Eye protection and Covid-19

Medical staff combats COVID-19

What is the efficacy of eye protection equipment compared to no eye protection equipment in preventing transmission of COVID-19-type respiratory illnesses in primary and community care?(Khunti, 2020)

 

Link to The Dental Elf

Background

This rapid review asked whether, and in what circumstances lack of eye protection equipment is putting primary care clinicians at risk of contagion compared to use of eye protective equipment such as goggles. COVID-19 is spread by four means: via contact directly or contaminated surfaces; via droplet infection; via aerosols,  and aerosol generating procedures (AGPs)  which are created during many routine dental treatments; and finally the faeco-oral through poor hand hygiene. Even though there is limited evidence of Covid-19 virus being present in tears and conjunctival secretions there is a hypothetical risk that the virus could enter the body through the eye as a droplet or aerosol(Sun et al., 2020).

Methods

The Medline and Cochrane library digital databases were searched without date restrictions. Due to the large number of non-peer reviewed preprint publications in circulation they also conducted searches of Google Scholar. Critical appraisal of the systematic reviews was undertaken using the  AMSTAR II checklist (Shea et al., 2017).

Results

  • 52 randomised controlled trials and 12 systematic reviews were found on Medline.
  • 2 systematic reviews were assessed as good quality.
  • Verbeek (Verbeek et al., 2020) conducted a comprehensive Cochrane Review on the ‘Personal protective equipment for preventing highly infectious diseases due to exposure to contaminated body fluids in healthcare,’ and concluded there were no recent studies that investigated goggles or face shields.
  • French (French et al., 2016) identified two studies in which eye protection was used (eye–nose goggle or goggles plus masks) and found this to be effective in preventing transmission to staff (Agah et al., 1987, Gala et al., 1986). The control groups in both studies however were not wearing PPE so it was impossible to correctly evaluate the protective efficacy of the goggles from the face mask (See Table 1).

Table 1. Results from SR (French 2016)

Study Intervention Control Transmission risk in intervention group Transmission risk in intervention group
Agah et al, 1987 Goggles, mask and gowns No mask or goggles 5% (RSV illness rate) 61% (RSV illness rate)
Gala et al, 1986 Eye nose goggles No mask or goggles 5% 34%

RSV – Respiratory syncytial virus

Conclusion (Authors)

‘There is no direct evidence from randomised trials that eye protection equipment alone prevents transmission of COVID-19. Indirect evidence suggests that healthcare workers’ conjunctivae could be exposed to infective droplets and aerosols from patients during close contact. It is important to assess contagion risk of every encounter and take appropriate precautions   Where close contact is required, guidance for full personal protective equipment should be followed. For non-AGPs, there is no evidence from randomised trials that eye protective equipment provides additional protection’

Comments

In this well conducted rapid review the authors highlight the lack of direct evidence regarding the use of googles or face-shields in both non-AGP and AGP’s. There are many ethical reasons why there are so few studies and therefore current guidance is based on simulations using data from SARS and MERS outbreaks – as well as expert opinion, common sense, custom and practice. There is an urgent need for specific studies to address goggle and face shield performance in the dental surgery environment.

Disclaimer:  The article has not been peer-reviewed; it should not replace individual clinical judgement, and the sources cited should be checked. The views expressed in this commentary represent the views of the author and not necessarily those of the host institution. The views are not a substitute for professional advice.

 

Links

 

AGAH, R., CHERRY, J. D., GARAKIAN, A. J. & CHAPIN, M. 1987. Respiratory syncytial virus (RSV) infection rate in personnel caring for children with RSV infections: routine isolation procedure vs routine procedure supplemented by use of masks and goggles. American Journal of Diseases of Children, 141, 695-697.

