Nadal-Ribelles Mariona, Lieb Guillaume, Solé Carme, Matas Yaima, Szachnowski Ugo, Andjus Sara, Quintana Maria, Romo Mònica, Herrero Aitor Gonzalez, Morillon Antonin, Pelet Serge, de Nadal Eulàlia, Posas Francesc
Department of Medicine and Life Sciences, Universitat Pompeu Fabra, Barcelona, 08003, Spain.
Institute for Research in Biomedicine (IRB Barcelona), The Barcelona Institute of Science and Technology, Barcelona, 08028, Spain.
Nat Commun. 2025 Mar 17;16(1):2631. doi: 10.1038/s41467-025-57911-6.
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.
作为对压力的响应,细胞会激活信号通路,这些信号通路协调基因表达的广泛变化以提高细胞存活率。值得注意的是,即使在同基因群体中以及对相似的信号输入做出响应时,基因表达也会出现复杂的变化。然而,这种变异性背后的分子机制及其对适应性细胞命运决定的影响尚未完全了解。在这里,我们使用单细胞RNA测序(scRNA-seq)来纵向评估酵母渗透适应过程中的转录动态。我们的研究结果揭示了渗透反应程序的高度异质性表达,该程序组织成组合模式,产生不同的细胞程序。这些程序的诱导受到应激时全局转录组抑制的促进。显示渗透反应程序基础表达的细胞具有高反应性且对压力有抗性。通过对300多个RNA条形码缺失突变体进行以转录为重点的分析,我们确定了塑造渗透应激诱导转录组异质性的遗传因素,定义了应激相关亚群的调节因子,并发现了转录异质性与细胞适应性增加之间的联系。我们的研究结果提供了酵母渗透适应基础的复杂转录表型的调控图谱,并突出了转录异质性在产生不同适应性策略中的重要性。