PO.CH01.01 · 化学

NRX-4972,一种选择性口服Aurora激酶A降解剂,在SCLC肿瘤模型中表现出更高的疗效,并显示出比AURKA抑制剂更强的体外协同作用

NRX-4972, a selective, oral, Aurora kinase A degrader, demonstrates increased efficacy in an SCLC tumor model, and greater in vitro synergy than an AURKA inhibitor

编号 5166 展板 16 时间 4/21 09:00–12:00 区域 Section 39 主讲 Ryan Rountree, PhD
分会场 Targeted Protein Degradation and Induced Proximity
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作者与单位 Authors & Affiliations

Hua Tian1, Ryan B. Rountree1, Jeffrey T. Mihalic1, Eric R. Wegrzyniak1, Ge Wei1, Karthik Arumugam1, Paul L. Auger1, Graham J. Carlson2, Robert T. Cass1, Tarra Knotts1, Filippo Marchioni1, Daniel Medina-Cleghorn1, Michael G. Mormino1, Madeleine P. Nemchek1, Rusha M. Sardhara1, Sangita Sridharan1, Austin Tenn-McClellan1, Simon Vezina-Dawod2, Gwenn M. Hansen1

1Nurix Therapeutics, Inc., Brisbane, CA,2Nurix Therapeutics, Inc., The Woodlands, TX

摘要 Abstract

中文摘要
Aurora激酶A(AURKA)在成人实体瘤、血液系统恶性肿瘤和儿童癌症中经常过表达。AURKA是有丝分裂的关键调控因子。对AURKA缺失特别敏感的癌细胞系包括源自MYCN扩增肿瘤(如神经母细胞瘤)和源自RB1缺失肿瘤(如神经内分泌小细胞癌和CDK4/6耐药乳腺癌)的细胞系(Mou等,2021)。若干AURKA抑制剂在临床前肿瘤模型中有效,但未能转化为临床疗效。近期研究发现,AURKA具有不依赖激酶的支架功能,无法通过酶抑制有效阻断(Otto等,Cancer Cell,2009;Buchel等,Cell Reports,2017)。 为了解决抑制剂的局限性,我们开发了NRX-4972,一种可穿透中枢神经系统、口服生物利用度高且高度选择性的AURKA降解剂,旨在消除其酶功能和支架功能。与AURKA抑制剂相比,NRX-4972具有更优的PK/PD特性,并能更有效地诱导DNA损伤、凋亡和G2/M期阻滞。此前,我们证明每日一次口服给药NRX-4972在SCLC的H82小鼠肿瘤模型中提供了稳健的疗效,而AURKA抑制剂无效(Tian等;AACR;Cancer Res 2025;85(8_Suppl_1):摘要6379)。在此,我们证明在同一肿瘤模型中每日两次(BID)给药时,NRX-4972取得了更优的疗效。经过两个多月的NRX-4972治疗后,60%的小鼠存活至研究结束。相比之下,接受AURKA抑制剂alisertib或LY3295668的BID治疗的小鼠无一存活至研究结束。 为了评估在联合用药中降解AURKA相比抑制AURKA的益处,我们在SCLC、NSCLC和TNBC癌细胞系中进行了体外协同作用筛选。将NRX-4972和LY3295668分别与一系列化疗药物和靶向药物联合使用进行比较,并使用Bliss独立模型评估细胞活力以判断协同作用。最高的协同评分见于与NRX-4972的联合用药,且NRX-4972产生协同作用的联合方案多于LY3295668。这些数据表明,通过降解AURKA消除其激酶和支架功能,增加了癌细胞对联合治疗的易感性。 总之,NRX-4972优越的临床前特性凸显了AURKA降解剂克服AURKA抑制剂局限性并实现有意义治疗益处的潜力。
查看英文原文 English abstract
Aurora kinase A (AURKA) is frequently overexpressed in adult solid tumors, hematologic malignancies, and pediatric cancers. AURKA is a critical regulator of mitosis. Cancer cell lines particularly sensitive to AURKA loss include those derived from MYCN -amplified tumors (e.g., neuroblastoma) and from tumors with RB1 loss, such as neuroendocrine small cell cancers and CDK4/6-resistant breast cancers (Mou et al., 2021). Several AURKA inhibitors are effective in preclinical tumor models but have failed to translate into clinical efficacy. Recent studies have found that AURKA has kinase-independent scaffolding functions that are not effectively blocked through enzymatic inhibition (Otto, et al, Cancer Cell, 2009; Buchel, et al., Cell Reports, 2017). To address the limitations of inhibitors, we developed NRX-4972, a CNS-penetrant, orally bioavailable and highly selective degrader of AURKA designed to remove both enzymatic and scaffolding functions. NRX-4972 has a superior PK/PD profile compared with an AURKA inhibitor and more effectively induces DNA damage, apoptosis, and G2/M arrest. Previously, we demonstrated that once-daily oral administration of NRX-4972 provides robust efficacy in the H82 mouse tumor model of SCLC, while an AURKA inhibitor is ineffective (Tian et al.; AACR; Cancer Res 2025;85(8_Suppl_1): Abstract 6379). Here, we demonstrate that NRX-4972 achieves superior efficacy in the same tumor model when administered twice-daily (BID). After over two months of treatment with NRX-4972, 60% of mice survived to the end of the study. In contrast, none of the mice treated BID with the AURKA inhibitors alisertib or LY3295668 survived to the end of the study. To evaluate the benefit of AURKA degradation over inhibition in the combination setting, we performed an in vitro synergy screen across SCLC, NSCLC, and TNBC cancer cell lines. NRX-4972 and LY3295668 were compared in combination with a range of chemotherapeutics and targeted agents, and cell viability was evaluated for synergy using the Bliss independence model. The highest synergy scores were found in combination with NRX-4972, and more combinations with NRX-4972 resulted in synergy than with LY3295668. These data suggest that eliminating the kinase and scaffolding functions through degradation of AURKA increases the vulnerability of cancer cells to combination therapy. Collectively, NRX-4972's superior preclinical profile highlights the potential of AURKA degraders to overcome the limitations of AURKA inhibitors and achieve meaningful therapeutic benefit.
利益披露 Disclosure
H. Tian, Nurix Therapeutics Stock. R. B. Rountree, Nurix Therapeutics Employment, Stock, Stock Option. J. T. Mihalic, Nurix Therapeutics Employment, Stock, Stock Option. E. R. Wegrzyniak, Nurix Therapeutics Employment, Stock Option. G. Wei, Nurix Therapeutics Employment, Stock Option. K. Arumugam, Nurix Therapeutics Employment, Stock Option. P. L. Auger, Nurix Therapeutics Employment, Stock Option. G. J. Carlson, Nurix Therapeutics Employment, Stock Option. R. T. Cass, Nurix Therapeutics Employment, Stock Option. T. Knotts, Nurix Therapeutics Employment, Stock Option. F. Marchioni, Nurix Therapeutics Employment, Stock Option. D. Medina-Cleghorn, Nurix Therapeutics Employment, Stock Option. M. G. Mormino, Nurix Therapeutics Employment, Stock Option. M. P. Nemchek, Nurix Therapeutics Employment, Stock Option. R. M. Sardhara, Nurix Therapeutics Employment, Stock Option. S. Sridharan, Nurix Therapeutics Employment, Stock Option. A. Tenn-McClellan, Nurix Therapeutics Employment, Stock Option. S. Vezina-Dawod, Nurix Therapeutics Employment, Stock Option. G. M. Hansen, Nurix Therapeutics Employment, Stock Option.

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