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光遗传学操控鉴定了 ERK 和 AKT 动力学在控制小鼠胚胎干细胞退出多能性中的作用。

Optogenetic manipulation identifies the roles of ERK and AKT dynamics in controlling mouse embryonic stem cell exit from pluripotency.

机构信息

Department of Biosystems Science and Engineering, ETH Zurich, 4058 Basel, Switzerland.

Department of Biosystems Science and Engineering, ETH Zurich, 4058 Basel, Switzerland.

出版信息

Dev Cell. 2023 Jun 19;58(12):1022-1036.e4. doi: 10.1016/j.devcel.2023.04.013. Epub 2023 May 18.

Abstract

ERK and AKT signaling control pluripotent cell self-renewal versus differentiation. ERK pathway activity over time (i.e., dynamics) is heterogeneous between individual pluripotent cells, even in response to the same stimuli. To analyze potential functions of ERK and AKT dynamics in controlling mouse embryonic stem cell (ESC) fates, we developed ESC lines and experimental pipelines for the simultaneous long-term manipulation and quantification of ERK or AKT dynamics and cell fates. We show that ERK activity duration or amplitude or the type of ERK dynamics (e.g., transient, sustained, or oscillatory) alone does not influence exit from pluripotency, but the sum of activity over time does. Interestingly, cells retain memory of previous ERK pulses, with duration of memory retention dependent on duration of previous pulse length. FGF receptor/AKT dynamics counteract ERK-induced pluripotency exit. These findings improve our understanding of how cells integrate dynamics from multiple signaling pathways and translate them into cell fate cues.

摘要

ERK 和 AKT 信号通路控制多能干细胞的自我更新与分化。即使在响应相同刺激时,单个多能细胞之间 ERK 通路活性的时间(即动态)也存在异质性。为了分析 ERK 和 AKT 动力学在控制小鼠胚胎干细胞 (ESC) 命运中的潜在功能,我们开发了 ESC 系和实验管道,用于同时长期操纵和量化 ERK 或 AKT 动力学和细胞命运。我们表明,ERK 活性持续时间或幅度,或 ERK 动力学的类型(例如,瞬时、持续或振荡)本身并不影响多能性的退出,但随时间推移的活动总和会影响多能性的退出。有趣的是,细胞保留了对先前 ERK 脉冲的记忆,记忆保留的持续时间取决于先前脉冲长度的持续时间。FGFR/AKT 动力学可拮抗 ERK 诱导的多能性退出。这些发现提高了我们对细胞如何整合来自多个信号通路的动力学并将其转化为细胞命运线索的理解。

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