PO.ET05.02 · 实验与分子治疗

RAF/MEK胶通过对RAF的空间捕获机制实现与pan-RAF抑制剂的全剂量联用,并驱动强效的、RAS突变肿瘤选择性的MAPK抑制及生长抑制

A spatial-trapping mechanism of RAF by RAF/MEK glue enables full-dose combination with a pan-RAF inhibitor and drives potent, RAS-mutant tumor-selective MAPK and growth inhibition

海报缩略图:RAF/MEK胶通过对RAF的空间捕获机制实现与pan-RAF抑制剂的全剂量联用,并驱动强效的、RAS突变肿瘤选择性的MAPK抑制及生长抑制
编号 2948 展板 25 时间 4/20 02:00–05:00 区域 Section 11 主讲 Bijaya Gaire, MS;PhD
分会场 Cellular Responses to Anticancer Drugs
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作者与单位 Authors & Affiliations

Bijaya Gaire1, Ana Orive-Ramos1, Christos Adamopoulos1, Beau Baars1, Mathieu Desaunay1, Evangelia Matenoglou2, Silvia Coma3, Nayeli Gutierrez-Trejo1, Kevin Mohammed1, Stuart A. Aaronson1, Jian Jin1, Tiphaine Martin1, Ernesto Guccione1, Evripidis Gavathiotis4, Jonathan A. Pachter3, Poulikos I. Poulikakos1

1The Tisch Cancer Institute, Icahn School of Medicine at Mount Sinai, New York, NY,2Albert Einstein College of Medicine, New York, NY,3Verastem Oncology, Needham, MA,4Albert Einstein College of Medicine, Bronx, NY

摘要 Abstract

中文摘要
MAPK通路抑制剂的治疗获益取决于在肿瘤中实现比正常组织更强效的通路抑制,同时维持较宽的治疗指数。在BRAF突变癌症中,选择性BRAF抑制剂(BRAFi)实现了这一平衡,其与MEK抑制剂(MEKi)的全剂量联用带来了显著的临床获益。相比之下,下一代II型二聚体RAF抑制剂,也称为pan-RAF抑制剂(pan-RAFi),靶向野生型BRAF和CRAF并在RAS突变(RAS-MUT)肿瘤中表现出单药活性,但在与MEKi联用时未能取得相当的治疗效果,原因在于毒性驱动的剂量降低限制了临床疗效。在临床前及临床研究中,这些联合方案已达到治疗天花板,主要产生疾病稳定,仅罕见出现肿瘤消退。我们发现,pan-RAFi + MEKi联用中的剂量限制性毒性源于MEK抑制解除了负反馈,从而在正常组织中放大了RAF激活和pan-RAFi结合,过度抑制MAPK信号并限制了治疗指数。RAF/MEK胶构成了一类独特的MEK抑制剂,其稳定RAF-MEK复合物并在功能上抑制RAF。尽管结构研究已捕获这些胶结合到活性和非活性RAF构象上,但我们发现其抑制活性源于一种空间捕获机制:我们发现MEK是组成型存在于胞质中的,RAF/MEK胶将RAF隔离在胞质中,阻断其膜募集和二聚化——这些是激活所必需的步骤。与该机制一致,RAF/MEK胶avutometinib与pan-RAFi联用时,在全剂量下耐受性良好,而且关键的是,在多种RAS-MUT模型中驱动了肿瘤消退,在一个不敏感的RAS-MUT模型中实现了90%的ORR,而传统的pan-RAFi + MEKi方案为0%。肿瘤消退与药效学及转录学指标所示的更深度MAPK通路抑制相对应,且未增加毒性。总之,这些发现揭示了RAF/MEK胶使RAF失活的一种此前未被认识的机制,并表明用RAF/MEK胶替代MEKi可克服当前MAPK靶向方案的治疗天花板,将结局从多数疾病稳定转变为频繁的肿瘤消退。更广泛地说,这项工作确立了药物诱导邻近作用作为一种手段,通过重编程野生型信号效应分子的空间和生化状态来提高肿瘤选择性,从而拓宽致癌通路抑制的治疗窗口,并为精准肿瘤学提供了新范式。
查看英文原文 English abstract
The therapeutic benefits of MAPK pathway inhibitors depend on achieving more potent pathway inhibition in tumors over normal tissues, maintaining a broad therapeutic index. In BRAF-mutant cancers, selective BRAF inhibitors (BRAFi) achieve this balance, and their combination with MEK inhibitors (MEKi) at full doses resulted in significant clinical benefit. In contrast, next-generation Type 2 dimeric RAF, also known as pan-RAF inhibitors (pan-RAFi), which target wild-type BRAF and CRAF and demonstrate single-agent activity in RAS-mutant (RAS-MUT) tumors, have failed to achieve comparable therapeutic impact in combination with MEKi, owing to toxicity-driven dose reductions that constrain clinical efficacy. In preclinical and clinical studies, these combinations have reached a therapeutic ceiling, yielding predominantly stable disease and only rare tumor regressions. We show that dose-limiting toxicity in pan-RAFi + MEKi combinations stems from relief of negative feedback by MEK inhibition, which amplifies RAF activation and pan-RAFi engagement in normal tissues, oversuppressing MAPK signaling and limiting the therapeutic index. RAF/MEK glues constitute a distinct category of MEK inhibitors that stabilize RAF-MEK complexes and functionally suppress RAF. Although structural studies have captured these glues bound to both active and inactive RAF conformations, we show that their inhibitory activity stems from a spatial-trapping mechanism: we found that MEK is constitutively cytosolic, RAF/MEK glues sequester RAF in the cytosol, blocking its membrane recruitment and dimerization, steps essential for activation. In line with this mechanism, the RAF/MEK glue avutometinib, when combined with a pan-RAFi, was well tolerated at full dose and, critically, drove tumor regressions across multiple RAS-MUT models, achieving a 90% ORR compared with 0% using a conventional pan-RAFi + MEKi regimen in an insensitive RAS-MUT model. Tumor regressions corresponded with deeper MAPK pathway suppression by both pharmacodynamic and transcriptional metrics, without increased toxicity. Together, these findings reveal an unrecognized mechanism of RAF inactivation by RAF/MEK glues and show that substituting the MEKi with a RAF/MEK glue can overcome the therapeutic ceiling of current MAPK-targeting regimens, shifting outcomes from mostly stable disease to frequent tumor regressions. More broadly, this work establishes drug-induced proximity as a means to increase tumor selectivity by reprogramming the spatial and biochemical state of wild-type signaling effectors, thereby widening the therapeutic window for oncogenic pathway inhibition and providing a new paradigm for precision oncology.
利益披露 Disclosure
B. Gaire, None.. A. Orive-Ramos, None.. C. Adamopoulos, None.. B. Baars, None.. M. Desaunay, None.. E. Matenoglou, None. S. Coma, Verastem Oncology Employment. N. Gutierrez-Trejo, None.. K. Mohammed, None.. S. A. Aaronson, None.. J. Jin, None.. T. Martin, None.. E. Guccione, None. E. Gavathiotis, BaxGen Therapeutics Stock. BeanPod Biosciences Stock. Life Biosciences Stock. Comorin Therapeutics Stock. Stelexis Biosciences Stock. J. A. Pachter, Verastem Oncology Employment. P. I. Poulikakos, Verastem Oncology ). Enliven Therapeutics ). Nuvalent Inc Other, Consulting. Blueprint Medicines Other, Consulting. Belharra Therapeutics Other, Consulting.

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