Transcriptional heterogeneity shapes stress-adaptive responses in yeast

In response to stress, cells activate signaling pathways that coordinate broad changes in gene expression to enhance cell survival. Remarkably, complex variations in gene expression occur even in isogenic populations and in response to similar signaling inputs. However, the molecular mechanisms underlying this variability and their influence on adaptive cell fate decisions are not fully understood. Here, we use scRNA-seq to longitudinally assess transcriptional dynamics during osmoadaptation in yeast. Our findings reveal highly heterogeneous expression of the osmoresponsive program, which organizes into combinatorial patterns that generate distinct cellular programs. The induction of these programs is favored by global transcriptome repression upon stress. Cells displaying basal expression of the osmoresponsive program are hyper-responsive and resistant to stress. Through a transcription-focused analysis of more than 300 RNA-barcoded deletion mutants, we identify genetic factors that shape the heterogeneity of the osmostress-induced transcriptome, define regulators of stress-related subpopulations and find a link between transcriptional heterogeneity and increased cell fitness. Our findings provide a regulatory map of the complex transcriptional phenotypes underlying osmoadaptation in yeast and highlight the importance of transcriptional heterogeneity in generating distinct adaptive strategies.

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Publication Details

Journal
Nature Communications
Published
2025-03-17
DOI
https://doi.org/10.1038/s41467-025-57911-6
Citations
4
Primary Topic
Fungal and yeast genetics research
Type
article
Field-Weighted Citation Impact
3.22
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article

Transcriptional heterogeneity shapes stress-adaptive responses in yeast

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4 citations
Nature Communications
Fungal and yeast genetics research
3.22
article

Transcriptional heterogeneity shapes stress-adaptive responses in yeast

Maria L. Quintana, Yaima Matas, Guillaume Lieb, Mónica Romo, Mariona Nadal‐Ribelles, Francesc Posas, Ugo Szachnowski, Sara Andjus, Antonin Morillon, Serge Pelet, Eulàlia de Nadal, Carme Solé, A. Herrero
article en
4 citations

Abstract

In response to stress, cells activate signaling pathways that coordinate broad changes in gene expression to enhance cell survival. Remarkably, complex variations in gene expression occur even in isogenic populations and in response to similar signaling inputs. However, the molecular mechanisms underlying this variability and their influence on adaptive cell fate decisions are not fully understood. Here, we use scRNA-seq to longitudinally assess transcriptional dynamics during osmoadaptation in yeast. Our findings reveal highly heterogeneous expression of the osmoresponsive program, which organizes into combinatorial patterns that generate distinct cellular programs. The induction of these programs is favored by global transcriptome repression upon stress. Cells displaying basal expression of the osmoresponsive program are hyper-responsive and resistant to stress. Through a transcription-focused analysis of more than 300 RNA-barcoded deletion mutants, we identify genetic factors that shape the heterogeneity of the osmostress-induced transcriptome, define regulators of stress-related subpopulations and find a link between transcriptional heterogeneity and increased cell fitness. Our findings provide a regulatory map of the complex transcriptional phenotypes underlying osmoadaptation in yeast and highlight the importance of transcriptional heterogeneity in generating distinct adaptive strategies.

Nature CommunicationsVol. 16(1)
Centre National de la Recherche Scientifique (FR), Universitat Pompeu Fabra (ES), Sorbonne Université (FR), Dynamique de l'information génétique : bases fondamentales et cancer (FR), Institute for Research in Biomedicine (ES), Institut Curie (FR), University of Lausanne (CH)
Openalex Percentile: Top 9%
Fungal and yeast genetics research
3.22
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