PO.CL05.03 · 临床研究
以ACR-2316(一种潜在的首创及同类最佳WEE1/PKMYT1抑制剂)联合抗PD-L1治疗可诱导完全肿瘤消退并产生持久免疫记忆
Treatment with ACR-2316, a potential first- and best-in-class WEE1/PKMYT1 inhibitor, combined with anti-PD-L1 induces complete tumor regression with durable immune memory
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
引言:ACR-2316是一种强效且选择性的双重WEE1/PKMYT1抑制剂,利用Acrivon的生成式磷酸化蛋白质组学AP3平台合理设计而成。目前正在AP3识别的实体瘤类型中推进一项1期临床研究,ACR-2316经工程设计以获得卓越的单药活性和高选择性,从而在临床前体内模型中产生强效的DNA损伤和完全肿瘤消退。本研究表明,ACR-2316不仅损伤核基因组和线粒体基因组,还激活先天免疫系统,当与PD-L1阻断联合使用时,可在小鼠中导致完全肿瘤消退和持久免疫记忆。
结果:为研究ACR-2316激活免疫的机制,我们对ACR-2316处理小鼠的异种移植肿瘤进行了基于AP3的蛋白质组学分析,观察到先天免疫信号通路(包括I型干扰素)的强烈上调。这些发现在细胞水平上得到进一步验证,ACR-2316处理导致双链RNA和DNA感应机制RIG-I、MDA5和cGAS的活化。此外,我们发现ACR-2316处理后存在线粒体DNA片段化的证据,提示这可能作为一个额外的免疫感应器。在同基因结直肠癌模型中,ACR-2316单药治疗产生剂量依赖性的肿瘤生长抑制。与抗PD-L1联合时,ACR-2316表现出显著的协同作用,导致小鼠完全肿瘤消退。为评估该应答的持久性,将肿瘤细胞重新注射到既往接受联合治疗的无瘤小鼠中。所有动物在四次连续肿瘤再攻击中保持无瘤超过200天,展示出极为稳健和持久的免疫记忆。为剖析这种持久免疫的机制,我们在肿瘤再攻击小鼠中系统性地耗竭关键免疫细胞亚群。单独耗竭CD4+或CD8+ T细胞均未导致肿瘤生长,而共同耗竭这两个亚群则导致肿瘤形成。这表明ACR-2316与抗PD-L1联合治疗产生的免疫记忆共同依赖于CD4+和CD8+ T细胞亚群。
结论:我们的发现揭示了ACR-2316在诱导肿瘤内在DNA损伤和通过多种免疫感应机制促进免疫活化方面的双重作用,从而产生共同依赖于CD4+和CD8+ T细胞亚群的永久免疫记忆。这为在临床环境中将ACR-2316与免疫检查点抑制剂联合使用提供了有力依据。ACR-2316正处于1期单药试验中,已在跨实体瘤的剂量递增过程中显示出初步临床活性,出现肿瘤缩小和一例确认的部分缓解,这些实体瘤经我们的AP3平台预测对ACR-2316敏感。
查看英文原文 English abstract
Introduction: ACR-2316 is a potent and selective dual WEE1/PKMYT1 inhibitor rationally designed using Acrivon's generative phosphoprotemics AP3 platform. Currently advancing in a Phase 1 clinical study in AP3-identified solid tumor types, ACR-2316 was engineered for superior single-agent activity and high selectivity resulting in potent DNA damage and complete tumor regression across preclinical in vivo models. This study demonstrates that ACR-2316 not only damages the nuclear and mitochondrial genomes, but also stimulates the innate immune system, leading to complete tumor regression and lasting immune memory in mice when combined with PD-L1 blockade.
Results: To investigate the mechanisms of immune activation by ACR-2316, we performed AP3-based proteomic profiling of xenograft tumors from ACR-2316 treated mice and observed strong upregulation of innate immune signaling pathways, including type I interferon. These findings were further validated at the cellular level, where ACR-2316 treatment led to the activation of double stranded RNA and DNA sensing machinery RIG-I, MDA5 and cGAS. Furthermore, we found evidence of mitochondrial DNA fragmentation with ACR-2316 treatment, suggesting that this may serve as an additional immune sensor.In a syngeneic colorectal cancer model, ACR-2316 monotherapy resulted in dose-dependent tumor growth inhibition. In combination with anti-PD-L1, ACR-2316 exhibited striking synergy, leading to complete tumor regression in mice. To assess the durability of this response, tumor cells were re-injected into tumor-free mice that were previously treated with the combination therapy. All animals remained tumor-free for over 200 days through four sequential tumor re-challenges, demonstrating strikingly robust and durable immune memory. To dissect the mechanism of this durable immunity, we systematically depleted key immune cell subsets in tumor re-challenged mice. While depletion of either CD4 + or CD8 + T cells alone did not enable tumor growth, co-depletion of both subsets resulted in tumor formation. This suggests that the immune memory generated by the combination treatment of ACR-2316 and anti-PD-L1 is co-dependent on both CD4 + and CD8 + T cell subsets.
Conclusions: Our findings reveal the dual role of ACR-2316 in inducing tumor intrinsic DNA damage and promoting immune activation through multiple immune sensing mechanisms, resulting in permanent immune memory co-dependent on CD4+ and CD8+ T cell subsets. This provides a strong rationale for combining ACR-2316 with immune checkpoint inhibitors in the clinical setting. ACR-2316 is in a phase 1 monotherapy trial and has already shown initial clinical activity with tumor shrinkage and a confirmed partial response during dose escalation across solid tumors predicted by our AP3 platform to be sensitive to ACR-2316.
利益披露 Disclosure
T. Dubash,
Acrivon Therapeutics Inc. Employment.
J. Baddour-Sousounis,
Acrivon Therapeutics Inc. Employment.
A. Elbakry,
Acrivon Therapeutics Inc. Employment.
J. Hopkins,
Acrivon Therapeutics Inc. Employment.
S. Kumar,
Acrivon Therapeutics Inc. Employment.
Y. Spring Liu,
Acrivon Therapeutics Inc. Employment.
A. Youssef,
Acrivon Therapeutics Inc. Employment.
K. Rappard,
Acrivon Therapeutics Inc. Employment.
I. Arribas Diez,
Acrivon AB Employment.
G. Mista,
Acrivon AB Employment.
M. Isaksson,
Acrivon AB Employment.
F. Santana,
Acrivon Therapeutics Inc. Employment.
L. Romero, None.
Z. Best,
Acrivon Therapeutics Inc. Employment.
N. Lipjankic,
Acrivon AB Employment.
A. Alves,
Acrivon Therapeutics Inc. Employment.
D. García-López, None.
P. Lombardo,
Acrivon Therapeutics Inc. Employment.
C. Yang,
Acrivon Therapeutics Inc. Employment.
E. Ahrman,
Acrivon AB Employment.
V. Siino,
Acrivon AB Employment.
M. E. Jakobsson,
Acrivon AB Employment.
H. Nilsson,
Acrivon AB Employment.
A. Murshid,
Acrivon Therapeutics Inc. Employment.
L. Shi,
Acrivon Therapeutics Inc. Employment.
C. Wigerup,
Acrivon AB Employment.
M. Shipitsin,
Acrivon Therapeutics Inc. Employment.
J. Jung,
Acrivon Therapeutics Inc. Employment.
D. Proia,
Acrivon Therapeutics Inc. Employment.
K. Masson,
Acrivon Therapeutics Inc. Employment.
P. Blume-Jensen,
Acrivon Therapeutics Inc. Employment.