FRENCH, C. E., MCKENZIE, B. C., COOPE, C., RAJANAIDU, S., PARANTHAMAN, K., PEBODY, R., NGUYEN‐VAN‐TAM, J. S., GROUP, N. R. S., HIGGINS, J. P. & BECK, C. R. 2016. Risk of nosocomial respiratory syncytial virus infection and effectiveness of control measures to prevent transmission events: a systematic review. Influenza and other respiratory viruses, 10, 268-290.

GALA, C. L., HALL, C. B., SCHNABEL, K. C., PINCUS, P. H., BLOSSOM, P., HILDRETH, S. W., BETTS, R. F. & DOUGLAS, R. G. 1986. The use of eye-nose goggles to control nosocomial respiratory syncytial virus infection. Jama, 256, 2706-2708.

KHUNTI, K. G., T. 2020. What is the efficacy of eye protection in primary care setting [Online]. Oxford COVID-19 Evidence Service. Available: https://www.cebm.net/covid-19/what-is-the-efficacy-of-eye-protection-equipment-compared-to-no-eye-protection-equipment-in-preventing-transmission-of-covid-19-type-respiratory-illnesses-in-primary-and-community-care/ [Accessed].

SHEA, B. J., REEVES, B. C., WELLS, G., THUKU, M., HAMEL, C., MORAN, J., MOHER, D., TUGWELL, P., WELCH, V. & KRISTJANSSON, E. 2017. AMSTAR 2: a critical appraisal tool for systematic reviews that include randomised or non-randomised studies of healthcare interventions, or both. bmj, 358, j4008.

SUN, C.-B., WANG, Y.-Y., LIU, G.-H. & LIU, Z. 2020. Role of the Eye in Transmitting Human Coronavirus: What We Know and What We Do Not Know. Frontiers in Public Health, 8.

VERBEEK, J. H., RAJAMAKI, B., IJAZ, S., SAUNI, R., TOOMEY, E., BLACKWOOD, B., TIKKA, C., RUOTSALAINEN, J. H. & KILINC BALCI, F. S. 2020. Personal protective equipment for preventing highly infectious diseases due to exposure to contaminated body fluids in healthcare staff. Cochrane Database Syst Rev, 4, CD011621.

How effective are free-standing clean air systems in dental practice?

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The question is: How effective are free-standing clean air systems in dental practice?

The bottom-line answer is: As with many of the rapid reviews and studies available regarding Covid-19 there is no direct evidence of the benefits of free-standing clean air systems in dental practice. Indirect evidence suggests a small but non-significant benefit that might easily by outweighed by their functionality in a working environment.

Discussion

From the available peer reviewed literature there are two types of air cleaning systems, both mostly a Class 13 high efficiency particulate air (HEPA) filter which can remove 99.95% of particulates. The first are free standing directional units that are large high-volume suction units placed about 1 m from the dental team (Hallier et al., 2010; Yamada et al., 2011). Both units reduced bacterial counts by about 30%. It should be noted that in Hallier and co-workers paper there was no statistical differences in bacterial counts created prior to the clean air system being activated between, history and examination, ultrasonic scaling with high volume suction (HVS), and tooth extraction. Cavity preparation was an outlier, the authors did not mention the use of HVS during this procedure unlike the scaling, as the bacterial count dropped by approximately 80% it suggests the use of normal HVS might be the significant factor here.

The second type of clean air system acts as a general air filter. There are two systematic reviews available, Eckmanns looked at mortality in highly immunosuppressed patients, and McDonald looked at asthma symptoms (Eckmanns et al., 2006; McDonald et al., 2002). The overall summary estimate for both reviews  weakly favoured the use of HEPA filters, but the results were not statistically significant using a random effects model (See Table 1).

Table 1. Summary Estimate for systematic reviews

Systematic review Study type Effect size 95%Confidence interval
McDonald et al 2002 RCTs (4) WMD = -0.76 -2.17 to 0.65
Eckmanns et al 2006 RCTs (6) RR = 0.86 0.65 to1.14
Eckmanns et al 2006 Non-RCTs (4) RR = 0.87 0.60 to 1.25
RR – relative risk  WMD – weighted mean difference

There is no direct evidence regarding UVC in air filters being able to kill Covid-19 (Narla et al., 2020; Shirbandi et al., 2020). There is an urgent need for specific studies to address air quality in the dental surgery environment.

