PO.ET03.08 · 实验与分子治疗

阐明并克服KRAS G12D突变肿瘤内在耐药机制的治疗策略

Elucidation and therapeutic strategies to overcome intrinsic resistance mechanisms in KRAS G12D-mutant tumors

海报缩略图:阐明并克服KRAS G12D突变肿瘤内在耐药机制的治疗策略
编号 1889 展板 22 时间 4/20 09:00–12:00 区域 Section 19 主讲 Ryo Sawada, MD
分会场 Targeting Drug Resistance 2: RAS Signaling
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作者与单位 Authors & Affiliations

Ryo Sawada, Tadaaki Yamada, Yuki Katayama, Koichi Takayama

Department of Pulmonary Medicine, Kyoto Prefectural University of Medicine, Kyoto, Japan

摘要 Abstract

中文摘要
[背景与目的] KRAS是一种小GTP酶,将信号从受体酪氨酸激酶传递至MAPK和PI3K通路,在细胞增殖和存活中发挥关键作用。致癌性KRAS突变导致下游信号的组成性激活,常见于胰腺癌、结直肠癌和肺癌。G12D变异在胰腺癌和结直肠癌中尤为普遍,也见于非小细胞肺癌,特别是从不吸烟者中。虽然共价KRAS G12C抑制剂的成功验证了KRAS作为可成药靶点,但KRAS G12D仍具挑战性。近期,选择性非共价抑制剂(如MRTX1133)已显示出强效的临床前疗效。然而,KRAS G12D抑制剂单药治疗的疗效仍然有限,这凸显了阐明并克服耐药机制的必要性。 [方法] 使用KRAS G12D突变的肺癌和胰腺癌细胞系(A427、SK-LU1、AsPC1、Panc1、T3M10和HPAF-II)评估MRTX1133单药及联合治疗的抗肿瘤效果。在体外,评估了三种联合方案:MRTX1133联合AXL抑制剂、MRTX1133联合AXL和FGFR1抑制剂、以及MRTX1133联合SHP2抑制剂。通过MTT法测定细胞活力,通过Western blot分析信号改变,通过流式细胞术评估凋亡。在体内,使用细胞来源异种移植(CDX)小鼠模型验证MRTX1133联合SHP2抑制剂的疗效。 [结果] MRTX1133单药在各细胞系中表现出不同的疗效。敲低或药理学抑制AXL(双联疗法)显著增强了MRTX1133的抗增殖效果。然而,部分细胞系出现ERK再激活,提示通路抑制不完全。进一步加入FGFR1抑制(三联疗法)有效抑制了ERK再激活,并显著改善抗肿瘤活性。此外,靶向SHP2等接头蛋白放大了治疗疗效,提示RTK下游的汇聚节点在耐药机制中发挥关键作用。虽然单独抑制SHP2的活性有限,但其与MRTX1133联合可阻止ERK再激活,并实现显著的生长抑制。 [讨论与结论] KRAS G12D突变肿瘤对MRTX1133的耐药由AXL和FGFR1激活驱动,可通过双联或三联联合治疗加以抑制。抑制SHP2等接头蛋白进一步提供了克服异质性RTK介导耐药的策略,支持靶向接头信号的联合方法。
查看英文原文 English abstract
[Background and Aim] KRAS, a small GTPase transmitting signals from receptor tyrosine kinases to MAPK and PI3K pathways, plays a pivotal role in cell proliferation and survival. Oncogenic KRAS mutations cause constitutive activation of downstream signaling and are common in pancreatic, colorectal, and lung cancers. The G12D variant is particularly prevalent in pancreatic and colorectal cancers and also occurs in non-small cell lung cancer, especially among never-smokers. While the success of covalent KRAS G12C inhibitors has validated KRAS as a druggable target, KRAS G12D remained challenging. Recently, selective non-covalent inhibitors such as MRTX1133 have shown potent preclinical efficacy. However, the efficacy of KRAS G12D inhibitor monotherapy remains limited, underscoring the need to clarify and overcome resistance mechanisms. [Method] KRAS G12D-mutant lung and pancreatic cancer cell lines (A427, SK-LU1, AsPC1, Panc1, T3M10, and HPAF-II) were used to evaluate the antitumor effects of MRTX1133 monotherapy and combination therapies. In vitro, three combinations were assessed: MRTX1133 plus an AXL inhibitor, MRTX1133 plus both AXL and FGFR1 inhibitors, and MRTX1133 plus a SHP2 inhibitor. Cell viability was determined by MTT assay, signaling alterations were analyzed by Western blotting, and apoptosis was evaluated by flow cytometry. In vivo, the efficacy of MRTX1133 combined with a SHP2 inhibitor was validated using cell-derived xenograft (CDX) mouse models. [Results] MRTX1133 monotherapy exhibited variable efficacy across cell lines. Knockdown or pharmacological inhibition of AXL (dual therapy) significantly enhanced the antiproliferative effects of MRTX1133. However, some cell lines showed ERK reactivation, indicating incomplete pathway suppression. Further addition of the FGFR1 inhibition (triple therapy) effectively suppressed ERK reactivation and markedly improved antitumor activity. Moreover, targeting adaptor proteins such as SHP2 amplified the therapeutic efficacy, suggesting that convergence nodes downstream of RTKs play a crucial role in resistance mechanisms. While SHP2 inhibition alone showed limited activity, its combination with MRTX1133 prevented ERK reactivation and achieved substantial growth suppression. [Discussion and Conclusion] Resistance to MRTX1133 in KRAS G12D-mutant tumors is driven by AXL and FGFR1 activation, which can be suppressed through dual or triple combination therapies. Inhibition of adaptor proteins such as SHP2 further provides a strategy to overcome heterogeneous RTK-mediated resistance, supporting combination approaches targeting adaptor signaling.
利益披露 Disclosure
R. Sawada, None. T. Yamada, Eli Lilly and Company ). Taiyo Kagaku Co. Ltd. ). Y. Katayama, None.. K. Takayama, None.

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