PABPN1功能缺失会导致眼咽肌营养不良症的APA移位。

IF 3.3 Q2 GENETICS & HEREDITY
HGG Advances Pub Date : 2024-04-11 Epub Date: 2024-01-11 DOI:10.1016/j.xhgg.2024.100269
Milad Shademan, Hailiang Mei, Baziel van Engelen, Yavuz Ariyurek, Susan Kloet, Vered Raz
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引用次数: 0

摘要

背景:转录本 3-UTR 上的替代多腺苷酸化(APA)对细胞转录本组做出了贡献。APA 受核 RNA 结合蛋白 PABPN1 的抑制。骨骼肌中与衰老相关的 PABPN1 水平降低会导致肌肉萎缩。眼咽肌营养不良症(OPMD)的肌肉无力是由 PABPN1 外显子 1 中短丙氨酸扩增引起的。扩增的 PABPN1 会形成核聚集,这是 OPMD 的特征之一。扩增的 PABPN1 是否会影响 APA 以及如何导致肌肉病理变化,这些问题尚未解决:为了研究这些问题,我们开发了一套程序,包括 RNA 文库制备和简单的管道计算 APA shift 比率,作为 PABPN1 活性的读数。将APA-shift结果与之前发表的PAS利用率和APA-shift结果进行比较,我们验证了这一程序。然后将该程序应用于 OPMD 细胞模型和来自 OPMD 肌肉的 RNA:结果:在小鼠OPMD模型中,APA偏移是全基因组的,主要影响肌肉转录本。在OPMD个体中,肌肉转录本富集了APA-shift。在OPMD细胞模型中,APA偏移并不显著。APA偏移与PABPN1同工酶亚型的表达水平降低有关,而PABPN1扩增型的表达与APA偏移无关:结论:PABPN1 的活性不受 PABPN1 表达扩大的影响,而是受 PABPN1 表达水平降低的影响。在肌肉中,PABPN1 的活性最初会影响肌肉转录本。我们认为,OPMD 的肌无力是由 PABPN1 功能缺失导致 APA 转移引起的,而 APA 转移主要影响肌肉转录本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PABPN1 loss-of-function causes APA-shift in oculopharyngeal muscular dystrophy.

Alternative polyadenylation (APA) at the 3' UTR of transcripts contributes to the cell transcriptome. APA is suppressed by the nuclear RNA-binding protein PABPN1. Aging-associated reduced PABPN1 levels in skeletal muscles lead to muscle wasting. Muscle weakness in oculopharyngeal muscular dystrophy (OPMD) is caused by short alanine expansion in PABPN1 exon1. The expanded PABPN1 forms nuclear aggregates, an OPMD hallmark. Whether the expanded PABPN1 affects APA and how it contributes to muscle pathology is unresolved. To investigate these questions, we developed a procedure including RNA library preparation and a simple pipeline calculating the APA-shift ratio as a readout for PABPN1 activity. Comparing APA-shift results to previously published PAS utilization and APA-shift results, we validated this procedure. The procedure was then applied on the OPMD cell model and on RNA from OPMD muscles. APA-shift was genome-wide in the mouse OPMD model, primarily affecting muscle transcripts. In OPMD individuals, APA-shift was enriched with muscle transcripts. In an OPMD cell model APA-shift was not significant. APA-shift correlated with reduced expression levels of a subset of PABPN1 isoforms, whereas the expression of the expanded PABPN1 did not correlate with APA-shift. PABPN1 activity is not affected by the expression of expanded PABPN1, but rather by reduced PABPN1 expression levels. In muscles, PABPN1 activity initially affects muscle transcripts. We suggest that muscle weakness in OPMD is caused by PABPN1 loss-of-function leading to APA-shift that primarily affects in muscle transcripts.

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来源期刊
HGG Advances
HGG Advances Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
4.30
自引率
4.50%
发文量
69
审稿时长
14 weeks
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