揭示NeuroD2在缺血病理生理中的作用:洞察与AKT存活激酶相关的神经保护机制。

IF 3.3 4区 医学 Q2 NEUROSCIENCES
Busenur Bolat, Cigdem Bayraktaroglu, Zehra Degirmenci, Ecem Cerah, Mehmet Sali, Edanur Kolcu, Dila Nur Bars, Cemil Aydin, Fatima Abasova, Abdulla Alisoy, Hasan Ege Atali, Mustafa Caglar Beker, Ulkan Celik, Merve Beker
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引用次数: 0

摘要

神经d2 (ND2)是一种神经元特异性转录因子,在神经分化和神经可塑性中起重要作用,但其在神经元损伤中的调控作用尚不清楚。缺血性疾病的有效治疗策略需要广泛的缺血性病理生理学的信号通路和机制的知识。本研究旨在揭示ND2在缺血中的神经保护作用及其与恢复相关的关键信号通路的相互作用。采用体外缺血性脑卒中模型氧糖剥夺(OGD)方法对慢病毒ND2 (LvND2)过表达的神经2a (N2a)细胞进行处理。DNA片段化和细胞存活实验表明ND2在OGD条件下具有神经保护和抗凋亡作用。蛋白质组学分析和相互作用分析表明,LvND2调节细胞信号传导、增殖和细胞粘附相关蛋白的合成,如MAPK3、Mki67和NCAM。此外,ND2表达与磷酸化AKT水平呈正相关。为了研究ND2与PI3K/AKT信号通路的相互作用,在OGD诱导前30分钟用Wortmannin对该通路进行药理学抑制。OGD 8 h再灌注16 h后,进行细胞存活、DNA片段化和Western blot分析。LvND2单独给药可提高细胞存活率,而与Wortmannin联合使用可降低细胞存活率。此外,LvND2单独使用可减少tunel阳性细胞的数量,而与Wortmannin联合使用则不显著。这些发现表明ND2和AKT在PI3K/AKT生存通路中协同作用。ND2可能调节AKT活性,突出其作为通过分子治疗解决缺血病理生理的治疗靶点的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling the Role of NeuroD2 in Ischemic Pathophysiology: Insight into Neuroprotection Mechanisms Associated with AKT Survival Kinase.

NeuroD2 (ND2), a neuron-specific transcription factor, is essential in neural differentiation and neuroplasticity, yet its regulation under neuronal injury is barely uncovered. Effective treatment strategies for ischemic conditions require extensive knowledge of the signaling pathways and mechanisms underlying ischemic pathophysiology. This study aims to uncover the neuroprotective role of ND2 in ischemia and its interactions with critical signaling pathways implicated in recovery. An in vitro ischemic stroke model oxygen-glucose deprivation (OGD) method was applied to neuro-2A (N2a) cells with lentiviral ND2 (LvND2) overexpression. DNA fragmentation and cell survival assays indicated ND2's neuroprotective and anti-apoptotic effects under OGD conditions. Proteomic profiling and interaction analyses showed that LvND2 regulated the synthesis of cellular signaling, proliferation and cell adhesion-related proteins, such as MAPK3, Mki67, and NCAM. Additionally, a positive correlation was observed between ND2 expression and phosphorylated AKT levels. To investigate the interaction between ND2 and the PI3K/AKT signaling pathway, the pathway was pharmacologically inhibited with Wortmannin 30 min before OGD induction. After 8 h of OGD followed by 16 h of reperfusion, cell survival, DNA fragmentation, and Western blot analyses were performed. LvND2 administration alone increased cellular survival, whereas its combination with Wortmannin resulted in decreased cell survival. Additionally, LvND2 alone reduced the number of TUNEL-positive cells, while its combination with Wortmannin remains non-significant. These findings suggest that ND2 and AKT function in a coordinated manner within the PI3K/AKT survival pathway. ND2 may modulate AKT activity, highlighting its potential as a therapeutic target for addressing ischemic pathophysiology through molecular therapies.

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来源期刊
NeuroMolecular Medicine
NeuroMolecular Medicine 医学-神经科学
CiteScore
7.10
自引率
0.00%
发文量
33
审稿时长
>12 weeks
期刊介绍: NeuroMolecular Medicine publishes cutting-edge original research articles and critical reviews on the molecular and biochemical basis of neurological disorders. Studies range from genetic analyses of human populations to animal and cell culture models of neurological disorders. Emerging findings concerning the identification of genetic aberrancies and their pathogenic mechanisms at the molecular and cellular levels will be included. Also covered are experimental analyses of molecular cascades involved in the development and adult plasticity of the nervous system, in neurological dysfunction, and in neuronal degeneration and repair. NeuroMolecular Medicine encompasses basic research in the fields of molecular genetics, signal transduction, plasticity, and cell death. The information published in NEMM will provide a window into the future of molecular medicine for the nervous system.
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