组蛋白
组蛋白脱乙酰基酶
乙酰化
癌症研究
生物
HDAC1型
转录因子
胶质母细胞瘤
恶性转化
抄写(语言学)
活力测定
细胞
DNA复制
表观遗传学
体内
DNA损伤
细胞周期
移植
化学
细胞生物学
干细胞
脑瘤
肿瘤进展
细胞生长
转录调控
作者
Shreya Budhiraja,Umme H. Faisal,S. Baisiwala,Rafal Chojak,Lara Koutah,Noah B. Drewes,Sia Cho,Hasaan A Kazi,Rebecca Chen,Ella Perrault,Li Chen,Cheol H. Park,M O'Shea,Khizar R. Nandoliya,Joseph Duffy,Peiyu Lin,Adam M Sonabend,Crismita Dmello,A. Karim Ahmed
出处
期刊:Neoplasia
[Elsevier BV]
日期:2026-01-06
卷期号:72: 101271-101271
标识
DOI:10.1016/j.neo.2025.101271
摘要
Glioblastoma (GBM), the most common and aggressive primary malignant brain tumor in adults, has a median survival of 14.6 months. To identify drivers of GBM pathogenesis, we conducted a CRISPR-knockout screen, which revealed THO Complex 1 (THOC1) as a key driver. Knocking down THOC1 significantly reduced GBM cell viability across patient-derived xenograft (PDX) lines, enhancing survival (p<0.01) in primary PDX models. Conversely, overexpressing THOC1 in non-cancerous neural stem cells bolstered transformation capacity, decreasing survival and causing tumor engraftment in vivo (p<0.01). Further investigation revealed THOC1's interaction with SIN3A, a histone deacetylase complex. Histone deacetylation has been previously shown to prevent the buildup of R-loops, structures that form normally during transcription but can be lethal in excess. We found that THOC1-knockdown leads to elevated R-loop levels and reduced histone deacetylation levels. RNA-sequencing analysis revealed that THOC1's role in R-loop prevention primarily affects telomeres, critical regions for cell replication. We further show that THOC1-knockdown results in significantly increased telomeric R-loop levels and shortened telomeres. Ultimately, this study suggests that targeting THOC1 is a promising therapeutic strategy to disrupt the delicate R-loop landscape and undermine GBM's replicative potential. STATEMENT OF SIGNIFICANCE: Glioblastoma, the most aggressive malignant brain tumor in adults, relies on a delicate R-loop landscape to promote cell replication while avoiding DNA damage. Targeting THOC1 represents a promising therapeutic strategy to disrupt the delicate R-loop landscape and undermine GBM's replicative potential.
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