翻译调控实体的解码揭示了细胞衰老中异质的翻译缺陷模式

IF 8 1区 医学 Q1 CELL BIOLOGY
Aging Cell Pub Date : 2023-08-07 DOI:10.1111/acel.13893
Angelos Papaspyropoulos, Orsalia Hazapis, Abdullah Altulea, Aikaterini Polyzou, Panayotis Verginis, Konstantinos Evangelou, Maria Fousteri, Argyris Papantonis, Marco Demaria, Vassilis Gorgoulis
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引用次数: 2

摘要

细胞衰老是一种普遍不可逆的增殖屏障,伴随着大分子损伤和代谢重新布线。基于初始刺激,已经确定了几种衰老类型,如复制性衰老(RS)、应激诱导衰老(SIS)和癌基因诱导衰老(OIS)。这些衰老亚型是异质的,经常发展为亚群特异性表型。蛋白质合成减少被认为是衰老的标志,但这种特征是否与各种衰老亚型有关,以及是否涉及不同的分子机制,在很大程度上仍然未知。在这里,我们分析了大量已发表的或实验产生的RNA-seq和RNA-seq数据集,以确定主要的翻译调节实体,如核糖体停滞、uorf / dorf和IRES元件的存在是否可能不同地导致衰老亚群的翻译缺陷。我们发现,翻译调节机制可能与RS没有直接关系,但uorf在SIS中显著富集。有趣的是,核糖体延迟、uORF/dORF模式和IRES元件构成了OIS的主要机制,与Notch通路激活密切相关。我们的研究首次提供了证据,证明主要的翻译失调机制/模式发生在细胞衰老过程中,但根据刺激类型的不同,其速率不同。这些机制积累的程度与翻译缺陷水平直接相关。我们的深入分析有助于阐明衰老亚群之间翻译机制的关键和迄今未知的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Decoding of translation-regulating entities reveals heterogeneous translation deficiency patterns in cellular senescence

Decoding of translation-regulating entities reveals heterogeneous translation deficiency patterns in cellular senescence

Cellular senescence constitutes a generally irreversible proliferation barrier, accompanied by macromolecular damage and metabolic rewiring. Several senescence types have been identified based on the initiating stimulus, such as replicative (RS), stress-induced (SIS) and oncogene-induced senescence (OIS). These senescence subtypes are heterogeneous and often develop subset-specific phenotypes. Reduced protein synthesis is considered a senescence hallmark, but whether this trait pertains to various senescence subtypes and if distinct molecular mechanisms are involved remain largely unknown. Here, we analyze large published or experimentally produced RNA-seq and Ribo-seq datasets to determine whether major translation-regulating entities such as ribosome stalling, the presence of uORFs/dORFs and IRES elements may differentially contribute to translation deficiency in senescence subsets. We show that translation-regulating mechanisms may not be directly relevant to RS, however uORFs are significantly enriched in SIS. Interestingly, ribosome stalling, uORF/dORF patterns and IRES elements comprise predominant mechanisms upon OIS, strongly correlating with Notch pathway activation. Our study provides for the first time evidence that major translation dysregulation mechanisms/patterns occur during cellular senescence, but at different rates depending on the stimulus type. The degree at which those mechanisms accumulate directly correlates with translation deficiency levels. Our thorough analysis contributes to elucidating crucial and so far unknown differences in the translation machinery between senescence subsets.

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来源期刊
Aging Cell
Aging Cell Biochemistry, Genetics and Molecular Biology-Cell Biology
自引率
2.60%
发文量
212
期刊介绍: Aging Cell is an Open Access journal that focuses on the core aspects of the biology of aging, encompassing the entire spectrum of geroscience. The journal's content is dedicated to publishing research that uncovers the mechanisms behind the aging process and explores the connections between aging and various age-related diseases. This journal aims to provide a comprehensive understanding of the biological underpinnings of aging and its implications for human health. The journal is widely recognized and its content is abstracted and indexed by numerous databases and services, which facilitates its accessibility and impact in the scientific community. These include: Academic Search (EBSCO Publishing) Academic Search Alumni Edition (EBSCO Publishing) Academic Search Premier (EBSCO Publishing) Biological Science Database (ProQuest) CAS: Chemical Abstracts Service (ACS) Embase (Elsevier) InfoTrac (GALE Cengage) Ingenta Select ISI Alerting Services Journal Citation Reports/Science Edition (Clarivate Analytics) MEDLINE/PubMed (NLM) Natural Science Collection (ProQuest) PubMed Dietary Supplement Subset (NLM) Science Citation Index Expanded (Clarivate Analytics) SciTech Premium Collection (ProQuest) Web of Science (Clarivate Analytics) Being indexed in these databases ensures that the research published in Aging Cell is discoverable by researchers, clinicians, and other professionals interested in the field of aging and its associated health issues. This broad coverage helps to disseminate the journal's findings and contributes to the advancement of knowledge in geroscience.
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