Related Experiment Video
Updated: Dec 27, 2025

Author Spotlight: Microbial Control and Monitoring Strategies for Cleanroom Environments and Cellular Therapies
Published on: March 17, 2023
QuEChER method for air microbiological monitoring in hospital environments
Iván Tavera Busso1, Florencia Herrera2, María F Tames3
1Instituto Multidisciplinario de Biología Vegetal (IMBIV), CONICET and Departamento de Química, Facultad de Ciencias Exactas, Físicas y Naturales, Universidad Nacional de Córdoba, Córdoba, Argentina. ivantaverabusso@unc.edu.ar.
Introduction:
Nosocomial pathogens have become a priority issue for public health, since they are responsible for increased morbidity and mortality in hospitalized patients and the development of multi-resistant microorganisms, as well. Recent studies found strong evidence that airborne transmission plays a key role in many nosocomial infections. Thus, we aim to develop a QuEChER methodology for the characterization of airborne microbial levels, analyzing potential variables that modify the air microbiological load.
Methodology:
Particulate matter levels and suspended and settled bioaerosols were determined simultaneously employing optical sensors, Harvard impactors and settle plates, respectively. Environmental variables were also measured at different sites during different working shifts and seasons.
Results:
We found a straightforward relationship between airborne particles, air exchange rates, and people influx. Levels of suspended microorganisms were related to fine particulate matter concentration, CO2 and ambient temperature. A positive linear relationship (R2 = 0.9356) was also found between fine particulate matter and CO2 levels and air microbial load.
Conclusion:
The QuEChER methodology is an effective methodology that could be used to improve the surveillance of nosocomial pathogens in developing countries hospitals where air quality is scarcely controlled.
Insights
A new QuEChER method effectively measures airborne microbes, crucial for controlling hospital-acquired infections. This approach links airborne particles and CO2 to microbial load, aiding air quality surveillance.
Area of Science:
- Environmental microbiology
- Public health
- Analytical chemistry
Background:
- Nosocomial pathogens pose significant public health risks due to increased morbidity, mortality, and antimicrobial resistance.
- Airborne transmission is a key factor in many hospital-acquired infections, necessitating better monitoring.
- Current air quality control in hospitals, especially in developing countries, is often inadequate.
Purpose of the Study:
- To develop and validate a QuEChER (Quick, Easy, Cheap, Rugged, and Effective) methodology for characterizing airborne microbial levels.
- To identify and analyze environmental variables influencing the microbiological load in hospital air.
- To establish a reliable method for assessing airborne nosocomial pathogens.
Main Methods:
- Simultaneous determination of particulate matter, suspended bioaerosols (using Harvard impactors), and settled bioaerosols (using settle plates).
- Utilization of optical sensors for particulate matter measurement.
- Measurement of environmental variables including air exchange rates, people influx, CO2 levels, and ambient temperature across different sites, shifts, and seasons.
Main Results:
- A direct correlation was observed between airborne particle counts, air exchange rates, and human traffic.
- Levels of airborne microorganisms were significantly associated with fine particulate matter concentration, CO2 levels, and ambient temperature.
- A strong positive linear relationship (R² = 0.9356) was established between fine particulate matter, CO2 levels, and the overall air microbial load.
Conclusions:
- The QuEChER methodology proves effective for monitoring airborne microbial contamination.
- This method can enhance the surveillance of nosocomial pathogens, particularly in resource-limited settings.
- Improved air quality control through effective microbial surveillance is vital for reducing hospital-acquired infections.
Related Concept Videos
Key Techniques in Microbiology
Microbial Growth Measurement: Direct Methods
Physical Methods for Controlling Microbial Growth: Radiation and Filtration
Physical Methods for Controlling Microbial Growth: Temperature

