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解析轴突转录图谱:来自诱导多能干细胞衍生的皮质神经元的见解及其对运动神经元变性的影响。

Unravelling axonal transcriptional landscapes: insights from induced pluripotent stem cell-derived cortical neurons and implications for motor neuron degeneration.

作者信息

Xu Jishu, Hörner Michaela, Nagel Maike, Perhat Perwin, Korneck Milena, Noß Marvin, Hauser Stefan, Schoels Ludger, Admard Jakob, Casadei Nicolas, Schuele Rebecca

机构信息

Eberhard Karls University Tübingen Hertie Institute for Clinical Brain Research, Tübingen, Baden-Württemberg, Germany.

Institute of Medical Genetics and Applied Genomics, University of Tübingen, Tübingen, Baden-Württemberg, Germany.

出版信息

Open Biol. 2025 Jun;15(6):250101. doi: 10.1098/rsob.250101. Epub 2025 Jun 11.

DOI:10.1098/rsob.250101
PMID:40495808
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12152748/
Abstract

Neuronal function and pathology are deeply influenced by the distinct molecular profiles of the axon and soma. Traditional studies have often overlooked these differences due to the technical challenges of compartment-specific analysis. In this study, we employ a robust RNA-sequencing approach, using microfluidic devices, to generate high-quality axonal transcriptomes from induced pluripotent stem cells-derived cortical neurons (CNs). We achieve high specificity of axonal fractions, ensuring sample purity without contamination. Comparative analysis revealed a unique and specific transcriptional landscape in axonal compartments, characterized by diverse transcript types, including protein-coding mRNAs, RNAs encoding ribosomal proteins, mitochondrial-encoded RNAs and long non-coding RNAs. Previous works have reported the existence of transcription factors (TFs) in the axon. Here, we detect a set of TFs specific to the axon and indicative of their active participation in transcriptional regulation. To investigate transcripts and pathways essential for central motor neuron (MN) degeneration and maintenance we analysed kinesin family member 1C ()knockout ) CNs, modelling hereditary spastic paraplegia, a disorder associated with prominent length-dependent degeneration of central MN axons. We found that several key factors crucial for survival and health were absent in axons, highlighting a possible role of these also in other neurodegenerative diseases. Taken together, this study underscores the utility of microfluidic devices in studying compartment-specific transcriptomics in human neuronal models and reveals complex molecular dynamics of axonal biology. The impact of on the axonal transcriptome not only deepens our understanding of MN diseases but also presents a promising avenue for exploration of compartment-specific disease mechanisms.

摘要

轴突和胞体独特的分子特征对神经元功能和病理有着深远影响。由于进行特定区域分析存在技术挑战,传统研究常常忽视了这些差异。在本研究中,我们采用一种强大的RNA测序方法,利用微流控装置,从诱导多能干细胞衍生的皮质神经元(CNs)中生成高质量的轴突转录组。我们实现了轴突组分的高特异性,确保样本纯度且无 contamination。比较分析揭示了轴突区域独特且特异的转录图谱,其特征在于多种转录本类型,包括蛋白质编码mRNA、编码核糖体蛋白的RNA、线粒体编码的RNA和长链非编码RNA。先前的研究报道了轴突中存在转录因子(TFs)。在这里,我们检测到一组轴突特异的TFs,表明它们积极参与转录调控。为了研究对中枢运动神经元(MN)退化和维持至关重要的转录本和信号通路,我们分析了驱动蛋白家族成员1C()基因敲除)的CNs,建立遗传性痉挛性截瘫模型,这是一种与中枢MN轴突明显的长度依赖性退化相关的疾病。我们发现轴突中缺少几种对存活和健康至关重要的关键因子,这突出了它们在其他神经退行性疾病中也可能发挥的作用。综上所述,本研究强调了微流控装置在研究人类神经元模型中特定区域转录组学方面的实用性,并揭示了轴突生物学复杂的分子动力学。对轴突转录组的影响不仅加深了我们对MN疾病的理解,也为探索特定区域疾病机制提供了一个有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1593/12152748/27f7dfa89362/rsob.250101.f004.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1593/12152748/2efd732e8210/rsob.250101.fg001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1593/12152748/53b0f5475441/rsob.250101.f001.jpg
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