PO.ET06.02 · 实验与分子治疗

首个口服生物可利用FEN1抑制剂的发现及机制表征,用于治疗HRD和EWS癌症并与多种DDR抑制剂联用

Discovery and mechanistic characterisation of the first oral bioavailable FEN1 inhibitor for treatment of HRD and EWS cancers and combination with various DDR inhibitors

海报缩略图:首个口服生物可利用FEN1抑制剂的发现及机制表征,用于治疗HRD和EWS癌症并与多种DDR抑制剂联用
编号 246 展板 17 时间 4/19 02:00–05:00 区域 Section 11 主讲 Lars Burgdorf
分会场 DNA Damage and Repair 1
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作者与单位 Authors & Affiliations

Lars T. Burgdorf1, Julien Lefranc1, Lucy Armstrong2, Roch Boivin3, Joerg Bomke1, Xiaoling Chen3, Paula Costales2, Owen A. Davis2, Lizbeth DeSelm3, Elias Elinati2, Maria Filipa Pinto2, Bruce Follows3, Alessandro Galbiati2, Catherine Jorand-Lebrun3, Timothea Konstantinou2, Julian Kreis1, Claudio A. Lademann1, Birgitta Leuthner1, Jayesh B. Majithiya2, Balca R. Mardin1, Bethany Mason2, Claire L. McWhirter2, Djordje Musil1, Ulrich Pehl1, David Perera2, Silvia Peripolli2, Carl Petersson1, Eeson Rajendra2, Christin Rakers1, Ada Sala-Hojman1, Graeme C. M. Smith2, Fiona Sorrell1, Ana Toste Rêgo2, Helen M. R. Robinson2, Frank T. Zenke1, Robert A. Heald2, Sam E. Mann2

1Merck Healthcare KGaA, Darmstadt, Germany,2Artios Pharma Ltd., Cambridge, United Kingdom,3EMD Serono Research & Development Institute, Billerica, MA

摘要 Abstract

中文摘要
皮瓣核酸内切酶1(FEN1)已成为DNA损伤应答(DDR)领域的一个关键靶点,特别是由于其与同源重组缺陷(HRD)癌症(如携带BRCA突变者)的合成致死相互作用。尽管FEN1抑制具有治疗潜力,有效小分子抑制剂的开发一直受限,现有化合物表现出中等选择性且缺乏口服生物利用度。在本报告中,我们重点介绍MSC778的发现——首个强效、选择性且口服生物可利用的FEN1抑制剂及其机制表征。利用金属螯合片段筛选方法结合基于结构的优化,我们成功鉴定出MSC778,它表现出强大的细胞活性和选择性,并在BRCA缺陷型癌细胞中诱导细胞死亡。我们的药物化学优化计划促成了口服生物可利用化合物的开发,这些化合物在体内增强了PARPi尼拉帕利(niraparib)的活性,在BRCA2 KO DLD-1小鼠异种移植模型中诱导肿瘤静止。在机制上,我们能够证明MSC778增强FEN1在染色质上的滞留并破坏活跃的DNA复制,导致S期累积和随后的DNA损伤。我们的发现还揭示了尤因肉瘤(EWS)细胞对FEN1抑制的一种新型增敏,由SLFN11的表达所驱动。通过CRISPR和药物联合筛选,我们阐明了FEN1与关键DDR因子(包括PARP1、USP1、PARG和ATR)之间的一系列合成致死相互作用,突显了将FEN1抑制与现有及新兴DDR靶向药物联合的协同潜力。总之,这些数据强调了FEN1抑制作为一种精准肿瘤学策略的相关性,对HRD和EWS癌症的治疗具有重要意义,并具有利用DDR格局的联合治疗潜力。
查看英文原文 English abstract
Flap endonuclease 1 (FEN1) has emerged as a critical target in the DNA damage response (DDR) landscape, particularly due to its synthetic lethal interactions with homologous recombination-deficient (HRD) cancers, such as those harboring BRCA mutations. Despite the therapeutic potential of FEN1 inhibition, the development of effective small molecule inhibitors has been limited, with existing compounds exhibiting modest selectivity and lacking oral bioavailability. In this presentation, we highlight the discovery of MSC778, the first potent, selective, and orally bioavailable FEN1 inhibitor and its mechanistic characterization. Utilizing a metal-chelating fragment-based screening approach combined with structure-based optimization, we successfully identified MSC778, which demonstrates strong cellular activity and selectivity and induces cell death in BRCA-deficient cancer cells. Our medicinal chemistry optimization campaign led to the development of oral bioavailable compounds that potentiate the activity of the PARPi niraparib in vivo to induce tumor stasis in a BRCA2 KO DLD-1 mouse xenograft model. Mechanistically we could demonstrate that MSC778 enhances FEN1 retention on chromatin and disrupts active DNA replication, leading to S-phase accumulation and subsequent DNA damage. Our findings also reveal a novel sensitization of Ewing sarcoma (EWS) cells to FEN1 inhibition, driven by the expression of SLFN11. Through CRISPR and drug combination screening, we elucidate a spectrum of synthetic lethal interactions between FEN1 and key DDR factors, including PARP1, USP1, PARG, and ATR, highlighting the synergistic potential of combining FEN1 inhibition with existing and emerging DDR-targeting agents. Together, these data underscore the relevance of FEN1 inhibition as a precision oncology strategy, with significant implications for the treatment of HRD and EWS cancers, as well as potential for combination therapies that leverage the DDR landscape.
利益披露 Disclosure
L. T. Burgdorf, Merck Healthcare KGaA Employment, Stock. J. Lefranc, Merck Healthcare KGaA Employment. Bayer Stock. L. Armstrong, Artios Employment, Stock. R. Boivin, None. J. Bomke, Merck Healthcare KGaA Employment, Stock. X. Chen, Quercus Molecular Design, Farmington, CT Employment. P. Costales, Artios Employment, Stock. O. A. Davis, Artios Employment, Stock. L. DeSelm, Relay Therapeutics Stock. E. Elinati, Artios Employment, Stock. M. Filipa Pinto, Artios Employment, Stock. B. Follows, None. A. Galbiati, Artios Employment. C. Jorand-Lebrun, None. T. Konstantinou, Artios Employment, Stock. J. Kreis, Merck Healthcare KGaA Employment. C. A. Lademann, Merck Healthcare KGaA Employment, Stock. B. Leuthner, Merck Healthcare KGaA Employment, Stock. J. B. Majithiya, Artios Employment, Stock. B. R. Mardin, Merck Healthcare KGaA Employment. B. Mason, Artios Employment, Stock. C. L. McWhirter, Artios Employment, Stock. D. Musil, Merck Healthcare KGaA Employment, Stock. U. Pehl, Merck Healthcare KGaA Employment, Stock. D. Perera, Artios Employment, Stock. S. Peripolli, Artios Employment, Stock. C. Petersson, Merck Employment. E. Rajendra, Artios Employment, Stock. C. Rakers, Merck Healthcare KGaA Employment. A. Sala-Hojman, Merck Healthcare KGaA Employment. G. C. M. Smith, Artios Employment, Stock. F. Sorrell, Merck Healthcare KGaA Employment. A. Toste Rêgo, Artios Employment, Stock. H. M. R. Robinson, Artios Employment, Stock. F. T. Zenke, FoRx Therapeutics Employment, Stock Option. R. A. Heald, Artios Employment, Stock. S. E. Mann, Artios Employment.

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