PO.TB07.01 · 肿瘤生物学

IDH突变使GSX2的抑瘤活性失活以促进胶质瘤发生

IDH mutations disable the tumor suppressive activity of GSX2 to promote gliomagenesis

海报缩略图:IDH突变使GSX2的抑瘤活性失活以促进胶质瘤发生
编号 837 展板 16 时间 4/19 02:00–05:00 区域 Section 33 主讲 Yi Xiao, Dr Rer Nat
分会场 Stem Cell Plasticity and Lineage Reprogramming in Cancer
查看 PDF 下载 PDF 🔒 查看 / 下载完整 PDF 需登录并开通下载套餐 · 查看套餐 / 开通 AACR 官方页面

作者与单位 Authors & Affiliations

Yi Xiao1, Diana D. Shi2, Lei Guo1, Ethan Neumann1, Michael M. Levitt1, Pranita Kaphle1, Tracey Shipman1, Haocheng Li1, Feng Cai1, Denise M. O. Ramirez1, Lauren G. Zacharias1, Zhenkang Chen1, Mathew Lin2, Vinesh T. Puliyappadamba1, Tao Chen1, Milan R. Savani1, Salvador Peña1, Janaka Wansapura1, Thomas P. Mathews1, Prashant Mishra1, Yoon Jung Kim1, Prithvi Raj1, Timothy E. Richardson3, Jian Xu4, Stephen C. Mack4, Gilbert J. Rahme5, Bradley E. Bernstein2, Ralph J. DeBerardinis1, Itay Tirosh6, Mario L. Suvà2, Lin Xu1, Kalil G. Abdullah7, Samuel K. McBrayer1

1UT Southwestern Medical Center, Dallas, TX,2Harvard Medical School, Boston, MA,3Icahn School of Medicine at Mount Sinai, New York, NY,4St. Jude Children's Research Hospital, Memphis, TN,5Renaissance School of Medicine at Stony Brook University, Stony Brook, NY,6Weizmann Institute of Science, Rehovot, Israel,7University of Pittsburgh Medical Center, Pittsburgh, PA

摘要 Abstract

中文摘要
异柠檬酸脱氢酶(IDH)突变出现于胶质瘤发生的早期,并与一种特定的神经发育性癌细胞层级结构相关。然而,突变型IDH如何促成这一层级结构,以及这种相互作用是否促进胶质瘤发生,仍不清楚。技术上的限制阻碍了对这些问题的研究进展。患者来源模型很少能捕捉肿瘤起始的生物学,因为手术标本仅在癌症演化的这些阶段过后才获得。此外,缺乏忠实反映突变型IDH的临床前模型也限制了机制研究。为克服这些挑战,我们建立了突变型IDH驱动胶质瘤发生的遗传学小鼠模型以及IDH野生型配套模型,以便直接检验涉及Idh1-R132H癌基因的因果性基因型-表型关系。我们利用这些模型,通过对工程化神经细胞进行时间分辨的单细胞RNA与ATAC联合测序分析,考察了IDH突变型胶质瘤的起始。突变型IDH激活神经祖细胞(NPC)并驱动NPC谱系转换。这些作用扩增了少突胶质细胞前体细胞(这些肿瘤的主要起源细胞),而以中间神经元为代价——后者是一种与突变型IDH诱导的转化不相容的谱系。我们进一步发现,谱系转换由Gsx2(一种神经发生所必需的同源框基因)启动子高甲基化和沉默所介导。关键的是,Gsx2敲除重现了突变型IDH对NPC命运的重编程,而在IDH突变型神经球细胞系中恢复Gsx2表达则损害其自我更新和致瘤潜能。我们的工作揭示了突变型IDH重编程神经谱系定向以促进癌症起始的分子机制,提供了IDH癌基因调控神经细胞命运的新模型,并为胶质瘤的发育起源提供了见解。
查看英文原文 English abstract
Isocitrate dehydrogenase ( IDH ) mutations arise early in glioma development and are associated with a defined neurodevelopmental cancer cell hierarchy. However, how mutant IDH contributes to this hierarchy and whether this interaction promotes gliomagenesis remain unclear. Progress in addressing these questions has been hindered by technical limitations. Patient-derived models rarely capture the biology of tumor initiation, as surgical specimens are obtained only after these phases of cancer evolution have passed. Moreover, the lack of faithful preclinical models of mutant IDH has constrained mechanistic investigation. To overcome these challenges, we developed a genetic mouse model of mutant IDH-driven gliomagenesis and IDH-wildtype companion models to enable direct testing of causal genotype-phenotype relationships involving the Idh1-R132H oncogene. We leveraged these models to survey IDH-mutant glioma initiation by performing time-resolved, joint single-cell RNA and ATAC sequencing analysis of engineered neural cells. Mutant IDH activates neural progenitor cells (NPCs) and drives NPC lineage switching. These actions expand oligodendrocyte precursor cells, the predominant cell-of-origin for these tumors, at the expense of interneurons, a lineage incompatible with mutant IDH-induced transformation. We further find that lineage switching is mediated by promoter hypermethylation and silencing of Gsx2 , a homeobox gene required for neurogenesis. Critically, Gsx2 ablation recapitulates NPC fate reprogramming by mutant IDH while restoring Gsx2 expression in IDH-mutant neurosphere lines impairs their self-renewal and tumorigenic potential. Our work uncovers the molecular mechanisms by which mutant IDH reprograms neural lineage specification to promote cancer initiation, providing a new model of neural cell fate control by IDH oncogenes and insights into the developmental origins of glioma.
利益披露 Disclosure
Y. Xiao, None.. D. D. Shi, None.. L. Guo, None.. E. Neumann, None.. M. M. Levitt, None.. P. Kaphle, None.. T. Shipman, None.. H. Li, None.. F. Cai, None.. D. M. O. Ramirez, None.. L. G. Zacharias, None.. Z. Chen, None.. M. Lin, None.. V. T. Puliyappadamba, None.. T. Chen, None.. M. R. Savani, None.. S. Peña, None.. J. Wansapura, None.. T. P. Mathews, None.. P. Mishra, None.. Y. Kim, None.. P. Raj, None. T. E. Richardson, Servier Pharmaceuticals Other, consulting. J. Xu, None.. S. C. Mack, None.. G. J. Rahme, None.. B. E. Bernstein, None. R. J. DeBerardinis, Atavistik Bioscience Other, R.J.D. is a founder and advisor at this company. Vida Ventures Other, R.J.D. is an advisor at this company. Faeth Therapeutics Other, R.J.D. is an advisor at this company. I. Tirosh, None. M. L. Suvà, Immunitas Therapeutics Other, M.L.S. is equity holder, scientific co-founder and advisory board member of Immunitas Therapeutics. L. Xu, None. K. G. Abdullah, Gliomet Other, K.G.A. has intellectual property interests related to brain tumor metabolism and is a co-founder of Gliomet. S. K. McBrayer, Servier Pharmaceuticals ). Gliomet Other, S.K.M. has intellectual property interests related to brain tumor metabolism and is a co-founder of Gliomet.

← 返回 AACR 2026 检索