靶向巨噬细胞的癌症治疗策略
Macrophage-directed therapeutic strategies in cancer.
肿瘤相关巨噬细胞(TAMs)是肿瘤微环境的主要组成部分,具有显著的功能可塑性,根据所处的微环境信号,既可表现为促进肿瘤进展的免疫抑制细胞,也可表现为支持抗肿瘤免疫的免疫刺激细胞。
英文原题:Tempered signal strength via low-dose MEK inhibition optimizes therapeutic performance of engineered T cells.
这些发现突显了适度激活是工程化T细胞长期性能的关键决定因素。低剂量MEKi为精细调控T细胞激活和增强ACT疗效提供了一种治疗工具。
优化T细胞激活强度正成为改善过继性细胞治疗(ACT)的关键因素。我们此前报道,来自一名转移性黑色素瘤患者的新抗原特异性T细胞受体(TCR)克隆型在初始以中等水平激活时,表现出对反复刺激的更强耐受性。
基于这些观察结果,我们在早期激活阶段应用短暂、低剂量的MEK抑制(MEKi)来精细调节T细胞信号强度。我们在体外评估了这一联合策略,使用工程化表达患者来源新抗原特异性TCR的CD8+ T细胞与CAR-T细胞、双特异性T细胞衔接器以及未经工程化的TIL(肿瘤浸润淋巴细胞)共培养。在体内,我们通过静脉注射TCR-T细胞并全身给予低剂量MEKi的异种移植模型中评估了疗效。
MEKi 共处理诱导了一种更为缓和的激活特征,在强刺激下增强了 T 细胞增殖、适应性和持久性。这些效应在工程化 T 细胞以及原代黑色素瘤来源 TIL 的多种体外和体内模型中均一致。MEKi 抑制了促炎性 T 细胞激活特征,最显著的是减少肿瘤坏死因子(TNF)分泌,其机制由关键转录调节因子活化 B 细胞核因子 kappa 轻链增强子(NF B)和活化 T 细胞核因子(NFAT)的协调且选择性破坏所驱动,同时部分保留激活蛋白 1(AP-1)活性。
BACKGROUND: Optimizing T cell activation strength is emerging as a critical factor in improving adoptive cellular therapy (ACT). We previously reported that neoantigen-specific T cell receptor (TCR) clonotypes from a patient with metastatic melanoma exhibited enhanced resilience to repeated stimulation when initially activated at moderate levels. METHODS: Building on these observations, we applied transient, low-dose MEK inhibition (MEKi) to fine-tune T cell signal strength during early activation. We evaluated this combinatorial strategy in vitro using co-cultures of CD8+ T cells engineered with patient-derived neoantigen-specific TCRs, alongside chimeric antigen receptor-T cells, bispecific T cell engagers, and non-engineered tumor-infiltrating lymphocytes (TILs). In vivo efficacy was evaluated in a xenograft model with intravenous TCR-T cell transfer and systemic low-dose MEKi. RESULTS: MEKi co-treatment induced a more tempered activation profile that enhanced T cell proliferation, fitness, and persistence under strong stimulation. These effects were consistent across various in vitro and in vivo models for engineered T cells as well as primary melanoma-derived TILs. MEKi dampened the pro-inflammatory T cell activation profile, most notably diminishing tumor necrosis factor (TNF) secretion, mechanistically driven by coordinated and selective disruption of the key transcriptional regulators nuclear factor kappa-light-chain-enhancer of activated B cells (NF B) and nuclear factor of activated T cells (NFAT) while partly preserving activator protein 1 (AP-1) activity. CONCLUSION: These findings highlight moderate activation as a critical determinant of engineered T cell long-term performance. Low-dose MEKi offers a therapeutic tool for fine-tuning T cell activation and enhancing ACT efficacy.
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