工程化益生菌用于肿瘤靶向联合化学免疫治疗
Engineered probiotics for tumor-targeted combination chemoimmunotherapy.
我们的方法将酶/前药治疗和免疫治疗整合到一个单一的细菌递送系统中,通过提供合理设计的空间控制化学免疫治疗框架,克服了传统疗法的关键局限性。
英文原题:TCR-Engineered Lymphocytes Targeting NY-ESO-1: In Vitro Assessment of Cytotoxicity against Tumors.
针对实体瘤治疗量身定制的过继性 T 细胞疗法面临复杂挑战,需要精心选择特异性靶抗原并工程化改造高度特异性的 T 细胞受体(TCR)。
针对实体瘤的个体化过继T细胞治疗面临复杂挑战,需要审慎选择特异性靶抗原并构建高度特异的T细胞受体(TCR)。本研究考察了体外培养、表达靶向癌睾抗原NY-ESO-1之TCR的T淋巴细胞的细胞毒性和功能特征。流式细胞术分析显示,与NY-ESO-1阳性肿瘤细胞系SK-Mel-37接触后,表达活化标志物的细胞群比例显著增加。使用NanoString平台进行免疫转录组分析发现,富集于基因本体生物过程(GO)中的基因表达上调,相关过程包括IFN-γ信号通路、T细胞活化调控及增殖。此外,经改造的T细胞表现出强劲的抗原依赖性细胞毒作用,乳酸脱氢酶(LDH)检测结果证实了这一点。包括LEGENDplex在内的多重免疫检测还显示,由颗粒酶和可溶性Fas配体(sFasL)介导的细胞毒相关细胞因子产生增加。研究结果凸显了工程化TCR-T细胞靶向NY-ESO-1阳性肿瘤的潜力。仍需开展全面的体内研究,以充分验证这些结果,并有效发挥基因工程T细胞在抗癌治疗中的内在潜能。
Adoptive T-cell therapies tailored for the treatment of solid tumors encounter intricate challenges, necessitating the meticulous selection of specific target antigens and the engineering of highly specific T-cell receptors (TCRs). This study delves into the cytotoxicity and functional characteristics of in vitro-cultured T-lymphocytes, equipped with a TCR designed to precisely target the cancer-testis antigen NY-ESO-1. Flow cytometry analysis unveiled a notable increase in the population of cells expressing activation markers upon encountering the NY-ESO-1-positive tumor cell line, SK-Mel-37. Employing the NanoString platform, immune transcriptome profiling revealed the upregulation of genes enriched in Gene Ontology Biological Processes associated with the IFN- signaling pathway, regulation of T-cell activation, and proliferation. Furthermore, the modified T cells exhibited robust cytotoxicity in an antigen-dependent manner, as confirmed by the LDH assay results. Multiplex immunoassays, including LEGENDplex , additionally demonstrated the elevated production of cytotoxicity-associated cytokines driven by granzymes and soluble Fas ligand (sFasL). Our findings underscore the specific targeting potential of engineered TCR T cells against NY-ESO-1-positive tumors. Further comprehensive in vivo investigations are essential to thoroughly validate these results and effectively harness the intrinsic potential of genetically engineered T cells for combating cancer.
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