key: cord-337372-y43prnko authors: bin‐Reza, Faisal; Lopez Chavarrias, Vicente; Nicoll, Angus; Chamberland, Mary E. title: The use of masks and respirators to prevent transmission of influenza: a systematic review of the scientific evidence date: 2011-12-21 journal: Influenza Other Respir Viruses DOI: 10.1111/j.1750-2659.2011.00307.x sha: doc_id: 337372 cord_uid: y43prnko Please cite this paper as: bin‐Reza et al. (2012) The use of masks and respirators to prevent transmission of influenza: a systematic review of the scientific evidence. Influenza and Other Respiratory Viruses 6(4), 257–267. There are limited data on the use of masks and respirators to reduce transmission of influenza. A systematic review was undertaken to help inform pandemic influenza guidance in the United Kingdom. The initial review was performed in November 2009 and updated in June 2010 and January 2011. Inclusion criteria included randomised controlled trials and quasi‐experimental and observational studies of humans published in English with an outcome of laboratory‐confirmed or clinically‐diagnosed influenza and other viral respiratory infections. There were 17 eligible studies. Six of eight randomised controlled trials found no significant differences between control and intervention groups (masks with or without hand hygiene; N95/P2 respirators). One household trial found that mask wearing coupled with hand sanitiser use reduced secondary transmission of upper respiratory infection/influenza‐like illness/laboratory‐confirmed influenza compared with education; hand sanitiser alone resulted in no reduction. One hospital‐based trial found a lower rate of clinical respiratory illness associated with non‐fit‐tested N95 respirator use compared with medical masks. Eight of nine retrospective observational studies found that mask and/or respirator use was independently associated with a reduced risk of severe acute respiratory syndrome (SARS). Findings, however, may not be applicable to influenza and many studies were suboptimal. None of the studies established a conclusive relationship between mask/respirator use and protection against influenza infection. Some evidence suggests that mask use is best undertaken as part of a package of personal protection especially hand hygiene. The effectiveness of masks and respirators is likely linked to early, consistent and correct usage. Personal protective equipment to help reduce transmission of influenza is generally advised according to the risk of exposure to the influenza virus and the degree of infectivity and human pathogenicity of the virus. The paucity of scientific evidence upon which to base guidance for the use of masks and respirators in healthcare and community settings has been a particularly vexing issue for policymakers. The Health Protection Agency (HPA) undertook a scientific evidence-based review of the use of masks and respirators in an influenza pandemic to inform relevant guidance following the emergence of pandemic A (H1N1) 2009 influenza. The Department of Health commissioned the HPA to update the review in support of the revision of the United Kingdom (UK) influenza pandemic preparedness strategy. 1 The review was published on-line at: http:// www.dh.gov.uk/prod_consum_dh/groups/dh_digitalassets/ documents/digitalasset/dh_125425.pdf. A further update of the evidence base subsequently was performed in January 2011 and described herein. We generally followed the approach detailed in the University of York's Systematic Reviews: CRD's Guidance for Undertaking Reviews in Health Care. The original search of the PubMed database was conducted on 7 November 2009; subsequent updates of the PubMed database search were undertaken on 23 June 2010 and 12 January 2011. 1 The November 2009 search also included the following scientific databases: Bandolier, the Cochrane Library Database of Systematic Reviews, the Database of Abstracts of Reviews of Effects, the Health Technology Assessment database, the National Health Service (NHS) Economic Evaluation database, the UK Database of Uncertainties about the Effects of Treatments, the NHS Centre for Reviews and Dissemination and the Cumulative Index to Nursing and Allied Health Literature. 2 No additional publications resulted from these databases. The initial search in November 2009 had no time period restrictions. A limited effort was made to identify additional studies: reference lists of review articles were examined; the European Centre for Disease Prevention and Control's (ECDC) Antimicrobial Resistance and Health Care Associated Infection Programme was consulted; and MEC's and AN's hardcopy literature files were hand-searched. We included the following types of studies listed in the hierarchical order of study design quality: randomised controlled trials (i.e. randomised cross-over trial and cluster randomised trial); quasi-experimental studies (i.e. non-randomised controlled study, before-and-after study and interrupted time series); and observational studies (cohort study and case-control study). Only human studies published in English which had an abstract were included (Table 1) . Infection with pandemic strains, seasonal influenza A or B viruses and zoonotic viruses such as swine or avian influenza were included because mask ⁄ respirator guidance is needed for all types of influenza. Studies that evaluated the effect of masks ⁄ respirators on transmission of other respiratory viruses were included as a proxy for influenza. A two-stage selection process was used to identify studies that appeared to meet the inclusion criteria. Firstly, Fb-R or VLC scanned and excluded papers on the basis of the 'title' for relevance; in the second and third searches, some relevant titles were excluded because they had been selected for review during a prior search. Secondly, to enhance the reliability of the selection