Disclaimer:  The article has not been peer-reviewed; it should not replace individual clinical judgement, and the sources cited should be checked. The views expressed in this commentary represent the views of the author and not necessarily those of the host institution. The views are not a substitute for professional advice.

 

REFERENCES

ECKMANNS, T., RÜDEN, H. & GASTMEIER, P. 2006. The influence of high-efficiency particulate air filtration on mortality and fungal infection among highly immunosuppressed patients: a systematic review. The Journal of infectious diseases, 193, 1408-1418.

HALLIER, C., WILLIAMS, D. W., POTTS, A. J. C. & LEWIS, M. A. O. 2010. A pilot study of bioaerosol reduction using an air cleaning system during dental procedures. British Dental Journal, 209.

MCDONALD, E., COOK, D., NEWMAN, T., GRIFFITH, L., COX, G. & GUYATT, G. 2002. Effect of air filtration systems on asthma: a systematic review of randomized trials. Chest, 122, 1535-42.

NARLA, S., LYONS, A. B., KOHLI, I., TORRES, A. E., PARKS‐MILLER, A., OZOG, D. M., HAMZAVI, I. H. & LIM, H. W. 2020. The Importance of the Minimum Dosage Necessary for UVC Decontamination of N95 Respirators during the COVID‐19 Pandemic. Photodermatology, Photoimmunology & Photomedicine.

SHIRBANDI, K., BARGHANDAN, S., MOBINFAR, O. & RAHIM, F. 2020. Inactivation of Coronavirus with Ultraviolet Irradiation: What? How? Why?

YAMADA, H., ISHIHAMA, K., YASUDA, K., HASUMI-NAKAYAMA, Y., SHIMOJI, S. & FURUSAWA, K. 2011. Aerial dispersal of blood-contaminated aerosols during dental procedures. Quintessence international (Berlin, Germany : 1985), 42, 399-405.

How much extra protection does an FFP3 mask offer in the dental surgery?

https://www.nationalelfservice.net/dentistry/dental-workforce/how-much-extra-protection-does-an-ffp3-mask-offer-in-the-dental-surgery/

Question:

How much additional protection does a Class 3 filtering facepiece (FFP) mask offer over an FFP2 mask or a standard fluid resistant surgical facemask (Type IIR) when worn during aerosol generating procedures (AGPs) in dentistry?

Bottom-line answer:

From the evidence presented below there would appear to be small additional protection (0.4%) offered by and FFP3/FFP2 masks compared to a surgical facemask during aerosol generating procedures in the dental environment if high volume suction and rubber dam are used in combination. In the absence of rubber dam this difference increases to 7%.

Background

Much of the UK emergency planning regarding Covid-19 stems from protocols following the Severe Acute Respiratory Syndrome (SARS) epidemic of 2003. In terms of dentistry our current measures were outlined in  a paper by Li and co-workers (Li et al., 2004). The major difference between the planning for SARS/MERS and Covid-19 is that both the preceding respiratory viruses were considerably more dangerous with a cumulative fatality rate (CFR)  of 11% and 34% respectively, whereas estimates to date suggest a CFR for Covid-19 <1% (Park et al., 2020; Rajgor et al., 2020; Bendavid et al., 2020).

