决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Engineering CAR-T cells for solid tumors: Overcoming the microenvironment through integrated design and clinical translation.
CAR-T 细胞疗法在血液肿瘤中已取得显著的治疗效果,而其应用于实体恶性肿瘤仍受限于约9%的汇总客观缓解率。
CAR-T 细胞疗法在血液肿瘤中已取得显著的治疗效果,而其应用于实体恶性肿瘤仍受限于约9%的汇总客观缓解率。这一差距源于核心生物学障碍:抗原表达异质性、致密基质结构中的物理不可及性,以及通过表观遗传固定的转录程序驱动T细胞耗竭的免疫抑制微环境。2024年至2025年这一时期代表了一个关键转折点。经脑室内递送的靶向GD2的CAR-T细胞在H3K27M突变的弥漫性中线胶质瘤中实现了持久的完全缓解(包括一例持续超过30个月)。靶向CLDN18.2的satricabtagene autoleucel在晚期胃癌中显示出相对于医生选择方案的随机优效性(无进展生存期HR 0.37)。装备了显性负性TGF-β受体的靶向GPC3的CAR-T细胞在肝细胞癌中实现了50-57%的客观缓解率,代表较未装备的前代产品提高了三至四倍。这些突破反映了从效力驱动工程向基于韧性的设计的范式转变:通过自分泌IL-10和IL-15进行代谢装甲化,通过DNMT3A破坏和c-Jun过表达实现表观遗传保护,通过synNotch回路实现逻辑门控靶向,以及通过显性负性受体实现微环境屏蔽。除局部微环境外,对全身性神经内分泌-免疫失调的新认识进一步为CAR-T持久性和适应性考量提供了信息。本综述综合了机制见解、工程策略、临床证据和新兴平台(包括体内慢病毒CAR-T生成),这些构成了当前格局,并提出了下一代实体瘤CAR-T开发的分层框架,同时明确承认持续存在的局限性和未知因素。
Chimeric antigen receptor T-cell (CAR-T) therapy has produced remarkable therapeutic results in blood cancers, while its application to solid malignancies remains limited by a pooled objective response rate of approximately 9%. This gap stems from core biological obstacles: heterogeneous antigen expression, physical inaccessibility within dense stromal architectures, and immunosuppressive microenvironments that drive T-cell exhaustion through epigenetically fixed transcriptional programs. The period spanning 2024-2025 represents a pivotal turning point. GD2-targeting CAR-T cells delivered intracerebroventricularly achieved durable complete responses (including one sustained beyond 30 months) in H3K27M-mutated diffuse midline gliomas. CLDN18.2-targeting satricabtagene autoleucel demonstrated randomized superiority over physician's choice in advanced gastric cancer (progression-free survival HR 0.37). GPC3-targeting CAR-T cells armored with a dominant-negative TGF- receptor achieved objective response rates of 50-57% in hepatocellular carcinoma, representing a three- to four-fold improvement over unarmored predecessors. These breakthroughs reflect a paradigm shift from potency-driven engineering toward resilience-based design: metabolic armoring via autocrine IL-10 and IL-15, epigenetic protection through DNMT3A disruption and c-Jun overexpression, logic-gated targeting via synNotch circuits, and microenvironmental shielding through dominant-negative receptors. Beyond the local microenvironment, emerging recognition of systemic neuroendocrine-immune dysregulation further informs CAR-T persistence and fitness considerations. This review synthesizes the mechanistic insights, engineering strategies, clinical evidence, and emerging platforms, including in vivo lentiviral CAR-T generation, that define the current landscape, and proposes a tiered framework for next-generation solid tumor CAR-T development, while explicitly acknowledging the limitations and unknowns that persist.
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