Haemmerle Matthew W, Batmanov Kirill, Sen Sabyasachi, Varney Matthew J, Utecht Alexander T, Good Austin L, Scota Andrea V, Tersey Sarah A, Ghanem Louis R, Philpott Caroline C, Stoffers Doris A
Institute for Diabetes, Obesity, and Metabolism and the Department of Medicine, Perelman School of Medicine at the University of Pennsylvania, Philadelphia, PA, USA.
Department of Medicine, The University of Chicago, Chicago, IL, USA.
Mol Metab. 2025 May 30;98:102175. doi: 10.1016/j.molmet.2025.102175.
OBJECTIVES: Tight control of β cell mRNA translation plays a central role in regulating glucose homoeostasis and β cell health. RNA binding proteins (RBPs) impact translational dynamics and function in networks to achieve their regulatory outcomes, yet an understanding of the RBPs and nature of their interplay in directing β cell translation remain limited. We recently established that the RBP PCBP2 is a key post-transcriptional regulator of β cell function. Here, we investigate the relationship of PCBP2 and its sister-isoform PCBP1 in shaping β cell homeostasis and translation. METHODS: Mice with β cell-specific deletion of Pcbp1 and combined Pcbp1/2 were generated to examine the influence of these factors on blood glucose and β cell homeostasis. Gene expression was interrogated with single-cell RNA sequencing, qRT-PCR, and western blot. RNA-protein interactions were measured using RNA immunoprecipitation. Gene depletion studies were performed using CRISPR-Cas9 or shRNAs. Puromycin labeling was used to monitor global translation. RESULTS: Pcbp1 deletion preserved glucose homeostasis whereas Pcbp co-deletion resulted in severe diabetes due to compromised β cell viability. Single-cell RNA sequencing of Pcbp co-deficient β cells revealed downregulation of a network of core translation initiation factors and ribosomal mRNAs. Motif enrichment analysis, mRNA-protein interaction, and mRNA stability studies identified that the PCBPs co-impact these mRNAs in part through binding and stabilization. Accordingly, protein translational monitoring demonstrated a requirement for the PCBPs in sustaining global mRNA translation in β cells. CONCLUSIONS: Our findings demonstrate a requirement for the PCBPs in sustaining the global rates of mRNA translation critical for β cell control of glucose homeostasis.
目的:严格控制β细胞mRNA翻译在调节葡萄糖稳态和β细胞健康方面发挥着核心作用。RNA结合蛋白(RBPs)影响翻译动力学并在网络中发挥作用以实现其调节结果,但对指导β细胞翻译的RBPs及其相互作用的本质的了解仍然有限。我们最近确定RBP PCBP2是β细胞功能的关键转录后调节因子。在此,我们研究PCBP2及其姐妹异构体PCBP1在塑造β细胞稳态和翻译中的关系。 方法:构建β细胞特异性缺失Pcbp1以及联合缺失Pcbp1/2的小鼠,以研究这些因素对血糖和β细胞稳态的影响。通过单细胞RNA测序、qRT-PCR和蛋白质免疫印迹法检测基因表达。使用RNA免疫沉淀法测量RNA-蛋白质相互作用。使用CRISPR-Cas9或shRNAs进行基因缺失研究。使用嘌呤霉素标记监测整体翻译情况。 结果:Pcbp1缺失可维持葡萄糖稳态,而Pcbp联合缺失则由于β细胞活力受损导致严重糖尿病。对Pcbp共同缺陷的β细胞进行单细胞RNA测序,发现一组核心翻译起始因子和核糖体mRNA网络下调。基序富集分析、mRNA-蛋白质相互作用及mRNA稳定性研究表明,PCBP共同影响这些mRNA,部分是通过结合和稳定作用。相应地,蛋白质翻译监测表明PCBP对维持β细胞中的整体mRNA翻译是必需的。 结论:我们的研究结果表明,PCBP对于维持对β细胞控制葡萄糖稳态至关重要的整体mRNA翻译速率是必需的。
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