PO.ET09.03 · 实验与分子治疗

一种 PROTAC 泛 KRAS 降解剂在 KRAS G12D 同基因小鼠模型中的临床前疗效及同期免疫肿瘤微环境变化

Preclinical efficacy of a PROTAC pan-KRAS degrader in a KRAS G12D syngeneic mouse model and concurrent immune tumor microenvironment changes

海报缩略图:一种 PROTAC 泛 KRAS 降解剂在 KRAS G12D 同基因小鼠模型中的临床前疗效及同期免疫肿瘤微环境变化
编号 4604 展板 14 时间 4/21 09:00–12:00 区域 Section 18 主讲 Jason Berk, BS;PhD
分会场 Proximity-Induced Drug Discovery 1
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作者与单位 Authors & Affiliations

Jason M. Berk, Andrea Lopez-Arroyo, Dana M. Klug, John P. Caldwell, Peter Hegan, Samantha Andella, Jessica Kraus, Amanda Chapman, Jennifer Pizzano, Mark Bookbinder, Gregory Cadelina, Debbie Gordon, Kim Davenport, Wendy Wu, Madeline A. Dorso, Morena Scopel, Rebecca Conrad, William Corwin, Goutham Pattabiraman, Keith R. Hornberger, Angela Cacace, Ignacio J. Juncadella, Kathryn D. Smith