The Public Health England guidance document for personal protective equipment updated 27 April 2020 (GOV.UK, 2020) states the need to limit the use of fluid resistant surgical facemasks (FRSM) to non-AGP procedures, and FFP2/FFP3 for aerosol generating procedures (AGPs) procedures. This guidance is general, and not specific to dental AGPs. In order to assess how effective the use of these masks in the dental environment is when an AGP is created we need to go to a review by Harrel and co-workers post SARS (Harrel and Molinari, 2004) who cited 5 main categories of AGP:

  • Ultrasonic and sonic scalers
  • Air polishing
  • Air-water syringes
  • Tooth preparation with a high/slow speed handpiece
  • Tooth preparation with air abrasion

Besides good cross infection policy the three papers (Harrel and Molinari, 2004; Li et al., 2004; Kohn et al., 2003)  published just after SARS all mention three methods to reduce AGPs; appropriate PPE, rubber dam isolation and high volume suction equipment, which is common to all dental surgeries.

Rubber dam has been in use since 1864 and is used to isolate one or more teeth from the fluids in the oral environment using a thin sheet of latex or silicon rubber. High volume suction draws a large volume of air away from the oral cavity during operative procedure also reducing the amount of aerosol and splatter.

Method

To see how effective these three pieces of equipment a rapid review of high-volume aspiration and rubber dam was undertaken.  A recent systematic review, and rapid review of surgical masks versus FFP3 masks  had already concluded finding no statistical difference in effectiveness between the masks regarding influenza like viral infections (Long et al., 2020; Greenhalgh et al., 2020). The filtration capacity of a standard surgical face mask is highly variable compared to an FFP2 or FFP3 mask, Oberg and co-workers (Oberg and Brosseau, 2008) concluded that none of the surgical masks tested in-vivo on 40 subjects exhibited adequate filter performance and facial fit characteristics to be considered respiratory protection devices. The mean penetration by 0.8μm latex spheres was 37.89 (95% CI: 25.8% to 50.0%) for the dental quality masks in their study (A,B,C, and E).

For the rapid review observational studies comparing the effect on aerosol and bioaerosol contamination form the use of high-volume aspiration and/or rubber dam compared with dental treatment without these procedures in place were identified.  There was no language or date restriction. Ovid (Medline), Scopus (Elsevier) and the Cochrane databases were searched (See Appendix).

Seven studies fulfilled the inclusion criteria. 3 studies related to high volume suction (Harrel et al., 1996; Jacks, 2002; Devker et al., 2012), and 4 related to the use of rubber dam (Cochran et al., 1989; Samaranayake et al., 1989; Dahlke et al., 2012; Al-Amad et al., 2017). The studies were all moderate to low quality. There was insufficient data for meta-analysis.

Summary of findings

High volume suction

Regarding the use of high volume suction Harrel and co-workers (Harrel et al., 1996) undertook an in vitro study using an ultrasonic scaler for 1 minute to generate a dye containing aerosol, the experiment was repeated 10 times. The high-volume evacuator attachment produced a 93% reduction in surface contamination . Jacks performed a similar in-vitro study resulting in a 90.8% reduction in surface contamination (Jacks, 2002). The only in-vivo study was by Devker and co-workers (Devker et al., 2012), 30 dentate subjects  had half their mouths cleaned using an ultrasonic scaler as a control and the other half using high volume suction. 4 culture plates were placed on the operator and patient resulting in an 81% reduction in bacterial culture forming units.

 Rubber dam placement

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The second part of the review related to rubber dam usage. In Cochran’s study  (Cochran et al., 1989) microbial collection was performed during preparation and  placement of amalgam and composite resin restorations with and without the rubber dam resulting in a 90% to 98% reduction in microorganisms. Samaranayake (Samaranayake et al., 1989) undertook an in-vivo study with 10 child patients in each arm. The control group had their conservative dentistry with high volume suction only and the experimental group had high volume suction with rubber dam isolation. The mean reduction in culture forming units at 1 meter was 87.9% ±10.3 with the rubber dam . Dahlke conducted an in-vitro study using dye, rubber dam and high-volume suction while preparing the surface of a typodont tooth with a dental handpiece. The experiment was repeated 24 times resulting in a 33% reduction in surface contamination. The final study involved 52 senior dental students performing restorative dental treatment with and without a rubber dam (Al-Amad et al., 2017) and produced a strange outlier results with an increased level of contamination, which may highlight technique sensitivity. The lack of papers is possibly a function of the large effect sizes produced in the earlier studies reducing the demand for duplication.

