Effects of Sup35 overexpression on the formation, morphology, and physiological functions of intracellular Sup35 assemblies

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Abstract

The yeast prion protein Sup35 is aggregation-prone at high concentrations. De novo Sup35 prion formation occurs at a significantly increased rate after transient overexpression of Sup35 in the presence of another prion, [PIN+], but it is still a rare event. Recent studies uncovered an additional and seemingly more prevalent role of Sup35: at its physiological level, it undergoes phase separation to form reversible condensates in response to transient stress. Stress-induced reversible Sup35 condensation in the [psi-] strain enhances cellular fitness after stress ceases, whereas irreversible Sup35 aggregates in the [PSI+] strain do not confer this advantage. However, how Sup35 overexpression, which could potentially lead to irreversible aggregation, affects its condensation under stress conditions remains unclear. In this study, we used a combinatorial method to examine how different levels of Sup35 overproduction and cellular conditions affect the nature, formation, and physical properties of Sup35 assemblies in yeast cells, as well as their impacts on cellular growth. We observed notable morphological distinctions between irreversible Sup35 aggregates and reversible Sup35 condensates, possibly indicating different formation mechanisms. In addition, Sup35 aggregation caused by a very high overexpression level can strongly inhibit cell growth, diminish the formation of stress-induced condensates when Sup35 is completely aggregated, and impair cellular recovery from stress. Together, this study advances our fundamental understanding of the physical properties and formation mechanism of different Sup35 assemblies and their impacts on cellular growth. We conclude that in vivo studies are sensitive to overexpression and can lead to assembly routes that strongly affect functions.

Original languageEnglish
Article numbere01703-24
Number of pages23
JournalApplied and Environmental Microbiology
Volume91
Issue number3
Early online date6 Feb 2025
DOIs
Publication statusPublished - Mar 2025
MoE publication typeA1 Journal article-refereed

Keywords

  • biomolecular condensates
  • stress response
  • Sup35
  • super-resolution radial fluctuations

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  • -: LIBER Linder II

    Linder, M. (Principal investigator)

    01/01/202431/12/2026

    Project: RCF Academy Project

  • LIBER Linder: Life-like hybrid materials

    Linder, M. (Principal investigator)

    01/01/202231/12/2026

    Project: RCF Centre of Excellence

  • -: LIBER/Timonen

    Timonen, J. (Principal investigator)

    01/01/202231/12/2024

    Project: RCF Academy Project

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