Functional Consequences of Shifting Transcript Boundaries in Glucose Starvation.

IF 3.2 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular and Cellular Biology Pub Date : 2023-01-01 Epub Date: 2023-11-17 DOI:10.1080/10985549.2023.2270406
Lan Anh Catherine Nguyen, Masaru Mori, Yuji Yasuda, Josephine Galipon
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Abstract

Glucose is a major source of carbon and essential for the survival of many organisms, ranging from yeast to human. A sudden 60-fold reduction of glucose in exponentially growing fission yeast induces transcriptome-wide changes in gene expression. This regulation is multilayered, and the boundaries of transcripts are known to vary, with functional consequences at the protein level. By combining direct RNA sequencing with 5'-CAGE and short-read sequencing, we accurately defined the 5'- and 3'-ends of transcripts that are both poly(A) tailed and 5'-capped in glucose starvation, followed by proteome analysis. Our results confirm previous experimentally validated loci with alternative isoforms and reveal several transcriptome-wide patterns. First, we show that sense-antisense gene pairs are more strongly anticorrelated when a time lag is taken into account. Second, we show that the glucose starvation response initially elicits a shortening of 3'-UTRs and poly(A) tails, followed by a shortening of the 5'-UTRs at later time points. These result in domain gains and losses in proteins involved in the stress response. Finally, the relatively poor overlap both between differentially expressed genes (DEGs), differential transcript usage events (DTUs), and differentially detected proteins (DDPs) highlight the need for further study on post-transcriptional regulation mechanisms in glucose starvation.

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葡萄糖饥饿中转录边界转移的功能后果。
葡萄糖是碳的主要来源,对从酵母到人类等许多生物体的生存至关重要。在指数生长的裂变酵母中,葡萄糖突然减少60倍,诱导转录组范围内的基因表达变化。这种调节是多层次的,已知转录物的边界是不同的,在蛋白质水平上具有功能性后果。通过将直接RNA测序与5'-CCAGE和短读测序相结合,我们准确地定义了在葡萄糖饥饿中既是多(A)尾又是5'-帽的转录物的5'-和3'-端,然后进行了蛋白质组分析。我们的结果证实了先前实验验证的具有替代亚型的基因座,并揭示了几个转录组范围的模式。首先,我们发现,当考虑到时间滞后时,有义反义基因对的反相关性更强。其次,我们发现葡萄糖饥饿反应最初导致3'-UTR和poly(a)尾的缩短,随后在随后的时间点缩短5'-UTR。这些导致参与应激反应的蛋白质的结构域获得和损失。最后,差异表达基因(DEGs)、差异转录物使用事件(DTU)和差异检测蛋白(DDPs)之间相对较差的重叠突出了对葡萄糖饥饿中转录后调控机制的进一步研究的必要性。
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来源期刊
Molecular and Cellular Biology
Molecular and Cellular Biology 生物-生化与分子生物学
CiteScore
9.80
自引率
1.90%
发文量
120
审稿时长
1 months
期刊介绍: Molecular and Cellular Biology (MCB) showcases significant discoveries in cellular morphology and function, genome organization, regulation of genetic expression, morphogenesis, and somatic cell genetics. The journal also examines viral systems, publishing papers that emphasize their impact on the cell.
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