PO.ET03.07 · 实验与分子治疗

CRISPR筛选确定BMF缺失是ALK重排肺癌中耐药持留细胞的存活因子

CRISPR screening identifies BMF loss as a drug-tolerant persister cell survival factor in ALK-rearranged lung cancer

海报缩略图:CRISPR筛选确定BMF缺失是ALK重排肺癌中耐药持留细胞的存活因子
编号 1852 展板 12 时间 4/20 09:00–12:00 区域 Section 18 主讲 Ryohei Katayama, PhD
分会场 Targeting Drug Resistance 1: Apoptosis and Autophagy
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作者与单位 Authors & Affiliations

Ryohei Katayama1, Takahiro Utsumi1, Ken Uchibori2, Makoto Nishio3

1Japanese Foundation for Cancer Research, Tokyo, Japan,2Cancer Institute Hospital, Japanese Foundation for Cancer Research, Tokyo, Japan,3Department director, Department of Thoracic Medical Oncology, Japanese Fndn. for Cancer Res. Cancer Institute, Tokyo, Japan

摘要 Abstract

中文摘要
间变性淋巴瘤激酶(ALK)酪氨酸激酶抑制剂(ALK-TKIs)显著改善了ALK重排非小细胞肺癌(NSCLC)患者的临床结局。然而,耐药的产生仍是长期治疗成功的主要障碍。药物耐药被认为源自在药物治疗中存活的耐药持留(DTP)细胞。因此,理解DTP形成和存活的分子机制对于开发克服耐药和延长患者生存的策略至关重要。为确定与DTP细胞存活相关的因子,我们使用患者来源的ALK阳性NSCLC细胞进行了全基因组CRISPR-Cas9敲除筛选。通过CRISPR筛选,我们确定促凋亡因子BMF(Bcl-2修饰因子)是DTP形成的关键决定因素。BMF表达在ALK-TKI暴露或ERK和PI3K信号双重抑制后被迅速诱导,提示其作为ALK-TKIs凋亡诱导介导者的作用。引人注目的是,BMF敲除细胞表现出受损的凋亡,并在ALK-TKI治疗下DTP比例增加,凸显其在限制药物耐受中的重要功能。机制研究揭示,MCL-1的药理学或siRNA介导抑制恢复了凋亡并消除了BMF缺陷的DTP细胞,强调了靶向抗凋亡通路的治疗潜力。此外,FOXO1敲低导致BMF上调,表明FOXO1作为BMF的转录抑制因子。这些发现提示存在一个调控轴,其中FOXO1抑制BMF,从而促进DTP细胞的存活。此外,分析了ALK-TKI治疗前后收集的患者肿瘤样本以及公开可用数据集,以评估这些发现的临床相关性。临床分析揭示,低BMF表达与ALK阳性非小细胞肺癌(NSCLC)患者的不良治疗应答和较短总生存相关。此外,BMF基因组缺失在多种癌症类型中相对频繁地被发现,提示BMF缺陷可能是一种超越ALK驱动肺癌、促成药物耐受和耐药的常见机制。总之,我们的研究表明BMF缺陷促进DTP细胞的形成,并促成ALK阳性NSCLC的治疗耐药。重要的是,靶向MCL-1或FOXO1可能是根除DTP并增强ALK-TKI应答持久性的有前景策略。这些发现为持留细胞凋亡的调控提供了机制性见解,并凸显了可用于改善患者结局的可操作脆弱性。
查看英文原文 English abstract
Anaplastic lymphoma kinase (ALK) tyrosine kinase inhibitors (ALK-TKIs) have significantly improved the clinical outcomes of patients with ALK-rearranged non-small cell lung cancer (NSCLC). However, the development of resistance remains a major obstacle to long-term therapeutic success. Drug resistance is believed to develop from drug-tolerant persister (DTP) cells that survive drug treatment. Therefore, understanding the molecular mechanisms underlying DTP formation and survival is critical for developing strategies to overcome resistance and extend patient survival.To identify the factors related to the survival of DTP cells, we conducted a genome-wide CRISPR-Cas9 knockout screening using patient-derived ALK-positive NSCLC cells. From the Crispr screening, we identified the pro-apoptotic factor BMF (Bcl-2 modifying factor) as a critical determinant of DTP formation. BMF expression was rapidly induced following ALK-TKI exposure or dual inhibition of ERK and PI3K signaling, suggesting its role as a mediator of apoptotic induction by ALK-TKIs. Strikingly, BMF knockout cells exhibited impaired apoptosis and an increased fraction of DTPs under ALK-TKI treatment, highlighting its essential function in limiting drug tolerance.Mechanistic studies revealed that pharmacologic or siRNA-mediated inhibition of MCL-1 restored apoptosis and eliminated BMF-deficient DTP cells, underscoring the therapeutic potential of targeting anti-apoptotic pathways. Furthermore, knockdown of FOXO1 resulted in the upregulation of BMF, indicating that FOXO1 acts as a transcriptional repressor of BMF. These findings suggest the existence of a regulatory axis in which FOXO1 suppresses BMF, thereby promoting the survival of DTP cells.In addition, patient tumor samples collected before and after ALK-TKI therapy, together with publicly available datasets, were analyzed to evaluate the clinical relevance of these findings. The clinical analyses revealed that low BMF expression was associated with poor treatment response and shorter overall survival in patients with ALK-positive non-small cell lung cancer (NSCLC). Moreover, BMF genomic loss was found relatively frequently across diverse cancer types, suggesting that BMF deficiency may be a common mechanism contributing to drug tolerance and resistance beyond ALK-driven lung cancer.In summary, our study demonstrates that BMF deficiency promotes the formation of DTP cells and contributes to therapeutic resistance in ALK-positive NSCLC. Importantly, targeting MCL-1 or FOXO1 may be a promising strategy for eradicating DTPs and enhancing the durability of ALK-TKI responses. These findings provide mechanistic insight into the regulation of persister cell apoptosis and highlight actionable vulnerabilities that could be exploited to improve patient outcomes.
利益披露 Disclosure
R. Katayama, Chugai ). Nippon Kayaku ). TOPPAN ). UBE ). BML ). Eiken Chemical ), Patent. T. Utsumi, None. K. Uchibori, Chugai ). M. Nishio, None.

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