VPS13D affects epileptic seizures by regulating mitochondrial fission and autophagy in epileptic rats

IF 6.9 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Genes & Diseases Pub Date : 2024-03-19 DOI:10.1016/j.gendis.2024.101266
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Abstract

Abnormal mitochondrial dynamics can lead to seizures, and improved mitochondrial dynamics can alleviate seizures. Vacuolar protein sorting 13D (VPS13D) is closely associated with regulating mitochondrial homeostasis and autophagy. However, further investigation is required to determine whether VPS13D affects seizures by influencing mitochondrial dynamics and autophagy. We aimed to investigate the influence of VPS13D on behavior in a rat model of acute epileptic seizures. Hence, we established an acute epileptic seizure rat model and employed the CRISPR/CAS9 technology to construct a lentivirus to silence the Vps13d gene. Furthermore, we used the HT22 mouse hippocampal neuron cell line to establish a stable strain with suppressed expression of Vps13d in vitro. Then, we performed quantitative proteomic and bioinformatics analyses to confirm the mechanism by which VPS13D influences mitochondrial dynamics and autophagy, both in vitro and in vivo using the experimental acute epileptic seizure model. We found that knockdown of Vps13d resulted in reduced seizure latency and increased seizure frequency in the experimental rats. Immunofluorescence staining and western blot analysis revealed a significant increase in mitochondrial dynamin-related protein 1 expression following Vps13d knockdown. Moreover, we observed a significant reduction in LC3II protein expression levels and the LC3II/LC3I ratio (indicators for autophagy) accompanied by a significant increase in P62 expression (an autophagy adaptor protein). The proteomic analysis confirmed the up-regulation of P62 protein expression. Therefore, we propose that VPS13D plays a role in modulating seizures by influencing mitochondrial dynamics and autophagy.

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VPS13D 通过调节线粒体分裂和自噬影响癫痫大鼠的癫痫发作
线粒体动力学异常可导致癫痫发作,而改善线粒体动力学可减轻癫痫发作。空泡蛋白分选 13D(VPS13D)与调节线粒体平衡和自噬密切相关。然而,要确定VPS13D是否会通过影响线粒体动力学和自噬来影响癫痫发作,还需要进一步的研究。我们旨在研究 VPS13D 对急性癫痫发作大鼠模型行为的影响。因此,我们建立了一个急性癫痫发作大鼠模型,并采用 CRISPR/CAS9 技术构建了一种慢病毒来沉默 Vps13d 基因。此外,我们还利用 HT22 小鼠海马神经元细胞系建立了体外抑制 Vps13d 表达的稳定株系。然后,我们进行了定量蛋白质组学和生物信息学分析,利用实验性急性癫痫发作模型证实了 VPS13D 在体外和体内影响线粒体动力学和自噬的机制。我们发现,敲除 Vps13d 会导致实验鼠癫痫发作潜伏期缩短、发作频率增加。免疫荧光染色和 Western 印迹分析表明,敲除 Vps13d 后线粒体动态相关蛋白 1 的表达显著增加。此外,我们还观察到 LC3II 蛋白表达水平和 LC3II/LC3I 比值(自噬指标)显著降低,同时 P62(自噬适配蛋白)表达显著增加。蛋白质组分析证实了 P62 蛋白表达的上调。因此,我们认为 VPS13D 通过影响线粒体动力学和自噬在调节癫痫发作中发挥作用。
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来源期刊
Genes & Diseases
Genes & Diseases Multiple-
CiteScore
7.30
自引率
0.00%
发文量
347
审稿时长
49 days
期刊介绍: Genes & Diseases is an international journal for molecular and translational medicine. The journal primarily focuses on publishing investigations on the molecular bases and experimental therapeutics of human diseases. Publication formats include full length research article, review article, short communication, correspondence, perspectives, commentary, views on news, and research watch. Aims and Scopes Genes & Diseases publishes rigorously peer-reviewed and high quality original articles and authoritative reviews that focus on the molecular bases of human diseases. Emphasis will be placed on hypothesis-driven, mechanistic studies relevant to pathogenesis and/or experimental therapeutics of human diseases. The journal has worldwide authorship, and a broad scope in basic and translational biomedical research of molecular biology, molecular genetics, and cell biology, including but not limited to cell proliferation and apoptosis, signal transduction, stem cell biology, developmental biology, gene regulation and epigenetics, cancer biology, immunity and infection, neuroscience, disease-specific animal models, gene and cell-based therapies, and regenerative medicine.
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