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:Chimeric Antigen Receptor-Immune Cell-Based Therapies for Clear Cell Renal Cell Carcinoma: Latest Advancements and Directions.
透明细胞肾细胞癌(ccRCC)约占肾细胞癌的75%,其特征是几乎普遍存在VHL失活,导致HIF持续稳定、代谢重编程以及免疫学上独特的肿瘤微环境(TME)。
透明细胞肾细胞癌(ccRCC)约占肾细胞癌的75%,其定义为VHL几乎普遍失活,由此导致HIF持续性稳定、代谢重编程以及免疫学特征独特的肿瘤微环境(TME)。尽管ccRCC以大量免疫浸润为特征,但这种浸润却矛盾地与不良预后相关,反映出TME为有效免疫治疗设置了相互关联的物理、免疫和代谢屏障。基于嵌合抗原受体(CAR)的疗法已彻底改变了血液系统恶性肿瘤的治疗,但其向ccRCC的转化遇到了重大障碍。靶向碳酸酐酶IX(CAIX)的首次人体试验受到在靶非肿瘤毒性和CAR免疫原性的限制——这些经验教训从根本上重塑了该领域。此后,CD70已成为主导性的临床靶点,其在超过80%的ccRCC中表达,而在正常组织中的分布高度受限。CTX130是一种异基因、经CRISPR-Cas9编辑的靶向CD70的CAR-T细胞产品,其I期COBALT-RCC试验提供了正式的概念验证,在重度预处理患者中实现81.3%的疾病控制,并获得至今已持续超过三年的持久完全缓解——这是已报道的任何CAR-T细胞产品在实体恶性肿瘤中的首例此类持续缓解。然而,持久缓解频率低以及CAR-T细胞持久性至第28天普遍丧失,凸显了仍存在重大障碍。在CD70之外,该领域已向多个平台多样化发展,包括CAR-自然杀伤(NK)细胞、CAR-自然杀伤T(NKT)细胞和CAR-巨噬细胞,每种平台各具独特的生物学优势。本综述综合了目前关于 ccRCC TME 的认识、基于 CAR 的疗法的临床前研究现状,以及来自 30 多项注册试验的新兴临床证据。我们讨论了靶抗原;克服 TME 屏障的工程策略,包括细胞因子武装、趋化因子受体共表达、开关受体和代谢重编程;以及合理的联合治疗策略。我们认为,优化的靶点选择、细胞工程、联合策略与生物标志物驱动的试验设计的协同融合,最终可能改善 ccRCC 患者的结局。然而,实现治愈仍是一个理想化的目标,必须首先克服重大障碍。
Clear cell renal cell carcinoma (ccRCC) accounts for approximately 75% of renal cell carcinomas and is defined by near-universal VHL inactivation, leading to constitutive HIF stabilisation, metabolic reprogramming, and an immunologically distinct tumour microenvironment (TME). Although ccRCC is characterised by abundant immune infiltration, this paradoxically correlates with poor prognosis, reflecting a TME that imposes interconnected physical, immunological, and metabolic barriers to effective immunotherapy. Chimeric antigen receptor (CAR)-based therapies have revolutionised the treatment of haematological malignancies, but their translation to ccRCC has encountered substantial hurdles. The first-in-human trial targeting carbonic anhydrase IX (CAIX) was limited by on-target off-tumour toxicity and CAR immunogenicity-lessons that fundamentally reshaped the field. CD70 has since emerged as the dominant clinical target, expressed in over 80% of ccRCCs with a highly restricted normal tissue distribution. The phase I COBALT-RCC trial of CTX130, an allogeneic CRISPR-Cas9-edited CD70-directed CAR-T cell product, provided formal proof of concept, achieving disease control in 81.3% of heavily pretreated patients and a durable complete response now exceeding three years-the first such sustained remission reported for any CAR-T cell product in a solid malignancy. Nevertheless, the low frequency of durable responses and universal loss of CAR-T cell persistence by day 28 underscore that major barriers remain. Beyond CD70, the field has diversified across multiple platforms, including CAR-natural killer (NK) cells, CAR-natural killer T (NKT) cells, and CAR-macrophages, each offering distinct biological advantages. This review synthesises current knowledge of the ccRCC TME, the preclinical landscape of CAR-based therapies, and emerging clinical evidence from more than 30 registered trials. We discuss target antigens; engineering strategies to overcome TME barriers, including cytokine armouring, chemokine receptor co-expression, switch receptors, and metabolic reprogramming; and rational combination approaches. We argue that the convergence of optimised target selection, cellular engineering, combination strategies, and biomarker-driven trial design may ultimately improve outcomes for patients with ccRCC. However, achieving a cure remains an aspirational goal, and significant barriers must first be overcome.
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