PO.ET03.05 · 实验与分子治疗

全基因组CRISPR-Cas9筛选鉴定肝细胞癌中赋予lenvatinib耐药的基因

Genome-wide CRISPR-Cas9 screen identifies genes conferring lenvatinib resistance in hepatocellular carcinoma

海报缩略图:全基因组CRISPR-Cas9筛选鉴定肝细胞癌中赋予lenvatinib耐药的基因
编号 7049 展板 28 时间 4/22 09:00–12:00 区域 Section 11 主讲 Ayumu Taguchi, MD;PhD
分会场 Drug Resistance 2: Tyrosine Kinase Inhibitors
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作者与单位 Authors & Affiliations

Ayumu Taguchi1, Shuang Zhou1, Hisanori Isomura1, Haruki Mori2, Toru Miyake2, Yuichi Abe3, Miyako Tanaka4, Seiji Natsume3, Masataka Okuno3, Waki Hosoda3, Masaji Tani2, Takayoshi Suganami4

1Nagoya City Univ. Medical School, Nagoya, Japan,2Shiga University of Medical Science, Otsu, Japan,3Aichi Cancer Center, Nagoya, Japan,4Nagoya University, Nagoya, Japan

摘要 Abstract

中文摘要
背景:酪氨酸激酶抑制剂(TKI),如lenvatinib、sorafenib和regorafenib,构成当前晚期肝细胞癌(HCC)系统性治疗的关键组成部分。然而,内在和获得性耐药显著削弱其临床获益。尽管多条信号通路被认为与TKI应答相关,但维持广泛TKI耐药的分子决定因素仍未被完全阐明。为揭示这些机制,我们在一株小鼠HCC细胞系中进行了无偏倚的全基因组遗传学探究。 材料与方法:我们从饲喂高脂饮食的黑皮质素-4受体缺陷小鼠中建立了一株鼠源HCC细胞系。这些细胞表现出对lenvatinib显著的内在耐药。为鉴定这种耐药背后的基因,我们使用混合sgRNA文库进行了全基因组CRISPR-Cas9敲除筛选。通过向导RNA耗竭评分对首要候选基因进行优先排序,并使用siRNA和shRNA进行验证。开展转录组学和蛋白质组学分析以确定下游通路。为评估治疗相关性,我们检测了靶向该网络内酶的抑制剂,并评估其与lenvatinib及其他TKI在多株癌细胞系中的联合效应。 结果:CRISPR筛选鉴定出PCIF1——一种负责在5'帽子上安装m6Am修饰的mRNA甲基转移酶——为首要决定因素,其缺失在体外实验和体内肿瘤模型中均显著增敏人HCC细胞对lenvatinib。整合多组学分析揭示PCIF1调控一个由MYBL2驱动、汇聚于核苷酸代谢通路的转录程序。在这一下游网络中,核酸生物合成中的一种限速酶(Molecule A)成为关键效应分子。对Molecule A的药理学抑制不仅与lenvatinib,还与其他TKI表现出强效协同效应,增强药物敏感性并抑制多株人HCC和其他癌细胞系的增殖。Molecule A的表达与lenvatinib耐药显著相关,凸显其作为超越PCIF1-MYBL2调控轴的生物标志物和治疗靶点的潜在意义。 结论:我们的发现证明,即使增殖看似未发生变化,TKI暴露也会施加一种代谢应激,驱动核苷酸生物合成的重连以及对Molecule A的显著依赖。这种适应性转变在不同的TKI和癌症类型中均可观察到,表明核苷酸代谢的改变代表一种广泛保守的耐药机制。由于临床已批准的Molecule A抑制剂已经问世,这些结果为旨在克服肝细胞癌TKI耐药的治疗性重定位策略提供了有力依据。
查看英文原文 English abstract
Background: Tyrosine kinase inhibitors (TKIs), such as lenvatinib, sorafenib, and regorafenib, form a key component of current systemic therapy for advanced hepatocellular carcinoma (HCC). However, intrinsic and acquired resistance significantly diminish their clinical benefit. Although multiple signaling pathways have been implicated in TKI response, the molecular determinants that sustain broad TKI resistance remain incompletely defined. To uncover these mechanisms, we performed an unbiased genome-wide genetic interrogation in a mouse HCC cell line. Materials and Methods: We established a murine HCC cell line from melanocortin-4 receptor-deficient mice fed a high-fat diet. These cells exhibited pronounced intrinsic resistance to lenvatinib. To identify genes underlying this resistance, we performed a genome-wide CRISPR-Cas9 knockout screen using a pooled sgRNA library. Top candidates were prioritized by guide depletion scores and validated using siRNAs and shRNAs. Transcriptomic and proteomic analyses were conducted to define downstream pathways. To assess therapeutic relevance, we tested inhibitors targeting enzymes within this network and evaluated their combinatorial effects with lenvatinib and other TKIs across multiple cancer cell lines. Results: The CRISPR screen identified PCIF1, an mRNA methyltransferase responsible for installing m6Am modification at the 5′ cap, as a leading determinant whose loss markedly sensitized human HCC cells to lenvatinib in both in vitro assays and in vivo tumor models. Integrative multi-omics analysis revealed that PCIF1 regulates a MYBL2-driven transcriptional program that converges on nucleotide metabolic pathways. Within this downstream network, a rate-limiting enzyme in nucleic acid biosynthesis (Molecule A) emerged as a key effector. Pharmacological inhibition of Molecule A exhibited potent synergistic effects not only with lenvatinib but also with additional TKIs, enhancing drug sensitivity and suppressing proliferation across human HCC and other cancer cell lines. Expression of Molecule A was significantly associated with lenvatinib resistance, underscoring its potential relevance as a biomarker and therapeutic target beyond the PCIF1-MYBL2 regulatory axis. Conclusion: Our findings demonstrate that, even when proliferation appears unchanged, TKI exposure imposes a metabolic stress that drives a rewiring of nucleotide biosynthesis and a pronounced dependency on Molecule A. This adaptive shift is observed across distinct TKIs and cancer types, indicating that altered nucleotide metabolism represents a broadly conserved mechanism of drug resistance. Because clinically approved inhibitors of Molecule A are already available, these results provide a strong rationale for therapeutic repositioning strategies aimed at overcoming TKI resistance in hepatocellular carcinoma.
利益披露 Disclosure
A. Taguchi, Ono Pharmaceutical co. ltd ). S. Zhou, None.. H. Isomura, None.. H. Mori, None.. T. Miyake, None.. Y. Abe, None.. M. Tanaka, None.. S. Natsume, None.. M. Okuno, None.. W. Hosoda, None.. M. Tani, None.. T. Suganami, None.

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