PO.CL05.07 · 临床研究
EGFR-TKI增强抗CD47抗体介导的巨噬细胞吞噬作用于EGFR突变型非小细胞肺癌
EGFR-TKI enhances anti-CD47 antibody-mediated macrophage phagocytosis in EGFR-mutant non-small cell lung cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:CD47作为一种"别吃我"信号,使肿瘤细胞得以逃避巨噬细胞介导的清除。EGFR突变型非小细胞肺癌(NSCLC)表现出CD47表达升高,通过抑制吞噬作用促进免疫逃逸。临床前研究提示,将第三代EGFR TKI与CD47阻断相结合可增强抗肿瘤免疫。在此,我们研究了将抗CD47抗体IMC-002与lazertinib联合以增强巨噬细胞吞噬作用的治疗潜力。
方法:采用qPCR、免疫印迹和流式细胞术分析EGFR突变型和野生型NSCLC细胞系、患者来源细胞(PDC)及TKI耐药衍生株的CD47表达。在一系列浓度范围内,用lazertinib和IMC-002单独或联合处理细胞。通过流式细胞术和活细胞成像(Incucyte)定量巨噬细胞吞噬作用。分析EGFR突变型NSCLC患者TKI治疗前后的单细胞RNA测序(scRNA-seq)数据集,以刻画CD47表达和耐药相关通路的变化。
结果:与野生型对照相比,EGFR突变型细胞系总体表现出更高的基线CD47表达。lazertinib处理在H1975细胞中诱导表面CD47表达呈剂量依赖性升高。lazertinib与IMC-002共处理在多株EGFR突变型细胞系及PDC中使巨噬细胞介导的吞噬作用呈相加至协同增加。在lazertinib上调表面CD47的细胞系中,IMC-002阻断引发的吞噬作用显著强于lazertinib单药,提示TKI暴露增加了靶点可及性,随后的抗体阻断通过阻断CD47-SIRPα信号并促进巨噬细胞介导的吞噬而产生协同作用。对EGFR突变型NSCLC患者第三代EGFR TKI治疗前后的scRNA-seq分析显示,在富集耐药持留细胞(drug-tolerant persister)特征(包括TGF-β、Wnt和YAP通路)的肿瘤簇内CD47表达升高,为联合治疗后增强的抗CD47抗体可及性和吞噬清除提供了额外解释。总体而言,EGFR-TKI暴露可增加肿瘤细胞上CD47的丰度和可及性,抗CD47抗体治疗与lazertinib协同以放大巨噬细胞介导的清除,支持采用联合策略改善EGFR突变型NSCLC抗肿瘤免疫的依据。
结论:lazertinib诱导CD47上调,并与IMC-002协同以增强巨噬细胞介导的对EGFR突变型NSCLC细胞的清除。这些发现为临床评估EGFR-TKI与抗CD47联合策略以改善EGFR突变型肺癌治疗疗效提供了机制依据。
查看英文原文 English abstract
Background: CD47, a “don't eat me” signal, enables tumor cells to evade macrophage-mediated clearance. EGFR-mutant non-small cell lung cancer (NSCLC) exhibits increased CD47 expression, facilitating immune evasion by inhibiting phagocytosis. Preclinical studies suggest that combining third-generation EGFR TKIs with CD47 blockade can enhance antitumor immunity. Here, we investigated the therapeutic potential of combining the anti-CD47 antibody IMC-002 with lazertinib to enhance macrophage phagocytosis.
Methods: EGFR-mutant and wild-type NSCLC cell lines, patient-derived cells (PDCs), and TKI-resistant derivatives were analyzed for CD47 expression by qPCR, immunoblotting, and flow cytometry. Cells were treated with lazertinib and IMC-002 individually or in combination across a concentration range. Macrophage phagocytosis was quantified by flow cytometry and live-cell imaging (Incucyte). Single-cell RNA sequencing (scRNA-seq) datasets from EGFR-mutant NSCLC patients before and after TKI treatment were analyzed to characterize changes in CD47 expression and resistance-associated pathways.
Results: EGFR-mutant cell lines showed overall higher baseline CD47 expression compared to wild-type controls. Lazertinib treatment induced a dose-dependent increase in surface CD47 expression in H1975 cells. Co-treatment with lazertinib and IMC-002 led to additive to synergistic increases in macrophage-mediated phagocytosis in multiple EGFR-mutant cell lines and in PDCs. In cell lines where lazertinib upregulated surface CD47, IMC-002 blockade elicited substantially greater phagocytosis than lazertinib alone, suggesting that TKI exposure increases target availability and that subsequent antibody blockade acts synergistically by abrogating CD47-SIRPalpha signaling and promoting macrophage-mediated engulfment. scRNA-seq analyses of EGFR-mutant NSCLC patients before and after third-generation EGFR TKI treatment revealed increased CD47 expression within tumor clusters enriched for drug-tolerant persister signatures, including TGF-beta, Wnt, and YAP pathways, providing additional explanations for enhanced anti-CD47 antibody accessibility and phagocytic clearance following combination treatment. Collectively, EGFR-TKI exposure can increase the abundance and accessibility of CD47 on tumor cells, and anti-CD47 antibody treatment synergizes with lazertinib to amplify macrophage-mediated clearance, supporting a rationale for a combination strategy to improve antitumor immunity in EGFR-mutant NSCLC.
Conclusion: Lazertinib induces CD47 upregulation and synergizes with IMC-002 to enhance macrophage-mediated clearance of EGFR-mutant NSCLC cells. These findings provide a mechanistic rationale for clinical evaluation of EGFR-TKI and anti-CD47 combination strategies to improve therapeutic efficacy in EGFR-mutant lung cancer.
利益披露 Disclosure
M. Ro, None..
S. Yang, None..
Y. Kim, None..
M. Lee, None..
E. Lee, None..
J. Lee, None..
M. Yun, None.
J. Park,
ImmuneOncia Therapeutics, Inc. Employment.
J. Choi,
ImmuneOncia Therapeutics, Inc. Employment.
H. Lee,
ImmuneOncia Therapeutics, Inc. Employment.
S. Kim,
ImmuneOncia Therapeutics, Inc. g., Board of Directors, non-salaried role).
H. Kim,
ImmuneOncia Therapeutics, Inc. g., Board of Directors, non-salaried role).
B. Cho,
AstraZeneca ).
Janssen ).
ImmuneOnica ).
Yuhan ).