process, Fb-R, VLC, MEC and AN independently reviewed the abstracts for the remaining papers. Fb-R or VLC used a pre-designed form to perform an initial data extraction of the full article and make an initial determination regarding its eligibility. MEC or AN subsequently reviewed all of the papers, supplemented Fb-R's and VLC's initial abstraction as necessary and re-assessed each paper for inclusion in the review. Any differences were resolved by mutual agreement. MEC and AN assessed the quality of the eligible studies using the Critical Appraisal Skills Programme tools 3 for randomised controlled trials, case-control studies and cohort studies. The three separate database searches yielded a total of 6015 titles; five articles were identified by scanning the reference lists of review articles and three articles were from MEC's hard copy collection ( Figure 1 ). Full papers were obtained for 76 articles; of these, 17 studies were eligible for inclusion. Descriptions, findings and comments for these studies are detailed in Tables 2-4. Three of the randomised trials were hospital-based studies, 4-6 and five were conducted in community settings. [7] [8] [9] [10] [11] Two of these studies compared N95 respirators (designed to seal tightly to the wearer's face and filter out very small particles or aerosols that may contain viruses) and surgical masks (used to block large droplets from coming into contact with the wearer's mouth or nose) amongst healthcare workers; one trial found a lower rate of clinical respiratory illness associated with the use of non-fit-tested N95 respirators compared with medical masks, 6 whilst a non-inferiority trial found that masks and respirators offered similar protection to nurses against laboratory-confirmed influenza infection. 5 A trial conducted amongst crowded, urban households found that, despite poor compliance, mask wearing coupled with hand sanitiser use, reduced secondary transmission of upper respiratory infection ⁄ influenza-like illness ⁄ laboratory-confirmed influenza compared with education; hand sanitiser alone resulted in no reduction in this aggregated outcome. 11 Although the remaining five trials found no significant differences between control and intervention groups, there were some notable findings. Household contacts who wore a P2 respirator (considered to have an equivalent rating to an N95 respirator) 'all' or 'most' of the time for the first 5 days were less likely to develop an influenza-like illness compared with less frequent users in one study. 9 Another study found a significant reduction in laboratory-confirmed influenza amongst household contacts that began hand hygiene or hand hygiene plus a mask within 36 hours of the index case's illness. 8 A trial conducted amongst resident university students detected significant reductions in influenza-like illness during weeks 4-6 in the mask and hand hygiene group after adjusting for vaccine receipt and other potential confounders. 10 The requirements for mask ⁄ respirator wearing and subsequent compliance varied by study ( Table 2) ; for example, in MacIntyre's study of healthcare workers in China in December 2008 through January 2009 6 'participants wore the mask or respirator on every shift for 4 consecutive weeks after being shown when to wear it', whilst nurses in Canada wore a mask or respirator during the 2008 ⁄ 09 influenza season when caring for patients with febrile respiratory illness and during aerosol-generating procedures. 5 Observational studies All of the observational studies evaluated mask and respirator use following the outbreaks of severe acute respiratory syndrome (SARS) in 2003; [12] [13] [14] [15] [16] [17] [18] [19] [20] seven studies were conducted amongst healthcare workers and two were community-based. All but two 12,13 of the case-control studies in healthcare workers reported that wearing masks and ⁄ or respirators appeared to protect workers from acquiring SARS. 14-17 A retrospective cohort study of nurses who worked in two Toronto hospital intensive care units found that the relative risk of SARS for nurses who consistently wore a N95 respirator was half that for nurses who consistently wore a surgical mask; however, the difference was not significant because of a small sample size. 18 None of the studies we reviewed established a conclusive relationship between mask ⁄ respirator use and protection against influenza infection. Some useful clues, however, could be gleaned. Subanalyses performed for one of the larger randomised controlled studies in a household setting found evidence of reduced rates of influenza-like illness if household contacts consistently wore the mask or respirator. 9 The authors of a randomised trial of mask plus alcohol-based sanitiser and mask-only group amongst U.S. university students living in residence halls noted that their study may have been better positioned to identify a protective effect because participants initiated the interventions at the beginning of the influenza season. 