Putting the three components into a clinical workflow

There are three components here:

  1. High-volume suction reduces bioaerosols by about 81% to 90%
  2. Rubber dam reduces bioaerosols by a further 30% to 90%
  3. Fluid resistant surgical facemask filter 62% airborne particles
  4. FFP2 masks filter 94% airborne particles
  5. FFP3 masks filter 99% of airborne particles

Putting these components together in a clinical environment, a well-trained dental team using high-volume aspiration and rubber dam could reduce the bioaerosol by about 99%. If we take the efficacy of the masks as stated in government guidance and apply it to this reduction, we get an overall reduction in AGPs of 99.62% for the surgical mask, 99.94% for FFP2 masks and 99.99 for FFP3 respectively, with a risk difference (RD) of 0.37% between the surgical mask and FFP3 and a relative risk of 0.996 (See Table 1). With the lower suction efficiency of 81% without the use of rubber dam this difference would change to 7.03% RD and RR of 0.929. There was insufficient data to produce confidence intervals.

Table 1. Differences in face mask effectiveness in dental AGP

Mask Type Filtration (%) HVS* only (%) HVA+ RD (%) RDiff (%) RR
Surgical mask 62 92.78 99.62 6.84 0.931
FFP2 94 98.86 99.94 1.08 0.989
FFP3 99 99.81 99.99 0.18 0.998
HVA- High volume suction    RD – Rubber Dam    RDiff – Risk difference    RR – Relative risk

Conclusion

In the clinical environment where high volume aspiration and rubber dam is in use during dental AGP procedures there may be no significant additional benefit in wearing an FFP3/FFP2 or surgical mask. There is a much larger difference if the quality of the HVS is reduced and rubber dam is not used   It may be that the moderate benefit of FFP2 and FFP3 masks is lost over time due to functional factors such as movement of the mask or cross contamination from extended wear compared to changing masks between patients (Greenhalgh et al., 2020). Where supply of FFP3 masks might limit the delivery of primary dental care we will need to consider if the additional benefit is outweighed by the harms of delaying or restricting care to asymptomatic and healthy patients. These results are hypothetical and due to the lack of specific studies of virus penetration of facemasks in dentistry are based on surrogate, and composite outcomes. There is an urgent need for specific studies to address mask performance in the dental surgery environment.

Disclaimer:  The article has not been peer-reviewed; it should not replace individual clinical judgement, and the sources cited should be checked. The views expressed in this commentary represent the views of the author and not necessarily those of the host institution. The views are not a substitute for professional advice.

References

AL-AMAD, S. H., AWAD, M. A., EDHER, F. M., SHAHRAMIAN, K. & OMRAN, T. A. 2017. The effect of rubber dam on atmospheric bacterial aerosols during restorative dentistry. Journal of infection and public health, 10, 195-200.

BENDAVID, E., MULANEY, B., SOOD, N., SHAH, S., LING, E., BROMLEY-DULFANO, R., LAI, C., WEISSBERG, Z., SAAVEDRA, R. & TEDROW, J. 2020. COVID-19 Antibody Seroprevalence in Santa Clara County, California. medRxiv.

COCHRAN, M. A., MILLER, C. H. & SHELDRAKE, M. A. 1989. The efficacy of the rubber dam as a barrier to the spread of microorganisms during dental treatment. The Journal of the American Dental Association, 119, 141-144.

DAHLKE, W. O., COTTAM, M. R., HERRING, M. C., LEAVITT, J. M., DITMYER, M. M. & WALKER, R. S. 2012. Evaluation of the spatter-reduction effectiveness of two dry-field isolation techniques. J Am Dent Assoc, 143, 1199-204.

