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:Nanobody CAR-T cells in cancer: From molecular design to clinical translation.
嵌合抗原受体(CAR)-T细胞疗法已经彻底改变了血液系统恶性肿瘤的治疗。
嵌合抗原受体(CAR)-T细胞疗法已经彻底改变了血液系统恶性肿瘤的治疗。本综述概述了基于纳米抗体的CAR-T疗法,重点阐述单域抗体(VHH)设计的结构进展如何增强肿瘤靶向性、安全性和可制造性。使用单链可变片段(ScFv)的传统CAR仍然面临诸多问题,包括错误折叠、持续性信号传导、免疫原性以及难以识别某些肿瘤表位。采用VHH的纳米抗体CAR构成了一种紧凑、小型且高度选择性的肿瘤靶向替代方案。本综述分析了纳米抗体CAR-T细胞的分子结构、功能优势和临床应用。我们描述了其结构特征,包括溶解度、耐化学性和模块化,这些特征促进了双特异性、三价和逻辑门控CAR形式的先进开发。临床前研究证明,这些细胞在体外具有显著的细胞毒性、细胞因子释放升高,并在血液系统恶性肿瘤和实体瘤中成功实现体内肿瘤消退。早期临床试验,特别是基于BCMA(B细胞成熟抗原)的靶向策略,已呈现出令人鼓舞的安全性特征、持久性和抗肿瘤活性。尽管已取得如此多的进展,但仍存在若干局限性,如肿瘤异质性、免疫逃逸和T细胞耗竭等挑战。创新方法,如现货型异体CAR、装甲CAR、基于检查点阻断或疫苗的联合治疗以及合成生物学回路,有能力克服上述若干挑战。总体而言,纳米抗体CAR-T细胞代表了一个灵活且创新的平台,有望提高特异性、安全性和可及性,从而为其在血液肿瘤之外的精准肿瘤学中更广泛地整合铺平道路。
Chimeric antigen receptor (CAR)-T cell therapy has revolutionized the management of hematologic malignancies. This review provides an overview of nanobody-based CAR-T therapy, highlighting how structural advancements in single-domain antibody (VHH) design enhance tumor targeting, safety, and manufacturability. Traditional CARs utilizing single-chain variable fragments (ScFv) continue to encounter numerous issues, including misfolding, tonic signaling, immunogenicity, and the difficulty in identifying certain tumor epitopes. Nanobody-based CARs employing VHHs constitute a compact, small, and highly selective alternative for tumor targeting. This review analyzes the molecular architecture, functional advantages, and clinical utilizations of nanobody CAR-T cells. We describe the structural features, including solubility, chemical resistance, and modularity that facilitate the advanced development of bispecific, trivalent, and logic-gated CAR forms. Preclinical studies demonstrate significant cytotoxicity of cells in vitro, elevated cytokine release, and successful in vivo tumor regression in both hematologic malignancies and solid tumors. Early-phase clinical trials, particularly targeting approaches based on BCMA (B cell maturation antigen), have presented encouraging safety profiles, persistence, and antitumor activity. Although there has been so much advancement, there are several limitations, such as the challenge of tumor heterogeneity, immune evasion, and T cell exhaustion. Innovative approaches, such as off-the-shelf allogeneic CARs, armored CARs, combination therapy based on checkpoint blockade or vaccines, and synthetic biology circuits, have the capabilities for overcoming several challenges listed above. Overall, nanobody CAR-T cells represent a flexible and innovative platform, which has a likelihood of increasing specificity, safety, and accessibility, thus paving the way for their wider integration in precision oncology beyond hematologic cancers.
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