DOI: 10.1098/rsif.2025.1153 ISSN: 1742-5662

Viral transport in evaporating sessile model respiratory droplets

Javier Martínez Puig, Carlos de la Torre, Carolina Arbesu Nieto, Pepijn I. Hoekstra, Fernando Usera Mena, Beatriz Martín-Jouve, Arancha de la Encina, Marta Bartolomé, Marta Sanz, Fernando Almazán, Ana Oña, Alvaro Marin, Javier Rodríguez-Rodríguez

Abstract

Viral particles, or virions, may remain infectious in the dry residue of respiratory droplets for times as long as hours. This is counterintuitive, since salt concentration increases dramatically as the drop's water evaporates, making the drop a harsh environment for virions. It has been hypothesized that the drop components (mainly salt and the glycoprotein mucin) segregate during the evaporation process, with virions being transported away from salt deposits. This would protect them from the salt's damaging effects. Thus, understanding where virions reside in a drop residue is essential to disentangle the physico-chemical mechanisms that drive their inactivation. However, determining the virion location in an environment as heterogeneous and complex as a respiratory drop is challenging. Here, we show experimentally that virions in a drop's dry residue are found mainly forming aggregates in protein-rich regions, outside salt crystals. The mechanism yielding the observed viral spatial distribution can be found in the internal flow phenomena within the droplet, which are described using numerical simulations. We anticipate our results to be relevant to explain the discrepancies in the infectivity decay rates measured in respiratory drops in previously reported studies.

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