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Mitogen-activated protein kinase (MAPK) dynamics determine cell fate in the yeast mating response

机译:丝裂原激活的蛋白激酶(MAPK)动力学决定了酵母交配反应中的细胞命运

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摘要

In the yeast Saccharomyces cerevisiae, the exposure to mating pheromone activates a prototypic mitogen-activated protein kinase (MAPK) cascade and triggers a dose-dependent differentiation response. Whereas a high pheromone dose induces growth arrest and formation of a shmoo-like morphology in yeast cells, lower pheromone doses elicit elongated cell growth. Previous population-level analysis has revealed that the MAPK Fus3 plays an important role in mediating this differentiation switch. To further investigate how Fus3 controls the fate decision process at the single-cell level, we developed a specific translocation-based reporter for monitoring Fus3 activity in individual live cells. Using this reporter, we observed strikingly different dynamic patterns of Fus3 activation in single cells differentiated into distinct fates. Cells committed to growth arrest and shmoo formation exhibited sustained Fus3 activation. In contrast, most cells undergoing elongated growth showed either a delayed gradual increase or pulsatile dynamics of Fus3 activity. Furthermore, we found that chemically perturbing Fus3 dynamics with a specific inhibitor could effectively redirect the mating differentiation, confirming the causative role of Fus3 dynamics in driving cell fate decisions. MAPKs mediate proliferation and differentiation signals in mammals and are therapeutic targets in many cancers. Our results highlight the importance of MAPK dynamics in regulating single-cell responses and open up the possibility that MAPK signaling dynamics could be a pharmacological target in therapeutic interventions.
机译:在酵母中,暴露于交配信息素会激活原型有丝分裂原激活的蛋白激酶(MAPK)级联并触发剂量依赖性分化反应。高剂量的信息素会导致酵母细胞中的生长停滞并形成类似shmoo的形态,而较低的信息素剂量会导致细胞生长延长。先前的人群水平分析表明,MAPK Fus3在介导这种分化开关中起重要作用。为了进一步研究Fus3如何在单细胞水平上控制命运决定过程,我们开发了一种基于易位的特定报告基因,用于监测单个活细胞中的Fus3活性。使用该报道者,我们观察到了分化为不同命运的单个细胞中Fus3激活的惊人动态模式。致力于生长停滞和smoo形成的细胞表现出持续的Fus3激活。相反,大多数经历延长生长的细胞显示出Fus3活性的延迟逐渐增加或搏动动力学。此外,我们发现化学上与特定抑制剂扰动Fus3动力学可以有效地重定向交配分化,证实Fus3动力学在驱动细胞命运决定中的起因。 MAPKs在哺乳动物中介导增殖和分化信号,并且是许多癌症的治疗靶标。我们的结果强调了MAPK动力学在调节单细胞应答中的重要性,并开辟了MAPK信号动力学可能成为治疗干预中药理学目标的可能性。

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