» Articles » PMID: 27590696

Assessing Microbial Decontamination of Indoor Air with Particular Focus on Human Pathogenic Viruses

Overview
Date 2016 Sep 4
PMID 27590696
Citations 2
Authors
Affiliations
Soon will be listed here.
Abstract

Transmission of bacterial, fungal, and viral pathogens is of primary importance in public and occupational health and infection control. Although several standardized protocols have been proposed to target microbes on fomites through surface decontamination, use of microbicidal agents, and cleaning processes, only limited guidance is available on microbial decontamination of indoor air to reduce the risk of pathogen transmission between individuals. This article reviews the salient aspects of airborne transmission of infectious agents, exposure assessment, in vitro assessment of microbicidal agents, and processes for air decontamination for infection prevention and control. Laboratory-scale testing (eg, rotating chambers, wind tunnels) and promising field-scale methodologies to decontaminate indoor air are also presented. The potential of bacteriophages as potential surrogates for the study of airborne human pathogenic viruses is also discussed.

Citing Articles

Resuspension and Dissemination of MS2 Virus from Flooring After Human Activities in Built Environment: Impact of Dust Particles.

Boone S, Ijaz M, McKinney J, Gerba C Microorganisms. 2025; 12(12.

PMID: 39770767 PMC: 11678224. DOI: 10.3390/microorganisms12122564.


Rapid virucidal activity of an air sanitizer against aerosolized MS2 and Phi6 phage surrogates for non-enveloped and enveloped vertebrate viruses, including SARS-CoV-2.

Ijaz M, Zargar B, Nims R, McKinney J, Sattar S Appl Environ Microbiol. 2024; 91(1):e0142624.

PMID: 39641606 PMC: 11784435. DOI: 10.1128/aem.01426-24.


Evaluate the safety of a novel photohydrolysis technology used to clean and disinfect indoor air: A murine study.

Selitrennikoff C, Sylvia C, Sanchez M, Lawrence P, Trosch K, Carenza A PLoS One. 2024; 19(10):e0307031.

PMID: 39383125 PMC: 11463749. DOI: 10.1371/journal.pone.0307031.


Direct and quantitative capture of viable bacteriophages from experimentally contaminated indoor air: A model for the study of airborne vertebrate viruses including SARS-CoV-2.

Zargar B, Sattar S, Kibbee R, Rubino J, Ijaz M J Appl Microbiol. 2021; 132(2):1489-1495.

PMID: 34411388 PMC: 8447128. DOI: 10.1111/jam.15262.

References
1.
Morawska L, Agranovski V, Ristovski Z, Jamriska M . Effect of face velocity and the nature of aerosol on the collection of submicrometer particles by electrostatic precipitator. Indoor Air. 2002; 12(2):129-37. DOI: 10.1034/j.1600-0668.2002.09136.x. View

2.
Tang J . The effect of environmental parameters on the survival of airborne infectious agents. J R Soc Interface. 2009; 6 Suppl 6:S737-46. PMC: 2843949. DOI: 10.1098/rsif.2009.0227.focus. View

3.
Bonifait L, Charlebois R, Vimont A, Turgeon N, Veillette M, Longtin Y . Detection and quantification of airborne norovirus during outbreaks in healthcare facilities. Clin Infect Dis. 2015; 61(3):299-304. DOI: 10.1093/cid/civ321. View

4.
Falagas M, Thomaidis P, Kotsantis I, Sgouros K, Samonis G, Karageorgopoulos D . Airborne hydrogen peroxide for disinfection of the hospital environment and infection control: a systematic review. J Hosp Infect. 2011; 78(3):171-7. DOI: 10.1016/j.jhin.2010.12.006. View

5.
Ackermann H, Prangishvili D . Prokaryote viruses studied by electron microscopy. Arch Virol. 2012; 157(10):1843-9. DOI: 10.1007/s00705-012-1383-y. View