assess the economic impact of VAP from multiple stakeholder perspectives.
Purpose of the Study:
- To compare the financial impact and costs associated with VAP in a PICU.
- To evaluate the effectiveness of a VAP prevention bundle on infection rates and associated costs.
Main Methods:
- A retrospective matched case-control study involving 13 VAP patients and 13 control patients.
- Matching criteria included age, sex, illness severity, primary and underlying diagnoses, surgical procedures, and duration of mechanical ventilation.
Main Results:
- VAP patients had a significantly longer hospital length of stay (LOS) (26.5 vs. 17.8 days) and higher costs ($156,110 vs. $104,953).
- Attributable VAP costs were $51,157 per patient.
- Following VAP bundle implementation, VAP rates decreased from 7.8 to 0.5 cases per 1,000 ventilator days, yielding substantial cost savings.
Conclusions:
- The VAP prevention bundle led to significant and sustained reductions in pediatric VAP rates.
- This study provides the first business case analysis of a pediatric-specific VAP intervention, highlighting its economic benefits and potential for accelerating patient safety investments.
Background:
A retrospective matched (1:1) case-control study was conducted to compare the financial impact and costs attributable to ventilator-associated pneumonia (VAP) in a 25-bed pediatric intensive care unit (PICU) in a 475-bed quaternary-care pediatric hospital from the perspective of multiple stakeholders, including the hospital and payors.
Methods:
For PICU patients with VAP from January 1 2005, to December 31, 2005, 13 patients were matched to 13 control patients by age, sex, severity of illness, primary diagnosis, underlying illness, surgical procedures, and duration of mechanical ventilation.
Results:
The mean hospital length of stay (LOS) for VAP patients was 26.5 +/- 13.1 days compared with 17.8 +/- 4.7 days for non-VAP patients (p = .032). The hospital LOS attributable to VAP was 8.7 days. The mean hospital costs for VAP patients was $156,110 +/- $80,688 compared with $104,953 +/- $59,191 for non-VAP patients (p = 0.026). The attributable VAP costs were $51,157. After implementation of the VAP prevention bundle, VAP rates decreased from 7.8 cases per 1,000 ventilator days in fiscal year (FY) 2005 to 0.5 cases per 1,000 ventilator days in FY 2007 (VAP infections: 24 in FY 2005, 9 in FY 2006, 2 in FY 2007; p < 0.001). This reduced hospital days by 400, reduced unreimbursed cost of care by $442,789, reduced hospital costs by $2,353,222, and reduced cost to payors by $2,653,710 for FY 2006 and FY 2007 combined.
Discussion:
This study provides the first demonstration of significant, sustained reductions in pediatric VAP rates following the implementation of the VAP prevention bundle and the first business case analysis of this pediatric-specific intervention as described from the perspective of multiple stakeholders. A return on investment may speed health care organizations' investment in patient safety and quality improvement.
Related Concept Videos
Pneumonia V: Nursing management and Prevention
The nurse must practice strict medical asepsis and adhere to infection control guidelines to minimize healthcare-associated infections.
Enhance airway patency
Position the patient correctly to facilitate drainage of the affected lung segments. Manual or mechanical percussion and vibration can also be employed.
Healthcare Associated Infections II: Preventive Measures
The best practices for preventing healthcare-associated infections include hand hygiene, patient risk...
Mechanical Ventilation III: Noninvasive Ventilation
Noninvasive Positive-Pressure Ventilation (NIPPV)
Pneumonia I: Introduction
Risk Factors
Various factors influence the likelihood of developing pneumonia. Age plays a crucial role, with infants, children under two, and individuals over 65 at increased risk due to their...
Pneumonia I: Introduction
Transmission-based Precautions II: Airborne and Protective Environment
Airborne precautions:
Use airborne precautions when treating patients known or suspected to have diseases that spread through the air—for example, tuberculosis or measles. These organisms are present in smaller droplets expelled by an infected person and...