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CAR-T 细胞的制备与静电表面优化提高肝脏恶性肿瘤疗效

英文原题:Manufacturing and electrostatic surface optimization of CAR-T cells improve therapeutic efficacy in liver malignancies.

PubMed 2026/07/15(内容时间) Hepatol Commun Q1 · IF 6(JCR 2025)

研究概要

CAR-T 结构体的制造条件系统性优化与基于结构的电荷工程协同增强了对肝脏恶性肿瘤的治疗效果,为改善实体瘤 CAR-T 疗法提供了可转化的框架。

研究思路结论见上方概要

CAR-T 细胞疗法在血液系统恶性肿瘤中取得了显著成功,但在实体瘤(包括肝脏肿瘤)中疗效有限。T 细胞耗竭和持续性不足是主要障碍。我们假设,优化生产工艺和 CAR 结构设计可减少耗竭,并改善免疫健全小鼠原发性和转移性肝脏恶性肿瘤模型中的治疗结局。

我们系统比较了基于抗体的激活方法与基于磁珠的激活方法,评估它们对 T 细胞耗竭表型的影响。对逆转录病毒载体(RVV)的生产进行优化以用于小鼠 T 细胞转导,并评估载体稳定性与 T 细胞表型。在肝细胞癌模型中,使用靶向 GPC3 的 CAR-T 细胞,检测不同细胞因子条件对 T 细胞扩增、记忆表型及抗肿瘤疗效的影响。通过结构预测与静电场模拟,我们发现靶向 EpCAM 的 G8.8 scFv 中的高正电荷斑块(PCP)导致 CAR 聚集与强直信号。我们构建了电荷优化变体,并在免疫健全的结直肠癌肝转移模型中评估其治疗疗效。

抗体激活表现出更优的均一性和扩增,尽管初始耗竭标志物更高,但在第10天达到平衡,且不影响活力。转染后72小时收获的RVV产生了最佳滴度。RVV在冻融循环中保持稳定。在IL-2中添加IL-7显著增强了记忆表型,减少了耗竭,并改善了GPC3-CAR-T治疗中的肿瘤控制。G8.8 scFv的静电优化显著降低了强直信号,减少了T细胞耗竭,并增强了MC38-EpCAM模型中的抗肿瘤疗效。

展开英文摘要原文

BACKGROUND: Chimeric antigen receptor T-cell (CAR-T) therapy has achieved remarkable success in hematologic malignancies, yet demonstrates limited efficacy in solid tumors, including hepatic cancers. T-cell exhaustion and insufficient persistence represent major obstacles. We hypothesized that optimizing both manufacturing processes and CAR structural design could reduce exhaustion and enhance therapeutic outcomes in immunocompetent mouse models of primary and metastatic liver malignancies. METHODS: We systematically compared antibody-based versus bead-based activation methods, evaluating their effects on T-cell exhaustion phenotypes. Retroviral vector (RVV) production was optimized for murine T-cell transduction, assessing vector stability and T-cell phenotypes. Different cytokine conditions were tested for their impact on T-cell expansion, memory phenotypes, and anti-tumor efficacy using GPC3-targeted CAR-T cells in hepatocellular carcinoma models. Through structural prediction and electrostatic field simulation, we identified that high positive charge patches (PCP) in the EpCAM-targeting G8.8 scFv caused CAR clustering and tonic signaling. We generated charge-optimized variants and evaluated their therapeutic efficacy in an immunocompetent colorectal cancer liver metastasis model. RESULTS: Antibody activation showed superior homogeneity and expansion despite initially higher exhaustion markers, which equilibrated by day 10 without affecting viability. RVV harvested at 72 hours post-transfection yielded optimal titers. RVV remained stable through freeze-thaw cycles. IL-7 supplementation to IL-2 significantly enhanced memory phenotypes, reduced exhaustion, and improved tumor control in GPC3-CAR-T therapy. Electrostatic optimization of G8.8 scFv substantially reduced tonic signaling, decreased T-cell exhaustion, and enhanced anti-tumor efficacy in the MC38-EpCAM model. CONCLUSIONS: Systematic optimization of manufacturing conditions and structure-based charge engineering of CAR constructs synergistically enhance therapeutic efficacy against liver malignancies, providing a translatable framework for improving solid tumor CAR-T therapy.

论文信息

作者
Bian L、Zhu J、Wang H、Wu Z、Zheng Z、Peng Y、Liu Y、Fang X
单位
Department of Liver Surgery, Renji Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.China
期刊
Hepatology communications2026 Aug 1
原文标识
PubMed 42538870 · DOI 10.1097/HC9.0000000000000982