Suppr超能文献

人源 SAMD9 的过表达抑制蛋白质翻译并改变 MYC 信号转导,导致细胞周期停滞。

Overexpression of human SAMD9 inhibits protein translation and alters MYC signaling resulting in cell cycle arrest.

机构信息

Department of Pediatrics, Vanderbilt University Medical Center, Nashville, TN.

Department of Biostatistics, Vanderbilt University Medical Center, Nashville, TN.

出版信息

Exp Hematol. 2024 Sep;137:104249. doi: 10.1016/j.exphem.2024.104249. Epub 2024 Jun 6.

Abstract

Inherited bone marrow failure syndromes often result from pathogenic mutations in genes that are important for ribosome function, namely, Diamond-Blackfan anemia, Shwachman-Diamond syndrome, and dyskeratosis congenita. Germline mutations in SAMD9 are a frequent genetic lesion resulting in an inherited bone marrow failure syndrome with monosomy 7; some patients have severe multisystem syndromes that include myelodysplasia. The association of germline SAMD9 mutations and bone marrow failure is clear; however, to date, there is no reliable method to predict whether a novel SAMD9 mutation is pathogenic unless it is accompanied by an obvious family history and/or clinical syndrome. The difficulty with pathogenicity prediction is, in part, due to the incomplete understanding of the biological functions of SAMD9. We used a SAMD9-targeted, inducible CRISPRa system and RNA sequencing to better understand the global transcriptional changes that result from transcriptional manipulation of SAMD9. Supporting recent discoveries that SAMD9 acts as a ACNase specific for phenylalanine tRNA (tRNA-Phe), we confirmed with crosslinking and solid-phase purification that SAMD9 is an RNA binding protein and analyzed how overexpression of tRNA-Phe may reverse transcriptomic changes caused by SAMD9 activation. Our data show that overexpression of SAMD9 from the endogenous locus results in decreased cell proliferation, cell cycle progression, and global protein translation. When SAMD9 contains a gain-of-function mutation (p.E1136Q), these functional phenotypes are exacerbated but only partially rescued with tRNA-Phe overexpression, suggesting additional molecular actions of SAMD9. Additionally, we demonstrate that gene expression pathways important for ribosome biogenesis and MYC signaling are the most significantly impacted by SAMD9 overexpression.

摘要

遗传性骨髓衰竭综合征通常是由核糖体功能重要基因的致病性突变引起的,即 Diamond-Blackfan 贫血、Shwachman-Diamond 综合征和先天性角化不良。SAMD9 种系突变是导致遗传性骨髓衰竭伴单体 7 的常见遗传病变;一些患者有严重的多系统综合征,包括骨髓增生异常。SAMD9 种系突变与骨髓衰竭的相关性是明确的;然而,迄今为止,除了明显的家族史和/或临床综合征外,尚无可靠的方法来预测新的 SAMD9 突变是否具有致病性。致病性预测的困难部分是由于对 SAMD9 的生物学功能了解不完整。我们使用了一种 SAMD9 靶向的、诱导型 CRISPRa 系统和 RNA 测序来更好地了解 SAMD9 转录调控后导致的全局转录变化。支持 SAMD9 作为一种特异性针对苯丙氨酸 tRNA(tRNA-Phe)的 ACNase 的最新发现,我们通过交联和固相纯化证实 SAMD9 是一种 RNA 结合蛋白,并分析了 tRNA-Phe 的过表达如何逆转 SAMD9 激活引起的转录组变化。我们的数据表明,内源性 SAMD9 的过表达导致细胞增殖、细胞周期进程和全局蛋白质翻译减少。当 SAMD9 含有功能获得性突变(p.E1136Q)时,这些功能表型会加剧,但仅部分被 tRNA-Phe 的过表达挽救,这表明 SAMD9 具有额外的分子作用。此外,我们证明了核糖体生物发生和 MYC 信号通路的基因表达途径是受 SAMD9 过表达影响最显著的途径。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验