PO.ET03.03 · 实验与分子治疗

胆管癌对SFK抑制剂NXP900的耐药以IL13RA2-AKT信号为特征,可通过联合治疗加以克服

Resistance to the SFK inhibitor NXP900 in cholangiocarcinoma is characterized by IL13RA2-AKT signaling and can be overcome by combination therapy

海报缩略图:胆管癌对SFK抑制剂NXP900的耐药以IL13RA2-AKT信号为特征,可通过联合治疗加以克服
编号 7124 展板 13 时间 4/22 09:00–12:00 区域 Section 14 主讲 Shelby Yee, MD
分会场 Novel Strategies to Reverse Drug Resistance
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作者与单位 Authors & Affiliations

Shelby K. Yee1, Hendrien Kuipers1, Danielle M. Carlson2, Jack W. Sample1, Enis Ozmert1, Hidemi Nishi1, Erik Jessen3, Dong-Gi Mun4, Aushinie M. Abeynayake2, Jennifer L. Tomlinson1, Amro M. Abdelrahman1, Nathan W. Werneburg2, Binbin Li2, Mitesh J. Borad5, Mark J. Truty1, Sumera I. Ilyas2, Gregory J. Gores2, Rory L. Smoot1

1Department of Surgery, Mayo Clinic, Rochester, MN,2Department of Gastroenterology and Hepatology, Mayo Clinic, Rochester, MN,3Department of Biomedical Statistics and Informatics, Mayo Clinic, Rochester, MN,4Department of Laboratory Medicine and Pathology, Mayo Clinic, Rochester, MN,5Department of Hematology-Oncology, Mayo Clinic Cancer Center, Phoenix, AZ

摘要 Abstract

中文摘要
引言:Src家族激酶(SFKs)在肿瘤增殖、存活和转移中发挥关键作用。NXP900是一种高选择性SFK抑制剂,具有新颖的作用机制,可将SFKs锁定在封闭的抑制构象中,从而持续抑制其催化和非催化功能,这与达沙替尼等其他SFK抑制剂不同。NXP900治疗晚期实体瘤患者的I期临床试验正在进行中。我们的临床前研究显示,NXP900通过降低YAP、RAF-MAP和PI3K-AKT信号,在胆管癌(CCA)中具有治疗疗效。对CCA患者来源异种移植物的多组学分析(RNA-seq、蛋白质组学、磷酸化蛋白质组学)提示AKT通路激活参与了NXP900的原发性耐药。通过长期亚致死剂量递增产生的NXP900耐药CCA细胞系在多组学分析中显示出强烈的IL13RA2-AKT特征。因此,我们假设IL13RA2-AKT信号是NXP900耐药的一种机制。我们旨在阐明这一机制,并证明联合靶向IL13RA2或AKT可使肿瘤对NXP900治疗重新敏感。 方法:将HuCCT1或HuCCT1耐药(HuCCT1-R)细胞双侧注射至NOD/SCID小鼠的侧腹,使其生长3个月后收集肿瘤并进行分析。比较HuCCT1和HuCCT1-R组之间的肿瘤移植和生长。为阐明获得性NXP900耐药的机制,采用靶向IL13RA2的siRNA以及与pan-AKT抑制剂capivasertib的联合处理进行体外治疗研究。 结果:与亲本HuCCT1细胞系相比,HuCCT1-R细胞系表现出更高的肿瘤移植率并形成显著更大的肿瘤,表明获得性耐药伴随成瘤潜能增强。在HuCCT1-R细胞中沉默IL13RA2导致细胞增殖显著降低,并部分恢复了对NXP900治疗的敏感性。免疫印迹分析显示磷酸化AKT(Thr308)相应降低,与下游PI3K-AKT信号受抑制一致。此外,HuCCT1-R细胞用AKT抑制剂capivasertib与NXP900联合处理,与任一单药相比导致细胞死亡显著增加、细胞增殖抑制更强,表明反应性增强、治疗疗效改善。 结论:这些发现证实了IL13RA2信号和PI3K-AKT通路在介导NXP900获得性耐药中的核心作用,与我们此前的多组学分析一致。重要的是,本研究确定了可能克服NXP900耐药的联合策略,支持开发以恢复耐药肿瘤治疗疗效的联合方法。
查看英文原文 English abstract
Introduction: Src Family Kinases (SFKs) have a crucial role in tumor proliferation, survival, and metastasis. NXP900 is a highly selective SFK inhibitor with a novel mechanism of action that locks SFKs in a closed, inhibited conformation, providing sustained suppression of catalytic and non-catalytic functions, which is distinct from other SFK inhibitors like dasatinib. A phase I clinical trial of NXP900 in patients with advanced solid tumors is ongoing. Our preclinical studies showed therapeutic efficacy of NXP900 in cholangiocarcinoma (CCA) through decreased YAP, RAF-MAP and PI3K-AKT signaling. Multiomic profiling (RNA-seq, proteomics, phosphoproteomics) of CCA patient-derived xenografts implicated AKT pathway activation in primary NXP900 resistance. NXP900-resistant CCA cell lines generated via prolonged sublethal dose escalation showed a strong IL13RA2-AKT signature on multiomic analysis. Thus, we hypothesized that IL13RA2-AKT signaling was a mechanism of NXP900 resistance. We aimed to define this mechanism and demonstrate that the combinatorial targeting of IL13RA2 or AKT resensitizes to NXP900 treatment. Methods: HuCCT1 or HuCCT1-Resisant (HuCCT1-R) cells were injected bilaterally into the flanks of NOD/SCID mice and were allowed to grow for 3 months prior to tumor collection and analysis. Tumor engraftment and growth between HuCCT1 and HuCCT1-R groups were compared. To delineate the mechanisms for acquired NXP900 resistance, in-vitro treatment studies were performed using siRNAs targeting IL13RA2 as well as combination treatment with capivasertib, a pan-AKT inhibitor. Results: The HuCCT1-R cell line exhibited a higher rate of tumor engraftment and formed significantly larger tumors compared to the parental HuCCT1 cell line, indicating enhanced tumorigenic potential associated with acquired resistance. Silencing of IL13RA2 in HuCCT1-R cells resulted in pronounced reduction of cell proliferation and partially restored sensitivity to NXP900 treatment. Immunoblot analysis demonstrated a corresponding reduction in phosphorylated AKT (Thr308), consistent with suppression of downstream PI3K-AKT signaling. Furthermore, combination treatment of HuCCT1-R cells with the AKT inhibitor capivasertib, and NXP900 led to a significant increase in cell death and a greater inhibition in cell proliferation compared to either agent alone, indicating enhanced responsiveness and improved therapeutic efficacy. Conclusion: These findings confirm the central role of IL13RA2 signaling and the PI3K-AKT pathway in mediating acquired resistance to NXP900, consistent with our previous multiomics analysis. Importantly, this study identifies combination strategies that may be able to overcome NXP900 resistance, supporting the development of combinatorial approaches to restore therapeutic efficacy in resistant tumors.
利益披露 Disclosure
S. K. Yee, None.. H. Kuipers, None.. D. M. Carlson, None.. J. W. Sample, None.. E. Ozmert, None.. H. Nishi, None.. E. Jessen, None.. D. Mun, None.. A. M. Abeynayake, None.. J. L. Tomlinson, None.. A. M. Abdelrahman, None.. N. W. Werneburg, None.. B. Li, None.. M. J. Borad, None.. M. J. Truty, None.. S. I. Ilyas, None.. G. J. Gores, None.. R. L. Smoot, None.

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