经验依赖的Tip60核胞质转运通过其NLS/NES序列调控神经可塑性基因

IF 2.6 3区 医学 Q3 NEUROSCIENCES Molecular and Cellular Neuroscience Pub Date : 2023-08-18 DOI:10.1016/j.mcn.2023.103888
Ellen M. Armour, Christina M. Thomas, Gabrielle Greco, Akanksha Bhatnagar, Felice Elefant
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引用次数: 0

摘要

神经元中的核质转运(NCT)对于使蛋白质能够进入细胞核并调节可塑性基因以响应环境线索至关重要。这种经验依赖性(ED)神经可塑性是建立记忆形成和认知功能的核心,并可能影响阿尔茨海默病(AD)等神经退行性疾病的严重程度。ED神经可塑性是由组蛋白乙酰化(HA)介导的表观遗传学机制驱动的,该机制调节对神经元刺激的动态活性依赖性基因转录谱。然而,组蛋白乙酰转移酶(HATs)如何在体内大脑中对细胞外线索做出反应,以驱动HA介导的活性依赖性基因控制仍不清楚。我们先前证明,体外对大鼠海马神经元的细胞外刺激触发了Tip60 HAT核导入,并伴随突触基因诱导。在这里,我们使用果蝇大脑的学习和记忆蘑菇体(MB)区域作为一个强大的体内认知模型系统,重点研究Tip60 HAT亚细胞定位和NCT在神经元活动依赖性基因控制中的特异性。我们使用免疫组织化学(IHC)来比较正常条件下和体内通过遗传诱导钾通道激活或暴露于自然阳性ED条件对果蝇大脑神经元刺激的反应下,Tip60 HAT在果蝇大脑中的亚细胞定位。此外,我们发现诱导型和ED条件介导的神经诱导都触发了Tip60核导入,同时诱导了先前鉴定的Tip60靶基因,并且在我们的特征明确的果蝇AD模型中,细胞核和细胞质中的Tip60%水平显著降低。我们在果蝇Tip60蛋白中鉴定的推定核定位信号(NLS)序列和核输出信号(NES)序列的突变表明,两者在功能上都是适当的Tip60亚细胞定位所必需的。我们的结果支持了一种模型,通过该模型,神经元刺激通过其NLS和NES序列触发Tip60 NCT,以促进活性依赖性神经可塑性基因转录的诱导,并且这一过程可能在AD中被破坏。
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Experience-dependent Tip60 nucleocytoplasmic transport is regulated by its NLS/NES sequences for neuroplasticity gene control

Nucleocytoplasmic transport (NCT) in neurons is critical for enabling proteins to enter the nucleus and regulate plasticity genes in response to environmental cues. Such experience-dependent (ED) neural plasticity is central for establishing memory formation and cognitive function and can influence the severity of neurodegenerative disorders like Alzheimer's disease (AD). ED neural plasticity is driven by histone acetylation (HA) mediated epigenetic mechanisms that regulate dynamic activity-dependent gene transcription profiles in response to neuronal stimulation. Yet, how histone acetyltransferases (HATs) respond to extracellular cues in the in vivo brain to drive HA-mediated activity-dependent gene control remains unclear. We previously demonstrated that extracellular stimulation of rat hippocampal neurons in vitro triggers Tip60 HAT nuclear import with concomitant synaptic gene induction. Here, we focus on investigating Tip60 HAT subcellular localization and NCT specifically in neuronal activity-dependent gene control by using the learning and memory mushroom body (MB) region of the Drosophila brain as a powerful in vivo cognitive model system. We used immunohistochemistry (IHC) to compare the subcellular localization of Tip60 HAT in the Drosophila brain under normal conditions and in response to stimulation of fly brain neurons in vivo either by genetically inducing potassium channels activation or by exposure to natural positive ED conditions. Furthermore, we found that both inducible and ED condition-mediated neural induction triggered Tip60 nuclear import with concomitant induction of previously identified Tip60 target genes and that Tip60 levels in both the nucleus and cytoplasm were significantly decreased in our well-characterized Drosophila AD model. Mutagenesis of a putative nuclear localization signal (NLS) sequence and nuclear export signal (NES) sequence that we identified in the Drosophila Tip60 protein revealed that both are functionally required for appropriate Tip60 subcellular localization. Our results support a model by which neuronal stimulation triggers Tip60 NCT via its NLS and NES sequences to promote induction of activity-dependent neuroplasticity gene transcription and that this process may be disrupted in AD.

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来源期刊
CiteScore
5.60
自引率
0.00%
发文量
65
审稿时长
37 days
期刊介绍: Molecular and Cellular Neuroscience publishes original research of high significance covering all aspects of neurosciences indicated by the broadest interpretation of the journal''s title. In particular, the journal focuses on synaptic maintenance, de- and re-organization, neuron-glia communication, and de-/regenerative neurobiology. In addition, studies using animal models of disease with translational prospects and experimental approaches with backward validation of disease signatures from human patients are welcome.
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