10 Cowling's 8 finding that there was a significant reduction in the secondary attack ratio if the hand hygiene and mask plus hand hygiene interventions were begun within 36 hours of the index case lends support to this hypothesis. Anticipating the paucity of studies that focused solely on influenza, we included the effect of masks ⁄ respirators on respiratory viruses other than influenza. Such studies have often been used to support infection control guidance for influenza. However, the difficulties in interpreting the observational studies of SARS suggest that they are of limited use for guiding policy on influenza. Firstly, SARS is an unusual acute viral respiratory infection with a very different epidemiology to almost all other respiratory viral infections. It is fundamentally different from human influenza: it rarely infects children, has a long incubation period, transmits little early on, mostly transmits in Cannot distinguish relative contributions of hand hygiene and mask as they were combined. bin-Reza et al. Masks and respirators to prevent influenza ª 2011 Blackwell Publishing Ltd healthcare settings, is not prone to extensive global spread and has only appeared once. Secondly, the studies were poorly designed, had many weaknesses and so were very difficult to interpret. Issues of concern include the use of a non-specific definition for exposure to a SARS patient (e.g. coming within one metre of a patient), inconsistency in providing information about the comparability of cases and controls and collection of data after a lengthy period following the outbreak. Several lacked microbiological confirmation of cases or controls and it would seem likely that a number of the SARS cases were not cases at all. Because all the cases knew they were cases, recall bias was highly likely. The single case-control study that tried to address some of these limitations did not find that inconsistent use of masks or respirators was associated with SARS infection. 13 It is important to note three considerations when assessing the practical implications of the review's findings. Firstly, development of evidence-based guidance about mask ⁄ respirator use is inextricably linked to what is known about how influenza is spread and specific risk factors that can affect transmissibility (e.g. host factors, pathogen factors, environmental factors and particle size). However, this is an area equally fraught with uncertainty; there are limited and conflicting evidence regarding the relative importance and frequency of direct contact, indirect contact, droplet and aerosol modes of transmission. 21, 22 Historically, transmission has been thought to occur principally through respiratory droplets and masks have been used as a barrier against droplets emitted by coughing and sneezing. In the last decade, there has been increasing interest in a possible role for aerosol transmission of influenza and the advisability of filtering respirators to block such transmission. For example, studies have found that infected patients can produce aerosol particles containing influenza virus 23 and that hospital airflow patterns can influence influenza transmission via aerosols. 24 Secondly, although the focus of this review has been on masks and respirators, limiting transmission of influenza in both healthcare and community settings requires a multifaceted approach, of which masks and respirators are but one component. In the healthcare setting, this 'hierarchy of controls' includes administrative controls help to reduce the introduction and spread of infection (e.g. policies to restrict entrance of ill visitors and workers, vaccination of healthcare workers); environmental ⁄ engineering controls (e.g. adequate ventilation); and lastly, use of personal protective equipment and hand hygiene. 25 In the community setting, a similarly structured approach is advised. However, during both the planning for an eventual pandemic and the subsequent public health response to the H1N1 pandemic, concern over policy and guidance related to mask ⁄ respirator use has at times seemed to overshadow Almost all HCWs wore N95 respirator or surgical mask in all patient settings. Unadjusted univariate analysis found inconsistent use of masks or respirators not associated with higher risk of SARS in any of the 3 contact settings; multivariate analysis found inconsistent use of >1 type of PPE during direct contact independent risk for SARS. No serological testing of controls; reporting bias possible. Nishiura ⁄ Viet Nam (14) Period 1: Time from admission of index case to occurrence of secondary cases in one hospital: 25 laboratory-confirmed SARS cases compared with 90 controls (HCWs and relatives of patients). Period 2: During a nosocomial outbreak in the hospital with strict isolation procedures, quarantine of HCWs and increased use of PPE: 4 laboratory-confirmed SARS cases compared with 26 controls with only physicians and nurses in both groups. Period 1: univariate analysis found masks (OR 0AE3, 95%CI 0AE1-0AE7) and gowns (OR 0AE2, 95%CI 0AE0-0AE8) protective; in logistic regression analyses, only masks protective (OR = 0AE29, 95% CI 0AE11-0AE73) Period 2: use of masks (OR < 0AE1, 95% CI 0AE0-0AE3) and gowns (P = 0AE010, OR and CI not calculable) associated with non-infection for doctors and nurses. Possible recall bias; exposures imprecisely quantified; no serological testing of controls. Nishiyama ⁄ Viet Nam (15) Risk factors for serologicallyconfirmed SARS infection assessed for 85 case and control HCWs who had direct contact with SARS patients. Multivariate logistic regression analysis found significant risk for SARS amongst HCWs who never wore mask compared with those who always wore a mask (OR 12AE6, 95% CI 2AE0-80AE0, P < 0AE01) Possible reporting bias as interview conducted 7 months after outbreak; nature of exposures to SARS not specified; community exposures not assessed. Seto ⁄ China -Hong Kong (16) 13 SARS-infected HCWs with no community exposures compared with 241 HCWs without clinical SARS; all reported direct contact with 11 SARS patients in 5 hospitals. Univariate analysis found HCWs who used surgical masks or N95 respirators, gowns or hand washing less likely to develop SARS; logistic regression analysis found use of any mask significant (OR 13, 95% CI 3-60). No serological testing of controls; reporting bias possible as interviews conducted a month after cases identified; community exposures not assessed. Teleman ⁄ Singapore (17) Evaluated risk factors for serologically-confirmed SARS amongst 36 ill case-HCWs exposed to 3 highly infectious source patients and 50 well control-HCWs that came within 1 m of serologically-confirmed SARS patients. Adjusted logistic regression analyses found that wearing N95 respirator during each patient contact (adj OR 0AE1, 95% CI 0AE02-0AE86, P = 0AE04) and hand washing after patient contact (adj OR 0AE07, 95% CI 0AE008-0AE66, P = 0AE02) protective. Small sample size; no serological testing of the controls; limited recall of precise exposure data; no assessment of community ⁄ household exposures. Masks and respirators to prevent influenza ª 2011 Blackwell Publishing Ltd other important controls. 