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Exploring the Habitability of the Outer Solar System Icy Moons for the Extremotolerant Yeast Rhodotorula frigidalcoholis

Tommaso Zaccaria; Xuehui He; Kristina Beblo‐Vranesevic; Mihai G. Netea; Marien I. de Jonge; Petra Rettberg
Environmental Microbiology · Vol. 28, Issue 2 · 2026

Abstract

Psychrophilic and psychrotolerant microorganisms have the unique ability to grow below 0°C, which makes them ideal candidates for studying how life could survive on the icy moons of the solar system. The renewed interest, in view of the JUICE and Europe Clipper missions, to explore these locations has pushed for the identification of organisms which could survive on the icy moons. In this study we selected the extremophilic yeast Rhodotorula frigidalcoholis given its innate ability to grow between 30°C and −10°C and to survive a range of extreme conditions including x‐ray, UV‐C and polychromatic UV radiation, desiccation at different temperatures, and freeze–thaw cycles. We report the survival of R. frigidalcoholis under conditions analogous to those found on icy moons. Using transcriptomic approaches, we present novel insights into differential gene expression before, during, and after exposure to combined icy moon conditions. We also identified the rapid activation of genes involved in catalytic activity and DNA repair during exposure. Our results contribute to a better understanding of the survival mechanisms of psychrotolerant microorganisms in extreme environments and can inform future life‐detection missions on moons such as Enceladus and Europa, also highlighting the need to consider yeasts in planetary protection efforts.

Bibliographic Information

JournalEnvironmental Microbiology
PublisherWiley
Publication Date2026-02-01
Publication Year2026
Volume28
Issue2
Document TypeJournal Article
Print ISSN1462-2912
eISSN1462-2920
DOI10.1111/1462-2920.70260
SubjectMicrobial Ecology

Access Information

NARA Access Coverage1999-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/14622920
Publisher PageOpen Publisher Page
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