多组学分析揭示了雪旺谱系细胞和恶性周围神经鞘肿瘤中多梳抑制复合物2的新靶点。

IF 3.7 Q1 CLINICAL NEUROLOGY
Neuro-oncology advances Pub Date : 2024-11-09 eCollection Date: 2024-01-01 DOI:10.1093/noajnl/vdae188
Minu M Bhunia, Christopher M Stehn, Tyler A Jubenville, Ethan L Novacek, Alex T Larsson, Mahathi Madala, Suganth Suppiah, Germán L Velez-Reyes, Kyle B Williams, Mark Sokolowski, Rory L Williams, Samuel J Finnerty, Nuri A Temiz, Ariel Caride, Aditya V Bhagwate, Nagaswaroop K Nagaraj, Jeong-Heon Lee, Tamas Ordog, Gelareh Zadeh, David A Largaespada
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引用次数: 0

摘要

背景:恶性周围神经鞘肿瘤(MPNSTs)可由非典型神经纤维瘤(ANF)引起。多梳抑制复合体2 (PRC2)的丢失是一种常见的事件。先前对MPNST中prc2调控基因的研究,是在高度非整倍体的MPNST细胞系中进行遗传加回实验,这些细胞系可能在nf1突变的anf样前体细胞中缺失prc2调控基因。人类雪旺细胞(SCs)中一组prc2调控基因尚未确定。我们假设PRC2缺失对导致MPNST的基因表达有直接和间接的影响,因此我们试图在永生人雪旺细胞(ihsc)中鉴定PRC2调节基因。方法:我们设计了功能缺失的nf1缺陷ihsc和SUZ12或EED突变。RNA测序显示1327个差异表达基因,以确定prc2调控基因。为了研究MPNST的发病机制,我们比较了ihsc中ANF和MPNST之间一致的基因表达差异。利用染色质免疫沉淀测序进一步确定靶点。进行甲基组和蛋白质组分析以进一步确定富集途径。结果:我们确定了潜在的prc2调节的MPNST进展驱动因素。通路分析显示了许多上调的癌症相关通路。我们在prc2缺陷ihsc中发现了激活Notch和Sonic Hedgehog (SHH)信号的转录证据。功能研究证实Notch信号在MPNST细胞系、患者来源的异种移植物和PRC2缺乏的瞬时细胞模型中是活跃的。MEK和γ-分泌酶抑制在MPNST细胞系中显示协同作用。结论:我们确定了prc2调控基因和MPNSTs的潜在驱动因素。我们的发现支持Notch通路作为MPNSTs的可药物靶点。我们对prc2调控基因和途径的鉴定可能会带来更多新的治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiomic analyses reveal new targets of polycomb repressor complex 2 in Schwann lineage cells and malignant peripheral nerve sheath tumors.

Background: Malignant peripheral nerve sheath tumors (MPNSTs) can arise from atypical neurofibromas (ANF). Loss of the polycomb repressor complex 2 (PRC2) is a common event. Previous studies on PRC2-regulated genes in MPNST used genetic add-back experiments in highly aneuploid MPNST cell lines which may miss PRC2-regulated genes in NF1-mutant ANF-like precursor cells. A set of PRC2-regulated genes in human Schwann cells (SCs) has not been defined. We hypothesized that PRC2 loss has direct and indirect effects on gene expression resulting in MPNST, so we sought to identify PRC2-regulated genes in immortalized human Schwann cells (iHSCs).

Methods: We engineered NF1-deficient iHSCs with loss of function SUZ12 or EED mutations. RNA sequencing revealed 1327 differentially expressed genes to define PRC2-regulated genes. To investigate MPNST pathogenesis, we compared genes in iHSCs to consistent gene expression differences between ANF and MPNSTs. Chromatin immunoprecipitation sequencing was used to further define targets. Methylome and proteomic analyses were performed to further identify enriched pathways.

Results: We identified potential PRC2-regulated drivers of MPNST progression. Pathway analysis indicates many upregulated cancer-related pathways. We found transcriptional evidence for activated Notch and Sonic Hedgehog (SHH) signaling in PRC2-deficient iHSCs. Functional studies confirm that Notch signaling is active in MPNST cell lines, patient-derived xenografts, and transient cell models of PRC2 deficiency. A combination of MEK and γ-secretase inhibition shows synergy in MPNST cell lines.

Conclusions: We identified PRC2-regulated genes and potential drivers of MPNSTs. Our findings support the Notch pathway as a druggable target in MPNSTs. Our identification of PRC2-regulated genes and pathways could result in more novel therapeutic approaches.

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