DEVKER, N. R., MOHITEY, J., VIBHUTE, A., CHOUHAN, V. S., CHAVAN, P., MALAGI, S. & JOSEPH, R. 2012. A study to evaluate and compare the efficacy of preprocedural mouthrinsing and high volume evacuator attachment alone and in combination in reducing the amount of viable aerosols produced during ultrasonic scaling procedure. The journal of contemporary dental practice, 13, 681-9.

GOV.UK. 2020. COVID-19 ( personal protective equipment (PPE) [Online]. Available: https://www.gov.uk/government/publications/wuhan-novel-coronavirus-infection-prevention-and-control/covid-19-personal-protective-equipment-ppe [Accessed 29th April 2020].

GREENHALGH, T., CHAN, X. H., KHUNTI, K., DURAND-MOREAU, Q., STRAUBE, S., DEVANE, D., TOOMEY, E., IRELAND, E. S. & IRELAND, C. 2020. What is the efficacy of standard face masks compared to respirator masks in preventing COVID-type respiratory illnesses in primary care staff?[Internet]. Oxford, UK: Oxford COVID-19 Evidence Service.

HARREL, S. K., BARNES, J. B. & RIVERA-HIDALGO, F. 1996. Reduction of aerosols produced by ultrasonic scalers. Journal of periodontology, 67, 28-32.

HARREL, S. K. & MOLINARI, J. 2004. Aerosols and splatter in dentistry: a brief review of the literature and infection control implications. The Journal of the American Dental Association, 135, 429-437.

JACKS, M. E. 2002. A laboratory comparison of evacuation devices on aerosol reduction. Journal of dental hygiene: JDH, 76, 202-206.

KOHN, W. G., COLLINS, A. S., CLEVELAND, J. L., HARTE, J. A., EKLUND, K. J. & MALVITZ, D. M. 2003. Guidelines for infection control in dental health-care settings-2003.

LI, R., LEUNG, K., SUN, F. & SAMARANAYAKE, L. 2004. Severe acute respiratory syndrome (SARS) and the GDP. Part II: Implications for GDPs. British dental journal, 197, 130-134.

LONG, Y., HU, T., LIU, L., CHEN, R., GUO, Q., YANG, L., CHENG, Y., HUANG, J. & DU, L. 2020. Effectiveness of N95 respirators versus surgical masks against influenza: A systematic review and meta-analysis. J Evid Based Med.

OBERG, T. & BROSSEAU, L. M. 2008. Surgical mask filter and fit performance. Am J Infect Control, 36, 276-82.

PARK, M., THWAITES, R. S. & OPENSHAW, P. J. 2020. COVID‐19: Lessons from SARS and MERS. European Journal of Immunology, 50, 308.

RAJGOR, D. D., LEE, M. H., ARCHULETA, S., BAGDASARIAN, N. & QUEK, S. C. 2020. The many estimates of the COVID-19 case fatality rate. The Lancet Infectious Diseases.

SAMARANAYAKE, L., REID, J. & EVANS, D. 1989. The efficacy of rubber dam isolation in reducing atmospheric bacterial contamination. ASDC journal of dentistry for children, 56, 442-444.

Appendix

Search strategy Ovid Medline

1 exp *dentistry/ or exp *dental care/ 291029
2 (dental or dentistry).m_titl. 141221
3 (high volume suction or high-volume aspiration).af. 18
4 1 or 2 or 3 371934
5 *Aerosols/ 8879
6 (aerosol* or bioaerosol* or bio-aerosols*).m_titl. 18171
7 5 or 6 20618
8 4 and 7 146
9 aspiration.mp. 82401
10 7 and 9 54
11 Suction/ 12363
12 3 or 9 or 11 90954
13 8 and 12 12
14 Rubber Dams/ 498
15 rubber dam*.mp. 1124
16 8 and 15 7

Other References

Dental Elf Blog – 25th Mar 2020