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:Stromal depletion by TALEN-edited universal hypoimmunogenic FAP-CAR T cells enables infiltration and anti-tumor cytotoxicity of tumor antigen-targeted CAR-T immunotherapy.
基于嵌合抗原受体(CAR)工程化T细胞的过继性细胞疗法已被证明能挽救许多癌症患者的生命。
基于嵌合抗原受体(CAR)工程化T细胞的过继细胞疗法已被证明能挽救许多癌症患者的生命。然而,其治疗疗效迄今仅限于少数恶性肿瘤,实体瘤尤其难以实现有效治疗。T细胞向肿瘤内浸润不良以及由促结缔组织增生性、免疫抑制性微环境导致的T细胞功能障碍,是CAR T细胞成功治疗实体瘤的关键障碍。癌症相关成纤维细胞(CAF)是肿瘤间质的关键组成部分,在肿瘤微环境(TME)中响应肿瘤细胞信号而特异性演化。CAF分泌组是细胞外基质以及大量诱导免疫抑制的细胞因子和生长因子的重要贡献者。它们共同形成物理和化学屏障,诱导T细胞排斥的“冷”TME。因此,在间质丰富的实体瘤中清除CAF可以提供机会,将免疫逃逸肿瘤转化为对肿瘤抗原CAR T细胞细胞毒性敏感的肿瘤。利用我们基于TALEN的基因编辑平台,我们工程化改造了非异体反应性、免疫逃逸的CAR T细胞(称为UCAR T细胞),靶向独特的CAF标志物成纤维细胞活化蛋白α(FAP)。在由患者来源CAF和肿瘤细胞组成的三阴性乳腺癌(TNBC)原位小鼠模型中,我们证明了工程化FAP UCAR T细胞在清除CAF、减少促结缔组织增生和成功肿瘤浸润方面的疗效。此外,虽然这些肿瘤先前具有耐药性,但用FAP UCAR T细胞预处理后,现在使这些肿瘤对间皮素(Meso)UCAR T细胞浸润和抗肿瘤细胞毒性敏感。FAP UCAR、Meso UCAR T细胞与检查点抑制剂anti-PD-1的联合治疗显著降低了肿瘤负荷并延长了小鼠生存期。因此,我们的研究提出了一种新的治疗范式,用于成功实现针对富含基质实体瘤的CAR T细胞免疫治疗。
Adoptive cell therapy based on chimeric antigen receptor (CAR)-engineered T-cells has proven to be lifesaving for many cancer patients. However, its therapeutic efficacy has so far been restricted to only a few malignancies, with solid tumors proving to be especially recalcitrant to efficient therapy. Poor intra-tumor infiltration by T cells and T cell dysfunction due to a desmoplastic, immunosuppressive microenvironment are key barriers for CAR T-cell success against solid tumors. Cancer-associated fibroblasts (CAFs) are critical components of the tumor stroma, evolving specifically within the tumor microenvironment (TME) in response to tumor cell cues. The CAF secretome is a significant contributor to the extracellular matrix and a plethora of cytokines and growth factors that induce immune suppression. Together they form a physical and chemical barrier which induces a T cell-excluding 'cold' TME. CAF depletion in stroma rich solid tumors can thus provide an opportunity to convert immune evasive tumors susceptible to tumor-antigen CAR T-cell cytotoxicity. Using our TALEN-based gene editing platform we engineered non-alloreactive, immune evasive CAR T-cells (termed UCAR T-cells) targeting the unique CAF marker Fibroblast Activation Protein, alpha (FAP). In an orthotopic mouse model of triple-negative breast cancer (TNBC) composed of patient derived-CAFs and tumor cells, we demonstrate the efficacy of our engineered FAP UCAR T-cells in CAF depletion, reduction of desmoplasia and successful tumor infiltration. Furthermore, while previously resistant, pre-treatment with FAP UCAR T-cells now sensitized these tumors to Mesothelin (Meso) UCAR T-cell infiltration and anti-tumor cytotoxicity. Combination therapy of FAP UCAR, Meso UCAR T cells and the checkpoint inhibitor anti-PD-1 significantly reduced tumor burden and prolonged mice survival. Our study thus proposes a novel treatment paradigm for successful CAR T-cell immunotherapy against stroma-rich solid tumors.
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