PO.CL05.02 · 临床研究
生成对 EZH2 抑制剂耐药的 CAR-T 细胞以维持功能用于联合疗法
Generating EZH2-inhibitor resistant CAR-T cells to sustain function for combination therapy
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:EZH2 是一种组蛋白甲基转移酶,也是 PRC2 复合物的核心组分,常在肿瘤中过表达并促进免疫逃逸。在临床前模型中,EZH2 抑制已被证明可将癌细胞重编程为更具免疫原性的状态,并增强淋巴细胞向肿瘤的浸润。这些发现引发了将 EZH2 抑制剂与过继细胞疗法联合应用的日益增长的兴趣。EPZ-6438(Tazemetostat)是一种强效 EZH2 抑制剂(EZH2i),已获 FDA 批准用于上皮样肉瘤和滤泡性淋巴瘤,并正在多种实体瘤和液体瘤中进行研究。然而,EZH2 对于维持 T 细胞的表观遗传稳定性和功能也至关重要。在此,我们研究了这一治疗上的权衡,并表明尽管 EZH2i 可能增强肿瘤免疫原性,但它会损害 CAR-T 细胞的长期持久性。
方法:用 CD3/CD28/CD2 活化人 CD8⁺/CD3⁺ T 细胞,并在第 0 天用 CD19 特异性 CAR 慢病毒载体转导。在第 3 天,用 CRISPR/Cas9 编辑 CAR-T 细胞,将 EZH2i 耐药突变引入内源性 EZH2 基因。在第 9 天,将 CAR-T 细胞与核 RFP 标记的 CD19⁺ 靶细胞在有或无 0、0.5、1、2 μM EZH2i 的条件下共培养。使用自动成像每 4 小时测量一次肿瘤细胞计数,并每 48 小时添加新鲜肿瘤细胞和药物,直至 T 细胞失去对肿瘤的控制。在 OT1 T 细胞小鼠系统中用 RFP 标记的 SIINFEKL+ B16F10 黑色素瘤细胞重复此实验。同时,将有或无慢性暴露于 1 μM EZH2i 培养的 CD8⁺/CD3⁺ T 细胞用于表型和功能分析。通过免疫印迹测量组蛋白 H3K27me3 水平以及 PD-1、CTLA-4 和 LAG-3 表达。通过流式细胞术测量多功能性(IL-2⁺/IFN-gamma⁺/GZMB⁺)。
结果:EZH2i 处理未损害 CAR-T 对肿瘤细胞的初始细胞毒性。然而,延长共培养显示在第四轮共培养后肿瘤控制显著下降。EZH2i 处理的 WT CAR-T 细胞平均维持肿瘤清除 5.7 个杀伤轮次,而未处理对照为 14.0 个轮次(p=0.0002,n=3)。免疫印迹证实慢性 EZH2i 暴露后抑制性组蛋白标记 H3K27me3 丧失(p<0.0001,n=8),同时耗竭标志物表达升高:PD-1(1.6 倍,p=0.0502,n=8)、CTLA-4(7.4 倍,p<0.0001,n=6)和 LAG-3(53.3 倍,p=0.0198,n=6)。流式细胞术进一步显示多功能(IL-2⁺/IFN-gamma⁺/GZMB⁺)CD8⁺ T 细胞频率降低,并向耗竭表型转变。
结论:我们证明,虽然 EZH2i 不损害 CAR-T 细胞的短期功能,但延长暴露会显著降低其持久性和抗肿瘤疗效。为克服这一局限,我们正在开发工程化改造对 EZH2i 耐药的 CAR-T 细胞的策略,以实现未来同时利用 EZH2 抑制和过继性 T 细胞疗法的联合疗法。
查看英文原文 English abstract
Background: EZH2, a histone methyltransferase and core component of the PRC2 complex, is often overexpressed in tumors and contributes to immune evasion. EZH2 inhibition has been shown to reprogram cancer cells toward a more immunogenic state and enhance lymphocyte infiltration into tumors in preclinical models. These findings have led to growing interest in combining EZH2 inhibitors with adoptive cell therapies. EPZ-6438 (Tazemetostat), a potent EZH2 inhibitor (EZH2i), is FDA-approved for epithelioid sarcoma and follicular lymphoma and is under investigation in multiple solid and liquid tumors. However, EZH2 is also critical for preserving T cell epigenetic stability and function. Here, we investigate this therapeutic tradeoff and show that while EZH2i may enhance tumor immunogenicity it impairs long-term CAR-T cell persistence.
Methods: Human CD8⁺/CD3⁺ T cells were activated with CD3/CD28/CD2 and transduced on day 0 with a CD19-specific CAR lentiviral vector. On day 3, CAR-T cells were edited with CRISPR/Cas9 to introduce EZH2i-resistant mutations into the endogenous EZH2 gene. On day 9, CAR-T cells were co-cultured with nuclear RFP-labeled CD19⁺ target cells with or without 0, 0.5, 1, 2 μM EZH2i. Tumor cell count was measured every 4 hours using automated imaging, and fresh tumor cells and drug were added every 48 hours until loss of T cell tumor control. This was repeated in the OT1 T cell murine system with RFP-labeled SIINFEKL + B16F10 melanoma cells. In parallel, CD8⁺/CD3⁺ T cells cultured with or without chronic exposure to 1 μM EZH2i were used for phenotype and functional analysis. Histone H3K27me3 levels and PD-1, CTLA-4, and LAG-3 expression were measured by immunoblot. Polyfunctionality (IL-2⁺/IFN-gamma⁺/GZMB⁺) was measured via flow cytometry.
Results: EZH2i treatment did not impair initial CAR-T cytotoxicity against tumor cells. However, prolonged co-culture revealed a significant decline in tumor control past the fourth round of co-culturing. EZH2i-treated WT CAR-T cells sustained tumor clearance for an average of 5.7 killing rounds compared to 14.0 rounds in untreated controls (p=0.0002, n=3). Immunoblots confirmed loss of the repressive histone mark H3K27me3 following chronic EZH2i exposure (p<0.0001, n=8), alongside elevated expression of exhaustion markers: PD-1 (1.6-fold, p=0.0502, n=8), CTLA-4 (7.4-fold, p<0.0001, n=6), and LAG-3 (53.3-fold, p=0.0198, n=6). Flow cytometry further revealed a reduced frequency of polyfunctional (IL-2⁺/IFN-gamma⁺/GZMB⁺) CD8⁺ T cells and a shift toward an exhausted phenotype.
Conclusions: We demonstrate that while EZH2i does not impair the short-term function of CAR-T cells, prolonged exposure significantly reduces persistence and anti-tumor efficacy. To overcome this limitation, we are developing strategies to engineer CAR-T cells resistant to EZH2i, enabling future combination therapies that harness both EZH2 inhibition and adoptive T-cell therapy.
利益披露 Disclosure
K. Bronson, None.