Dynamic mRNA Stability Buffer Transcriptional Activation During Neuronal Differentiation and Is Regulated by SAMD4A.

IF 4.5 2区 生物学 Q2 CELL BIOLOGY
Yuan Zhou, Sherif Rashad, Daisuke Ando, Yuki Kobayashi, Teiji Tominaga, Kuniyasu Niizuma
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引用次数: 0

Abstract

Neurons are exceptionally sensitive to oxidative stress, which is the basis for many neurodegenerative disease pathophysiologies. The posttranscriptional basis for neuronal differentiation and behavior is not well characterized. The steady-state levels of mRNA are outcomes of an interplay between RNA transcription and decay. However, the correlation between mRNA transcription, translation, and stability remains elusive. We utilized a SH-SY5Y-based neural differentiation model that is widely used to study neurodegenerative diseases. After neuronal differentiation, we observed enhanced sensitivity of mature neurons to mitochondrial stresses and ferroptosis induction. We employed a newly developed simplified mRNA stability profiling technique to explore the role of mRNA stability in SH-SY5Y neuronal differentiation model. Transcriptome-wide mRNA stability analysis revealed neural-specific RNA stability kinetics. Our analysis revealed that mRNA stability could either exert the buffering effect on gene products or change in the same direction as transcription. Importantly, we observed that changes in mRNA stability corrected over or under transcription of mRNAs to maintain mRNA translation dynamics. Furthermore, we conducted integrative analysis of our mRNA stability data set, and a published CRISPR-i screen focused on neuronal oxidative stress responses. Our analysis unveiled novel neuronal stress response genes that were not evident at the transcriptional or translational levels. SEPHS2 emerged as an important neuronal stress regulator based on this integrative analysis. Motif analysis unveiled SAMD4A as a major regulator of the dynamic changes in mRNA stability observed during differentiation. Knockdown of SAMD4A impaired neuronal differentiation and influenced the response to oxidative stress. Mechanistically, SAMD4A was found to alter the stability of several mRNAs. The novel insights into the interplay between mRNA stability and cellular behaviors provide a foundation for understanding neurodevelopmental processes and neurodegenerative disorders and highlight dynamic mRNA stability as an important layer of gene expression.

动态 mRNA 稳定性缓冲神经元分化过程中的转录激活,并受 SAMD4A 的调控。
神经元对氧化应激异常敏感,这是许多神经退行性疾病病理生理的基础。神经元分化和行为的转录后基础尚不十分明确。mRNA 的稳态水平是 RNA 转录和衰变相互作用的结果。然而,mRNA转录、翻译和稳定性之间的相关性仍然难以捉摸。我们利用广泛用于研究神经退行性疾病的基于 SH-SY5Y 的神经分化模型。在神经元分化后,我们观察到成熟神经元对线粒体应激和铁突变诱导的敏感性增强。我们采用新开发的简化 mRNA 稳定性分析技术来探讨 mRNA 稳定性在 SH-SY5Y 神经元分化模型中的作用。全转录组 mRNA 稳定性分析揭示了神经特异性 RNA 稳定动力学。我们的分析表明,mRNA稳定性既可以对基因产物产生缓冲作用,也可以与转录同向变化。重要的是,我们观察到 mRNA 稳定性的变化可纠正 mRNA 的过度转录或转录不足,以维持 mRNA 的翻译动态。此外,我们还对 mRNA 稳定性数据集和已发表的 CRISPR-i 筛选进行了综合分析,重点关注神经元氧化应激反应。我们的分析揭示了在转录或翻译水平并不明显的新型神经元应激反应基因。根据这项综合分析,SEPHS2 成为了一个重要的神经元应激调节因子。动因分析揭示了 SAMD4A 是分化过程中观察到的 mRNA 稳定性动态变化的主要调控因子。敲除 SAMD4A 会损害神经元分化并影响对氧化应激的反应。从机理上讲,SAMD4A可改变多种mRNA的稳定性。这些关于 mRNA 稳定性与细胞行为之间相互作用的新见解为理解神经发育过程和神经退行性疾病奠定了基础,并强调了动态 mRNA 稳定性是基因表达的一个重要层面。
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来源期刊
CiteScore
14.70
自引率
0.00%
发文量
256
审稿时长
1 months
期刊介绍: The Journal of Cellular Physiology publishes reports of high biological significance in areas of eukaryotic cell biology and physiology, focusing on those articles that adopt a molecular mechanistic approach to investigate cell structure and function. There is appreciation for the application of cellular, biochemical, molecular and in vivo genetic approaches, as well as the power of genomics, proteomics, bioinformatics and systems biology. In particular, the Journal encourages submission of high-interest papers investigating the genetic and epigenetic regulation of proliferation and phenotype as well as cell fate and lineage commitment by growth factors, cytokines and their cognate receptors and signal transduction pathways that influence the expression, integration and activities of these physiological mediators. Similarly, the Journal encourages submission of manuscripts exploring the regulation of growth and differentiation by cell adhesion molecules in addition to the interplay between these processes and those induced by growth factors and cytokines. Studies on the genes and processes that regulate cell cycle progression and phase transition in eukaryotic cells, and the mechanisms that determine whether cells enter quiescence, proliferate or undergo apoptosis are also welcomed. Submission of papers that address contributions of the extracellular matrix to cellular phenotypes and physiological control as well as regulatory mechanisms governing fertilization, embryogenesis, gametogenesis, cell fate, lineage commitment, differentiation, development and dynamic parameters of cell motility are encouraged. Finally, the investigation of stem cells and changes that differentiate cancer cells from normal cells including studies on the properties and functions of oncogenes and tumor suppressor genes will remain as one of the major interests of the Journal.
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