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ERK 核转位是二聚化非依赖性的,但受磷酸化速率控制。

ERK nuclear translocation is dimerization-independent but controlled by the rate of phosphorylation.

机构信息

Laboratory of Cellular Dynamics, Max Planck Institute for Biophysical Chemistry, 37077 Göttingen, Germany.

出版信息

J Biol Chem. 2010 Jan 29;285(5):3092-102. doi: 10.1074/jbc.M109.064972. Epub 2009 Nov 17.

Abstract

Upon activation, ERKs translocate from the cytoplasm to the nucleus. This process is required for the induction of many cellular responses, yet the molecular mechanisms that regulate ERK nuclear translocation are not fully understood. We have used a mouse embryo fibroblast ERK1-knock-out cell line expressing green fluorescent protein (GFP)-tagged ERK1 to probe the spatio-temporal regulation of ERK1. Real time fluorescence microscopy and fluorescence correlation spectroscopy revealed that ERK1 nuclear accumulation increased upon serum stimulation, but the mobility of the protein in the nucleus and cytoplasm remained unchanged. Dimerization of ERK has been proposed as a requirement for nuclear translocation. However, ERK1-Delta4, the mutant shown consistently to be dimerization-deficient in vitro, accumulated in the nucleus to the same level as wild type (WT), indicating that dimerization of ERK1 is not required for nuclear entry and retention. Consistent with this finding, energy migration Förster resonance energy transfer and fluorescence correlation spectroscopy measurements in living cells did not detect dimerization of GFP-ERK1-WT upon activation. In contrast, the kinetics of nuclear accumulation and phosphorylation of GFP-ERK1-Delta4 were slower than that of GFP-ERK1-WT. These results indicate that the differential shuttling behavior of the mutant is a consequence of delayed phosphorylation of ERK by MEK rather than dimerization. Our data demonstrate for the first time that a delay in cytoplasmic activation of ERK is directly translated into a delay in nuclear translocation.

摘要

ERK 从细胞质易位到细胞核。这个过程是诱导许多细胞反应所必需的,但调节 ERK 核易位的分子机制尚不完全清楚。我们使用表达绿色荧光蛋白 (GFP) 标记的 ERK1 的小鼠胚胎成纤维细胞 ERK1 敲除细胞系来探测 ERK1 的时空调节。实时荧光显微镜和荧光相关光谱揭示,ERK1 的核积累在血清刺激时增加,但蛋白在核和细胞质中的流动性保持不变。ERK 的二聚化已被提议作为核易位的要求。然而,ERK1-Delta4,在体外一致显示出二聚化缺陷的突变体,在细胞核中的积累水平与野生型 (WT) 相同,表明 ERK1 的二聚化不是核进入和保留所必需的。与这一发现一致,活细胞中的能量迁移 Förster 共振能量转移和荧光相关光谱测量未检测到 GFP-ERK1-WT 在激活时的二聚化。相比之下,GFP-ERK1-Delta4 的核积累和磷酸化动力学比 GFP-ERK1-WT 慢。这些结果表明,突变体的不同穿梭行为是 ERK 由 MEK 磷酸化延迟而不是二聚化的结果。我们的数据首次表明,ERK 细胞质激活的延迟直接转化为核易位的延迟。

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