On the airborne transmission of SARS-CoV-2 and relationship with indoor conditions at a hospital

被引:42
作者
Baboli, Zeynab [1 ,2 ]
Neisi, Niloofar [3 ]
Babaei, Ali Akbar [4 ,5 ]
Ahmadi, Mehdi [4 ,5 ]
Sorooshian, Armin [6 ,7 ]
Birgani, Yaser Tahmasebi [4 ,5 ]
Goudarzi, Gholamreza [2 ,4 ,5 ]
机构
[1] Ahvaz Jundishapur Univ Med Sci, Sch Publ Hlth, Dept Environm Hlth Engn, Student Res Comm, Ahvaz, Iran
[2] Ahvaz Jundishapur Univ Med Sci, Air Pollut & Resp Dis Res Ctr, Ahvaz, Iran
[3] Ahvaz Jundishapur Univ Med Sci, Alimentary Tract Res Ctr, Sch Med, Clin Sci Res Inst,Dept Med Virol, Ahvaz, Iran
[4] Ahvaz Jundishapur Univ Med Sci, Dept Environm Hlth Engn, Ahvaz, Iran
[5] Ahvaz Jundishapur Univ Med Sci, Environm Technol Res Ctr ETRC, Ahvaz, Iran
[6] Univ Arizona, Dept Chem & Environm Engn, Tucson, AZ USA
[7] Univ Arizona, Dept Hydrol & Atmospher Sci, Tucson, AZ USA
基金
美国国家科学基金会;
关键词
SARS-CoV-2; Airborne; Indoor air quality; RT-PCR; Aerosols; RELATIVE-HUMIDITY; CORONAVIRUS; SARS; TEMPERATURE; SURVIVAL; OUTBREAK; COVID-19; QUALITY; PM2.5; PM10;
D O I
10.1016/j.atmosenv.2021.118563
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The limited knowledge about the mechanism of SARS-CoV-2 transmission is a current challenge on a global scale. Among possible transmission routes, air transfer of the virus is thought to be prominent. To investigate this further, measurements were conducted at Razi hospital in Ahvaz, Iran, which was selected to treat COVID-19 severe cases in the Khuzestan province. Passive and active sampling methods were employed and compared with regard to their efficiency for collection of airborne SARS-COV-2 virus particles. Fifty one indoor air samples were collected in two areas, with distances of less than or equal to 1 m (patient room) and more than 3 m away (hallway and nurse station) from patient beds. A simulation method was used to obtain the virus load released by a regularly breathing or coughing individual including a range of microdroplet emissions. Using real-time reverse transcription polymerase chain reaction (RT-PCR), 11.76% (N = 6) of all indoor air samples (N = 51) collected in the COVID-19 ward tested positive for SARS-CoV-2 virus, including 4 cases in patient rooms and 2 cases in the hallway. Also, 5 of the 6 positive cases were confirmed using active sampling methods with only 1 based on passive sampling. The results support airborne transmission of SARS-CoV-2 bioaerosols in indoor air.Multivariate analysis showed that among 15 parameters studied, the highest correlations with PCR results were obtained for temperature, relative humidity, PM levels, and presence of an air cleaner.
引用
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页数:10
相关论文
共 66 条
[1]   An Overview on the Role of Relative Humidity in Airborne Transmission of SARS-CoV-2 in Indoor Environments [J].
Ahlawat, Ajit ;
Wiedensohler, Alfred ;
Mishra, Sumit Kumar .
AEROSOL AND AIR QUALITY RESEARCH, 2020, 20 (09) :1856-1861
[2]   Role of a habitat's air humidity in Covid-19 mortality [J].
Biktasheva, Irina V. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 736
[3]   Detection of airborne severe acute respiratory syndrome (SARS) coronavirus and environmental contamination in SARS outbreak units [J].
Booth, TF ;
Kournikakis, B ;
Bastien, N ;
Ho, J ;
Kobasa, D ;
Stadnyk, L ;
Li, Y ;
Spence, M ;
Paton, S ;
Henry, B ;
Mederski, B ;
White, D ;
Low, DE ;
McGeer, A ;
Simor, A ;
Vearncombe, M ;
Downey, J ;
Jamieson, FB ;
Tang, P ;
Plummer, F .
JOURNAL OF INFECTIOUS DISEASES, 2005, 191 (09) :1472-1477
[4]   Violent expiratory events: on coughing and sneezing [J].
Bourouiba, Lydia ;
Dehandschoewercker, Eline ;
Bush, John W. M. .
JOURNAL OF FLUID MECHANICS, 2014, 745 :537-563
[5]   Influenza virus survival in aerosols and estimates of viable virus loss resulting from aerosolization and air-sampling [J].
Brown, J. R. ;
Tang, J. W. ;
Pankhurst, L. ;
Klein, N. ;
Gant, V. ;
Lai, K. M. ;
McCauley, J. ;
Breuer, J. .
JOURNAL OF HOSPITAL INFECTION, 2015, 91 (03) :278-281
[6]   Effects of Air Temperature and Relative Humidity on Coronavirus Survival on Surfaces [J].
Casanova, Lisa M. ;
Jeon, Soyoung ;
Rutala, William A. ;
Weber, David J. ;
Sobsey, Mark D. .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2010, 76 (09) :2712-2717
[7]  
Centers for Disease Control and Prevention, 2020, mission, and molecular immunopathology of SARS-CoV
[8]   SARS in hospital emergency room [J].
Chen, YC ;
Huang, LM ;
Chan, CC ;
Su, CP ;
Chang, SC ;
Chang, YY ;
Chen, ML ;
Hung, CC ;
Chen, WJ ;
Lin, FY ;
Lee, YT .
EMERGING INFECTIOUS DISEASES, 2004, 10 (05) :782-788
[9]   Escalating infection control response to the rapidly evolving epidemiology of the coronavirus disease 2019 (COVID-19) due to SARS-CoV-2 in Hong Kong [J].
Cheng, Vincent C. C. ;
Wong, Shuk-Ching ;
Chen, Jonathan H. K. ;
Yip, Cyril C. Y. ;
Chuang, Vivien W. M. ;
Tsang, Owen T. Y. ;
Sridhar, Siddharth ;
Chan, Jasper F. W. ;
Ho, Pak-Leung ;
Yuen, Kwok-Yung .
INFECTION CONTROL & HOSPITAL EPIDEMIOLOGY, 2020, 41 (05) :493-498
[10]   Detection of air and surface contamination by SARS-CoV-2 in hospital rooms of infected patients [J].
Chia, Po Ying ;
Coleman, Kristen Kelli ;
Tan, Yian Kim ;
Ong, Sean Wei Xiang ;
Gum, Marcus ;
Lau, Sok Kiang ;
Lim, Xiao Fang ;
Lim, Ai Sim ;
Sutjipto, Stephanie ;
Lee, Pei Hua ;
Son, Than The ;
Young, Barnaby Edward ;
Milton, Donald K. ;
Gray, Gregory C. ;
Schuster, Stephan ;
Barkharn, Timothy ;
De, Partha Pratim ;
Vasoo, Shawn ;
Chan, Monica ;
Ang, Brenda Sze Peng ;
Tan, Boon Huan ;
Leo, Yee-Sin ;
Ng, Oon-Tek ;
Wong, Michelle Su Yen ;
Marimuthu, Kalisvar .
NATURE COMMUNICATIONS, 2020, 11 (01)