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神经元分化通过小窝蛋白-1决定雌激素依赖性存活和ERK1/2动力学。

Neuronal differentiation dictates estrogen-dependent survival and ERK1/2 kinetic by means of caveolin-1.

作者信息

Volpicelli Floriana, Caiazzo Massimiliano, Moncharmont Bruno, di Porzio Umberto, Colucci-D'Amato Luca

机构信息

Department of Pharmacy, University of Naples "Federico II", Naples, Italy; Institute of Genetics and Biophysics "Adriano Buzzati Traverso", CNR, Naples, Italy.

Institute of Genetics and Biophysics "Adriano Buzzati Traverso", CNR, Naples, Italy; Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

出版信息

PLoS One. 2014 Oct 28;9(10):e109671. doi: 10.1371/journal.pone.0109671. eCollection 2014.

Abstract

Estrogens promote a plethora of effects in the CNS that profoundly affect both its development and mature functions and are able to influence proliferation, differentiation, survival and neurotransmission. The biological effects of estrogens are cell-context specific and also depend on differentiation and/or proliferation status in a given cell type. Furthermore, estrogens activate ERK1/2 in a variety of cellular types. Here, we investigated whether ERK1/2 activation might be influenced by estrogens stimulation according to the differentiation status and the molecular mechanisms underling this phenomenon. ERK1/2 exert an opposing role on survival and death, as well as on proliferation and differentiation depending on different kinetics of phosphorylation. Hence we report that mesencephalic primary cultures and the immortalized cell line mes-c-myc A1 express estrogen receptor α and activate ERK1/2 upon E2 stimulation. Interestingly, following the arrest of proliferation and the onset of differentiation, we observe a change in the kinetic of ERKs phosphorylation induced by estrogens stimulation. Moreover, caveolin-1, a main constituent of caveolae, endogenously expressed and co-localized with ER-α on plasma membrane, is consistently up-regulated following differentiation and cell growth arrest. In addition, we demonstrate that siRNA-induced caveolin-1 down-regulation or disruption by means of ß-cyclodextrin treatment changes ERK1/2 phosphorylation in response to estrogens stimulation. Finally, caveolin-1 down-regulation abolishes estrogens-dependent survival of neurons. Thus, caveolin-1 appears to be an important player in mediating, at least, some of the non-genomic action of estrogens in neurons, in particular ERK1/2 kinetics of activation and survival.

摘要

雌激素在中枢神经系统中发挥着众多作用,深刻影响其发育和成熟功能,并能够影响细胞增殖、分化、存活及神经传递。雌激素的生物学效应具有细胞背景特异性,还取决于特定细胞类型中的分化和/或增殖状态。此外,雌激素可在多种细胞类型中激活细胞外信号调节激酶1/2(ERK1/2)。在此,我们研究了ERK1/2的激活是否会根据分化状态受到雌激素刺激的影响以及这一现象背后的分子机制。ERK1/2根据不同的磷酸化动力学对细胞存活与死亡以及增殖和分化发挥相反作用。因此,我们报告中脑原代培养物和永生化细胞系中脑c-myc A1表达雌激素受体α,并在雌二醇(E2)刺激下激活ERK1/2。有趣的是,在增殖停止和分化开始后,我们观察到雌激素刺激诱导的ERK磷酸化动力学发生了变化。此外,小窝蛋白-1作为小窝的主要成分,在细胞膜上内源性表达并与雌激素受体α共定位,在分化和细胞生长停滞后持续上调。此外,我们证明通过小干扰RNA(siRNA)诱导的小窝蛋白-1下调或通过β-环糊精处理破坏小窝,会改变雌激素刺激下的ERK1/2磷酸化。最后,小窝蛋白-1下调消除了雌激素依赖的神经元存活。因此,小窝蛋白-1似乎是介导雌激素在神经元中至少部分非基因组作用的重要因素,特别是ERK1/2激活动力学和细胞存活。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b26c/4211669/45035ae5a356/pone.0109671.g001.jpg

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