Arvinas Operations, Inc., New Haven, CT

摘要 Abstract

中文摘要
KRAS 错义突变约占癌症的 20%。尽管已有 2 种 KRAS 抑制剂被批准用于 KRAS G12C 突变疾病的患者,但耐药会迅速出现;此外,尚无获批药物靶向其他 KRAS 突变体。我们开发了一种工具性蛋白降解靶向嵌合体(PROTAC)泛 KRAS 降解剂,可诱导 KRAS 的泛素化及随后的蛋白酶体降解;它能强效、选择性地降解活性和非活性形式的 KRAS。选择性降解 KRAS 而不影响 HRAS 和 NRAS,可能比当前靶向所有 RAS 亚型的在研 RAS 抑制剂产生更高的治疗指数。此外,PROTAC 泛 KRAS 降解剂的迭代活性可能克服由 KRAS 上调驱动的耐药,这是一种常见的 RAS 抑制剂耐药机制。突变型 KRAS 是免疫抑制性肿瘤微环境(TME)的既定内在驱动因素,可通过 KRAS 抑制得以缓解,提示其与免疫检查点阻断(ICB)存在潜在协同。我们在 KRAS G12D 小鼠结直肠癌模型 CT-26 中比较了 PROTAC 驱动的 KRAS 降解与 RAS 抑制(±ICB,采用抗程序性死亡-1 抗体)的抗肿瘤活性及其对 TME 的影响。我们的 PROTAC 强效降解突变型 KRAS,并在球状体中表现出与临床 RAS(ON) 抑制剂相当的抗增殖效应。在 CT-26 模型中口服给药 PROTAC 泛 KRAS 降解剂作为单药,导致了显著的 KRAS 降解(>85%)、强效且持久的丝裂原活化蛋白激酶通路活性抑制,以及显著的肿瘤生长抑制,包括完全缓解(CR)。相较于 RAS(ON) 抑制剂加 ICB,PROTAC 泛 KRAS 降解剂联合 ICB 导致了更深度、更迅速的肿瘤消退,带来更高的 CR 率和更长的治疗后生存期。为表征 TME 变化,通过批量 RNA 测序(RNAseq)和肿瘤浸润白细胞(TIL)分析,比较了用 PROTAC 泛 KRAS 降解剂或 RAS(ON) 抑制剂(±ICB)处理的肿瘤。RNAseq 显示两种药物均强效抑制 RAS 通路,导致肿瘤内在和外在分子通路的基因表达改变。KRAS 降解对与抗肿瘤免疫和免疫激活相关的关键免疫相关通路表现出差异性的正向富集,提示 PROTAC 特有的免疫 TME 变化可能有助于其抗肿瘤效应。TIL 分析显示 PROTAC 处理后免疫群体(包括细胞毒性 T 细胞和髓系细胞)发生具有统计学意义的变化。所观察到的迅速肿瘤消退,结合更深度的免疫应答和更长的生存期,提示在免疫功能健全的肿瘤模型系统中,PROTAC 泛 KRAS 降解剂比 RAS(ON) 抑制剂更有效,且更有利于与 ICB 联合。
查看英文原文 English abstract
Missense mutations in KRAS occur in ~20% of cancers. Although 2 KRAS inhibitors have been approved for patients with KRAS G12C-mutated disease, resistance quickly develops; moreover, no approved agents target other KRAS mutants. We developed a tool PROteolysis TArgeting Chimera (PROTAC) pan-KRAS degrader that induces the ubiquitination and subsequent proteasomal degradation of KRAS; it potently and selectively degrades active and inactive KRAS forms. Selective KRAS degradation that spares HRAS and NRAS may yield a higher therapeutic index than current investigational RAS inhibitors targeting all RAS isoforms. Additionally, the iterative activity of the PROTAC pan-KRAS degrader may overcome resistance driven by KRAS upregulation, a common RAS inhibitor resistance mechanism. Mutant KRAS is an established intrinsic driver of an immunosuppressive tumor microenvironment (TME), which can be alleviated by KRAS inhibition, suggesting potential synergy with immune checkpoint blockade (ICB). We compared the antitumor activity of PROTAC-driven KRAS degradation vs RAS inhibition (± ICB with an anti-programmed death-1 antibody) and the effects on TME in a KRAS G12D murine colorectal cancer model, CT-26. Our PROTAC potently degraded mutant KRAS and exhibited antiproliferative effects in spheroids that were comparable to a clinical RAS(ON) inhibitor. Oral administration of the PROTAC pan-KRAS degrader as a single agent in the CT-26 model led to substantial KRAS degradation (>85%), robust and durable suppression of mitogen-activated protein kinase pathway activity, and substantial tumor growth inhibition, including complete responses (CRs). The PROTAC pan-KRAS degrader combined with ICB led to deeper and more rapid tumor regressions, resulting in a higher rate of CRs and longer post-treatment survival, compared with the RAS(ON) inhibitor plus ICB. To characterize TME changes, tumors treated with the PROTAC pan-KRAS degrader or RAS(ON) inhibitor (± ICB) were compared by bulk RNA sequencing (RNAseq) and tumor-infiltration leukocyte (TIL) analysis. RNAseq revealed strong RAS pathway suppression by both agents, leading to altered gene expression in tumor-intrinsic and extrinsic molecular pathways. KRAS degradation demonstrated a differential positive enrichment for key immune-related pathways associated with antitumor immunity and immune activation, suggesting PROTAC-specific immune TME changes may contribute to its antitumor effects. TIL analysis demonstrated statistically significant changes in immune populations, including cytotoxic T cells and myeloid cells, after PROTAC treatment. The observed rapid tumor regressions, paired with deeper immune response and longer survival, suggest that the PROTAC pan-KRAS degrader is more efficacious and permissive to ICB combination than a RAS(ON) inhibitor in an immunocompetent tumor model system.
利益披露 Disclosure
J. M. Berk, Arvinas Employment, Stock. A. Lopez-Arroyo, Arvinas Employment, Stock. D. M. Klug, Arvinas Employment, Stock. J. P. Caldwell, Arvinas Employment, Stock. P. Hegan, Arvinas Employment, Stock. S. Andella, Arvinas Employment, Stock. J. Kraus, Arvinas Employment, Stock. A. Chapman, Arvinas Employment, Stock. J. Pizzano, Arvinas Employment, Stock. M. Bookbinder, Arvinas Employment, Stock. G. Cadelina, Arvinas Employment, Stock. D. Gordon, Arvinas Employment, Stock. K. Davenport, Arvinas Employment, Stock. W. Wu, Arvinas Employment, Stock. M. A. Dorso, Arvinas Employment, Stock. M. Scopel, Arvinas Employment, Stock. R. Conrad, Arvinas Employment, Stock. W. Corwin, Arvinas Employment, Stock. G. Pattabiraman, Arvinas Employment, Stock. K. R. Hornberger, Arvinas Employment, Stock. A. Cacace, Arvinas Employment, Stock. I. J. Juncadella, Arvinas Employment, Stock. K. D. Smith, Arvinas Employment, Stock.

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