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GABA(A)R/GlyRa2 拮抗剂 picrotoxin 激活大鼠海马神经元培养物模型中核糖体蛋白基因下调。

Downregulation of Ribosomal Protein Genes Is Revealed in a Model of Rat Hippocampal Neuronal Culture Activation with GABA(A)R/GlyRa2 Antagonist Picrotoxin.

机构信息

Institute of Higher Nervous Activity and Neurophysiology, The Russian Academy of Sciences, 117485 Moscow, Russia.

Engelhardt Institute of Molecular Biology, The Russian Academy of Sciences, 119991 Moscow, Russia.

出版信息

Cells. 2024 Feb 23;13(5):383. doi: 10.3390/cells13050383.

Abstract

Long-read transcriptome sequencing provides us with a convenient tool for the thorough study of biological processes such as neuronal plasticity. Here, we aimed to perform transcriptional profiling of rat hippocampal primary neuron cultures after stimulation with picrotoxin (PTX) to further understand molecular mechanisms of neuronal activation. To overcome the limitations of short-read RNA-Seq approaches, we performed an Oxford Nanopore Technologies MinION-based long-read sequencing and transcriptome assembly of rat primary hippocampal culture mRNA at three time points after the PTX activation. We used a specific approach to exclude uncapped mRNAs during sample preparation. Overall, we found 23,652 novel transcripts in comparison to reference annotations, out of which ~6000 were entirely novel and mostly transposon-derived loci. Analysis of differentially expressed genes (DEG) showed that 3046 genes were differentially expressed, of which 2037 were upregulated and 1009 were downregulated at 30 min after the PTX application, with only 446 and 13 genes differentially expressed at 1 h and 5 h time points, respectively. Most notably, multiple genes encoding ribosomal proteins, with a high basal expression level, were downregulated after 30 min incubation with PTX; we suggest that this indicates redistribution of transcriptional resources towards activity-induced genes. Novel loci and isoforms observed in this study may help us further understand the functional mRNA repertoire in neuronal plasticity processes. Together with other NGS techniques, differential gene expression analysis of sequencing data obtained using MinION platform might provide a simple method to optimize further study of neuronal plasticity.

摘要

长读转录组测序为我们提供了一种方便的工具,可用于深入研究神经元可塑性等生物过程。在这里,我们旨在对用苦毒素(PTX)刺激后的大鼠海马原代神经元培养物进行转录谱分析,以进一步了解神经元激活的分子机制。为了克服短读 RNA-Seq 方法的局限性,我们使用牛津纳米孔技术 MinION 对大鼠海马原代培养物 mRNA 在 PTX 激活后三个时间点进行了长读测序和转录组组装。我们使用了一种特定的方法在样品制备过程中排除无帽的 mRNAs。总的来说,与参考注释相比,我们发现了 23652 个新的转录本,其中约 6000 个是全新的,主要来源于转座子衍生的基因座。差异表达基因(DEG)分析显示,有 3046 个基因表达差异,其中 2037 个在 PTX 应用后 30 分钟上调,1009 个下调,而在 1 小时和 5 小时时分别只有 446 和 13 个基因表达差异。值得注意的是,多个编码核糖体蛋白的基因在与 PTX 孵育 30 分钟后表达下调;我们认为这表明转录资源重新分配到活性诱导基因。本研究中观察到的新基因座和异构体可能有助于我们进一步了解神经元可塑性过程中的功能性 mRNA 谱。与其他 NGS 技术相结合,使用 MinION 平台获得的测序数据的差异基因表达分析可能为优化神经元可塑性的进一步研究提供一种简单的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5b0/10930765/c28892ceb9df/cells-13-00383-g001.jpg

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