26 It is somewhat paradoxical that whilst continued effort and resources are needed to assess the independent effect of masks and respirators on influenza transmission, their use would always be recommended in combination with other control measures. Thirdly the practical implications of policy, guidance and recommendations on mask ⁄ respirator use and other infection control measures must be considered. The only two studies that compared mask and respirators to protect healthcare workers from influenza infection essentially reached different conclusions 5, 6 illustrating the difficulties facing policymakers. 27 Further, a simulation study found that strict adherence to guidance about personal protective equipment (which included masks and respirators) compromised normal ward functioning in a UK hospital setting. 28 This review had a prescribed narrow focus that permitted us to examine a relatively small number of studies. We considered employing quantitative techniques, but on analysis found the studies comprised a range of study designs, pathogens, participants, interventions and opportunities for bias and confounding would render any meta- analysis findings open to criticism. A review that included interventions other than mask ⁄ respirator use, experimental laboratory and ⁄ animal-human studies on mask ⁄ respirator efficacy, cost-effectiveness studies and the occurrence of adverse events would present a more comprehensive picture. Several systematic reviews of interventions to limit the transmission of respiratory viral infections and ⁄ or specifically influenza have been undertaken. Most have considered a range of interventions; 29-33 one focused specifically on respiratory protection. 34 Within the boundaries established by our inclusion criteria, our search strategy captured essentially the same studies on masks and respirators that others have identified. Jefferson et al derived pooled estimates of the effectiveness of wearing an N95 respirator (91%) and wearing a mask (68%) for any respiratory viral infection; 29 however, these estimates were derived from the analyses of six SARS studies whose methodology was problematic. We carefully noted how well exposures in various studies were detailed and if cases and controls were laboratory-confirmed to avoid misclassification bias. We did not feel that such a heterogeneous group of studies could be combined even for SARS. In conclusion, there is a limited evidence base to support the use of masks and ⁄ or respirators in healthcare or community settings. Mask use is best undertaken as part of a package of personal protection, especially including hand hygiene in both home and healthcare settings. Early initiation and correct and consistent wearing of masks ⁄ respirators may improve their effectiveness. However, this remains a major challenge -both in the context of a formal study and in everyday practice. Continued research on the effectiveness masks ⁄ respirators use and other closely associated considerations remains an urgent priority with emphasis being on carefully designed observational studies and trials best conducted Titles and abstracts identified and screened n = 5351 (1st search) n = 317 (2nd search) n = 347 (3rd search) Figure 1 . Diagram of search strategy results and article selection for three searches. 1 Includes 3 papers that were sought for review and abstraction in the first search. 2 Includes 6 papers that were sought for review and abstraction in the second search. 3 One of these papers (reference no. 6) became available on-line on 27 January 2011. 4 Reasons for exclusion included an inability to distinguish the effect of mask use from other personal protective equipment or lack of quantitative data. Masks and respirators to prevent influenza ª 2011 Blackwell Publishing Ltd outside a crisis situation. 35 However, examination of the literature has highlighted that well-designed studies in this field are challenging. 27 Studies need to be adequately powered to assess potentially small differences between interventions and the independent effect of mask ⁄ respirator wearing when a second intervention (e.g. hand hygiene) is employed; an appropriate control group must be identified (e.g. no use of masks ⁄ respirators). Most of the studies we examined were too small to reliably detect what would be anticipated to be moderate effects. Perhaps, one solution is to fund large multi-centre trials with similar protocols in different sites for multiple years to achieve sufficient power. Protocols should include the collection of detailed exposure data, objective monitoring of compliance and assessment of potential confounders. It may be difficult to design studies employing a control group that does not use any protective equipment (including masks ⁄ respirators), particularly in healthcare settings, as such precautions are routinely recommended. Finally, there is a striking paucity of published studies with microbiologically proven influenza infection as an outcome; inclusion of laboratory outcomes is essential in any future study of masks ⁄ respirators on transmission of influenza. 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Angus Nicoll helped develop the ECDC infection control guidance for pandemic, seasonal and avian influenza. Fb-R, VLC, AN and MEC analysed the data. Fb-R and MEC were the principal writers of the manuscript with contributions from AN and VLC.