Hydrating the Respiratory Tract : An Alternative Explanation Why Masks Lower Severity of COVID-19 Disease

Seasonality of respiratory diseases has been linked, among other factors, to low outdoor absolute humidity and low relative humidity in indoor environments, which increase evaporation of water in the mucosal layer lining the respiratory tract. We demonstrate that normal breathing results in an absorption-desorption cycle inside facemasks, where super-saturated air is absorbed by the mask fibers during expiration, followed by evaporation during inspiration of dry environmental air. For double-layered cotton masks, which have considerable heat capacity, the temperature of inspired air rises above room temperature, and the effective increase in relative humidity can exceed 100%. We propose that the recently reported, disease-attenuating effect of generic facemasks is dominated by the strong humidity increase of inspired air.

SIGNIFICANCE STATEMENT: Facemasks are the most widely used tool for mitigating the spread of the COVID-19 pandemic. Decreased disease severity by the wearer has also been linked to the use of cloth facemasks. This well-documented finding is surprising considering that such masks are poor at filtering the smallest aerosol particles, which can reach the lower respiratory tract and have been associated with severe disease. We show that facemasks strongly increase the effective humidity of inhaled air, thereby promoting hydration of the respiratory epithelium which is known to be beneficial to the immune system. Increased humidity of inspired air could be an alternate explanation for the now well-established link between mask wearing and lower disease severity.

Errataetall:

UpdateIn: Biophys J. 2021 Feb 12;:. - PMID 33582134

Medienart:

E-Artikel

Erscheinungsjahr:

2020

Erschienen:

2020

Enthalten in:

Zur Gesamtaufnahme - year:2020

Enthalten in:

medRxiv : the preprint server for health sciences - (2020) vom: 26. Dez.

Sprache:

Englisch

Beteiligte Personen:

Courtney, Joseph M [VerfasserIn]
Bax, Ad [VerfasserIn]

Links:

Volltext

Themen:

Preprint

Anmerkungen:

Date Revised 30.03.2024

published: Electronic

UpdateIn: Biophys J. 2021 Feb 12;:. - PMID 33582134

Citation Status PubMed-not-MEDLINE

doi:

10.1101/2020.12.23.20248671

funding:

Förderinstitution / Projekttitel:

PPN (Katalog-ID):

NLM319622010