PO.IM01.07 · 免疫学

通过替代性CD3胞质结构域增强gammadelta CAR-T细胞功能

Enhancing gammadelta CAR T cell function through alternative CD3 cytoplasmic domains

海报缩略图:通过替代性CD3胞质结构域增强gammadelta CAR-T细胞功能
编号 143 展板 17 时间 4/19 02:00–05:00 区域 Section 7 主讲 Holger Weber, PhD
分会场 Alternative Cell Type and in Situ Cell Therapies
查看 PDF 下载 PDF 🔒 查看 / 下载完整 PDF 需登录并开通下载套餐 · 查看套餐 / 开通 AACR 官方页面

作者与单位 Authors & Affiliations

Philipp Metzger1, Marina Zintchenko2, Susana Minguet2, Cynthia Obodozie1, Holger Weber1

1Reaction Biology Europe GmbH, Freiburg, Germany,2Signaling Research Centres BIOSS and CIBSS; Department of Synthetic Immunology, Faculty of Biology, University of Freiburg, Freiburg, Germany

摘要 Abstract

中文摘要
Gamma delta(gammadelta)T细胞是一类兼具固有免疫和适应性免疫功能的独特淋巴细胞亚群。与传统的alphabeta T细胞不同,gammadelta T细胞以不依赖MHC的方式识别抗原。这使其能够检测肿瘤细胞上普遍表达的多种应激诱导配体。这一特性使gammadelta T细胞在癌症免疫治疗中尤为具有吸引力,特别是在肿瘤通过下调MHC分子逃避免疫监视的情况下。细胞工程领域的最新进展使得生成表达嵌合抗原受体(CAR)的gammadelta T细胞成为可能,从而将其天然的肿瘤识别能力与CAR的靶向特异性相结合。gammadelta CAR-T细胞相较于alphabeta CAR-T细胞具有多项优势,包括较低的移植物抗宿主病风险、适用于同种异体应用(“现货型”),以及因组织归巢特性而增强的实体瘤浸润能力。这些特性为将gammadelta CAR-T细胞作为一种新型癌症治疗手段进行研究提供了充分依据,并凸显了持续优化以充分发挥其治疗潜力的重要性。 本研究探索了改进CAR构建体胞内信号结构域的策略,重点关注gammadelta T细胞。CD3ζ结构域历来被用作CAR设计中的主要激活基序。然而,新出现的证据表明它可能并非对所有T细胞亚群都是最优的。因此,我们研究了替代性CD3亚基,特别是CD3delta、CD3ε和CD3gamma,作为CAR构建体中的胞内信号结构域。我们的体外数据显示,采用这些替代性CD3胞质尾部的CAR在激活和细胞毒性方面比传统的基于CD3ζ的CAR更为有效。对纳入替代性CD3亚基的alphabeta CAR-T细胞进行的体内验证已证明其具有增强的抗肿瘤疗效。为拓展这些发现,目前正在使用NALM-6_luc(表达荧光素酶)异种移植模型开展体内实验,该模型是评估新一代细胞疗法的成熟系统。这些实验旨在探究类似的益处是否适用于gammadelta CAR-T细胞。如果得到证实,这些结果将凸显利用替代性CD3信号结构域优化CAR-T细胞性能的潜力,尤其是在基于gammadelta T细胞的疗法中。 我们的发现为重新评估CAR构建体设计提供了有力依据,表明替代性CD3亚基可显著增强gammadelta CAR-T细胞在癌症治疗中的治疗潜力。
查看英文原文 English abstract
Gamma delta (gammadelta) T cells are a unique subset of lymphocytes that possess innate and adaptive immune functions. Unlike conventional alphabeta T cells, gammadelta T cells recognize antigens in an MHC-independent manner. This allows them to detect a wide range of stress-induced ligands that are commonly expressed on tumor cells. This property makes gammadelta T cells particularly attractive for cancer immunotherapy, especially in cases where tumors evade immune surveillance by downregulating MHC molecules. Recent advances in cellular engineering have made it possible to generate gammadelta T cells that express chimeric antigen receptors (CARs), which combines their natural tumor-recognition capabilities with the targeted specificity of CARs. gammadelta CAR T cells offer several advantages over alphabeta CAR T cells, including lower graft-versus-host disease risk, suitability for allogeneic applications (“out-of-the-shelf”), and enhanced solid tumor infiltration due to tissue-homing properties. These properties provide a strong rationale for investigating gammadelta CAR T cells as a novel cancer therapy approach and underscore the importance of continued optimization to realize their full therapeutic potential. This study explores strategies to improve the intracellular signaling domain of CAR constructs with a focus on gammadelta T cells. The CD3ζ domain has traditionally been used as the primary activation motif in CAR design. However, emerging evidence suggests that it may not be optimal for all T cell subsets. Therefore, we investigated alternative CD3 subunits, specifically, CD3delta, CD3ε, and CD3gamma, as intracellular signaling domains in CAR constructs. Our in vitro data show that CARs with these alternative CD3 cytoplasmic tails are more effective than conventional CD3ζ-based CARs in terms of activation and cytotoxicity. In vivo validation of alphabeta CAR T cells incorporating alternative CD3 subunits has demonstrated enhanced antitumor efficacy. To extend these findings, in vivo experiments are currently underway using the NALM-6_luc (luciferase expressing) xenograft model, a well-established system for evaluating next-generation cellular therapies. These experiments aim to explore whether similar benefits apply to gammadelta CAR T cells. If confirmed, these results would underscore the potential of leveraging alternative CD3 signaling domains to optimize CAR T cell performance, particularly in gammadelta T cell-based therapies. Our findings provide a compelling rationale for reevaluating CAR construct design, suggesting that alternative CD3 subunits could significantly enhance the therapeutic potential of gammadelta CAR T cells in cancer treatment.
利益披露 Disclosure
P. Metzger, Reaction Biology Europe GmbH Employment. M. Zintchenko, None.. S. Minguet, None. C. Obodozie, Reaction Biology Europe GmbH Employment. H. Weber, Reaction Biology Europe GmbH Employment.

← 返回 AACR 2026 检索