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持续的 JAK 激活和 STAT1 去磷酸化延迟导致中枢神经系统神经元在干扰素-γ刺激下呈现独特的信号转导特征。

Extended JAK activation and delayed STAT1 dephosphorylation contribute to the distinct signaling profile of CNS neurons exposed to interferon-gamma.

机构信息

Department of Biology, Arcadia University, 450 South Easton Road, Glenside, PA 19038, USA.

出版信息

J Neuroimmunol. 2012 Oct 15;251(1-2):33-8. doi: 10.1016/j.jneuroim.2012.06.006. Epub 2012 Jul 4.

Abstract

Although interferon-gamma (IFN-γ) plays a critical role in the noncytolytic elimination of many neurotropic viral infections, the signaling response to this cytokine has not been extensively characterized in primary CNS neurons. We previously demonstrated that the IFN-γ response at the signaling and gene expression levels is temporally extended in primary mouse hippocampal neurons, as compared to the transient response of primary mouse embryonic fibroblasts (MEF). We hypothesize that the protracted kinetics of STAT1 phosphorylation in IFN-γ-treated neurons are due to extended receptor activation and/or delayed STAT1 dephosphorylation in the nucleus. Here, we show that in response to IFN-γ, the Janus kinases (JAK1/JAK2) associated with the neuronal IFN-γ receptor complex remain active for an extended period as compared to MEF. Experimental inactivation of JAK1/JAK2 in neurons after IFN-γ treatment did not reverse the extended STAT1 phosphorylation phenotype. These results suggest that the extended kinetics of neuronal IFN-γ signaling are a product of distinct negative feedback mechanisms operating at both the receptor and within the nucleus.

摘要

虽然干扰素-γ (IFN-γ) 在许多神经嗜性病毒感染的非细胞溶解消除中起着关键作用,但在原代中枢神经系统神经元中,其信号转导反应尚未得到广泛描述。我们之前的研究表明,与原代小鼠胚胎成纤维细胞(MEF)的短暂反应相比,原代小鼠海马神经元中 IFN-γ 对信号转导和基因表达水平的反应在时间上是延长的。我们假设 IFN-γ 处理神经元中 STAT1 磷酸化的延长动力学是由于受体激活延长和/或核内 STAT1 去磷酸化延迟。在这里,我们表明,与 MEF 相比,在 IFN-γ 作用下,与神经元 IFN-γ 受体复合物相关的 Janus 激酶(JAK1/JAK2)在延长的时间内保持活跃。IFN-γ 处理后神经元中 JAK1/JAK2 的实验性失活并不能逆转延长的 STAT1 磷酸化表型。这些结果表明,神经元 IFN-γ 信号转导的延长动力学是在受体和核内均作用的独特负反馈机制的产物。

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