肿瘤细胞治疗研究
英文原题:Three-Dimensional Tumor Spheroids Reveal B7-H3 CAR T Cell Infiltration Dynamics and Microenvironment-Induced Functional Reprogramming in Solid Tumors.
Three-Dimensional Tumor Spheroids Reveal B7-H3 CAR T Cell Infiltration Dynamics and Microenvironment-Induced Functional Reprogramming in Solid Tumors.
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嵌合抗原受体(CAR)T细胞疗法在血液系统恶性肿瘤中取得临床成功,但由于肿瘤微环境(TME)障碍妨碍CAR-T 细胞识别、浸润和功能持续性,其对实体瘤的疗效有限。传统二维实验无法充分重现这些限制,因此需要改进体外模型。
本研究使用琼脂糖微孔系统构建三维肿瘤球平台,并在多种实体瘤细胞系中制备均一的B7-H3阳性肿瘤球,以评估CAR-T 细胞活性。研究在三维条件下通过流式细胞术分析TME相关免疫调节,包括B7-H3、MHC I/II和抗原加工机制(APM),随后与B7-H3 CAR-T 细胞共培养,评估细胞毒性、肿瘤球完整性、肿瘤活力以及CAR-T 细胞活化、耗竭和细胞因子生成。两种人癌细胞系来源的肿瘤球DU 145(前列腺癌)和SUM159(乳腺癌)保留B7-H3表达;MC38(小鼠结肠癌)来源肿瘤球作为B7-H3阴性对照。在三维培养条件下,DU 145和SUM159肿瘤球获得类似TME的免疫逃逸特征,表现为MHC-I和APM(TAP1、TAP2、LMP7)特异性下调,同时MHC-II和钙网蛋白上调。共培养显示CAR-T 细胞有效浸润肿瘤球,产生细胞毒作用并破坏其结构;浸润CAR-T 细胞中CD4⁺细胞比例较高,活化、耗竭、效应/终末分化以及IFN-γ/TNF-α生成均增加。该三维平台重现关键TME障碍,为评估CAR-T 疗法提供了一种可行且经济的临床前工具,可补充传统二维实验。
Chimeric antigen receptor (CAR) T cell therapy has demonstrated clinical success in hematologic malignancies but has limited efficacy in solid tumors due to tumor microenvironment (TME) barriers that impede CAR T cell recognition, infiltration, and sustained function. Traditional 2D assays inadequately recapitulate these constraints, necessitating improved in vitro models.
This study validated a 3D tumor spheroid platform using an agarose microwell system to generate uniform B7-H3-positive spheroids from multiple solid tumor cell lines, enabling the evaluation of CAR T cell activity. TME-relevant immune modulation under 3D conditions was analyzed by flow cytometry for B7-H3, MHC I/II, and antigen processing machinery (APM), followed by co-culture with B7-H3 CAR T cells to assess cytotoxicity, spheroid integrity, tumor viability, and CAR T cell activation, exhaustion, and cytokine production. Two human cancer-cell-line-derived spheroids, DU 145 (prostate cancer) and SUM159 (breast cancer), retained B7-H3 expression, while MC38 (mouse colon cancer)-derived spheroids served as a B7-H3 negative control.
Under 3D culture conditions, DU 145 and SUM159 spheroids acquire TME-like immune evasion characteristics and specifically downregulated MHC-I and APM (TAP1, TAP2, LMP7) with concurrent upregulation of MHC-II and calreticulin.
Co-culture showed effective spheroid infiltration, cytotoxicity, and structural disruption, with infiltrating CAR T cells displaying higher CD4 + fraction, activation, exhaustion, effector/terminal differentiation, and IFN- /TNF- production. This 3D platform recapitulates critical TME constraints and provides a cost-effective, feasible preclinical tool to assess CAR T therapies beyond conventional 2D assays.
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