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ERK激活动力学的细胞周期依赖性受PI3K和PAK1信号传导调控。

Cell cycle dependence of ERK activation dynamics is regulated by PI3K and PAK1 signaling.

作者信息

Yoshizawa Ryo, Sako Yasushi

机构信息

Cellular Informatics Laboratory, RIKEN CPR, Wako, Saitama, Japan.

Division of Advanced Bioimaging, National Cancer Center Research Institute, Tokyo, Japan.

出版信息

Sci Rep. 2025 Jul 29;15(1):27688. doi: 10.1038/s41598-025-13686-w.

Abstract

Growth factor-induced RTK/RAS/MAPK signaling is crucial for cell cycle progression, including G1 to S and G2 to M phase transitions. However, the regulatory mechanism of MAPK (ERK) in the S-G2M phase remains unclear. In this study, we analyzed the nuclear translocation dynamics of fluorescently labeled ERK induced by EGF during cell cycle progression and simultaneously analyzed the membrane translocation dynamics of GRB2 and PI3K. The transient ERK dynamics in a population of cells with a high frequency of G0/G1 cells became sustained with the increase in S-G2M cells. The sustained localization of PI3K, rather than GRB2, showed a stronger correlation with nuclear ERK localization. PI3K-mediated PAK1 activation was essential for ERK translocation. EGFR/PI3K clusters frequently formed on the plasma membrane and were rapidly endocytosed in the high G0/G1 cell population, resulting in transient PI3K localization, whereas dispersed PI3K predominated in the high S-G2M cells, resulting in sustained PI3K localization. On the other hand, PAK1 remained on the plasma membrane. Our results suggest that the sustained spatial colocalization of PI3K and PAK1, particularly in the S-G2M phase, prolonged the PAK1 signaling for ERK activation. Sustained ERK activation was also correlated with a shorter time to cell division.

摘要

生长因子诱导的RTK/RAS/MAPK信号传导对于细胞周期进程至关重要,包括从G1期到S期以及从G2期到M期的转变。然而,MAPK(ERK)在S-G2M期的调控机制仍不清楚。在本研究中,我们分析了细胞周期进程中表皮生长因子(EGF)诱导的荧光标记ERK的核转移动力学,并同时分析了GRB2和PI3K的膜转移动力学。随着S-G2M期细胞数量的增加,具有高频率G0/G1期细胞群体中的瞬时ERK动力学变得持续。PI3K而非GRB2的持续定位与核ERK定位显示出更强的相关性。PI3K介导的PAK1激活对于ERK转位至关重要。EGFR/PI3K簇经常在质膜上形成,并在高G0/G1期细胞群体中迅速被内吞,导致PI3K瞬时定位,而分散的PI3K在高S-G2M期细胞中占主导,导致PI3K持续定位。另一方面,PAK1保留在质膜上。我们的结果表明,PI3K和PAK1的持续空间共定位,特别是在S-G2M期,延长了PAK1介导的ERK激活信号。持续的ERK激活也与更短的细胞分裂时间相关。

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