γδ T 细胞调节小细胞肺癌中的抗肿瘤免疫
γδ T cells modulate anti-tumor immunity in small cell lung cancer.
我们的发现表明,活化的γδ T细胞可能是SCLC治疗的有价值靶点。
英文原题:Adoptive transfer of membrane-restricted IL-12-TCR T cells promotes antigen spreading and elimination of antigen-negative tumor variants.
靶向肿瘤的 T 细胞表达 caIL-12 显示出对靶抗原阴性肿瘤变异体的治疗效果,主要通过诱导抗原扩散。
背景:过继T细胞疗法已在B细胞恶性肿瘤中显示临床活性,为治疗更广泛癌症带来希望。然而,相当一部分实体瘤患者对这一治疗方式存在原发或继发耐药。靶抗原丢失是一种已充分认识的耐药机制,可能由抗原表达不均一或抗原加工与呈递机制缺陷导致。组成型表达的膜锚定白细胞介素12(caIL-12)在多种肿瘤抗原表达均一的临床前过继T细胞治疗模型中,显示出增强的抗肿瘤活性和较低的全身暴露。本研究在同系小鼠模型中评估caIL-12对靶抗原阴性变异肿瘤的治疗影响。 方法:通过转导表达与泛素融合的OVA抗原SIINFEKL构建B16F10黑色素瘤(B16)或Lewis肺癌(LLC)靶抗原阳性肿瘤细胞(B16-U-OVA、LLC-U-OVA),而B16或LLC肿瘤作为抗原阴性变异株。向C57BL/6J小鼠皮下注射由80% B16-U-OVA和20% B16组成的异质性肿瘤。通过向左侧腹部接种B16-U-OVA或LLC-U-OVA肿瘤,并向右侧接种B16或LLC肿瘤,建立双侧肿瘤。荷瘤小鼠接受5.5 Gy全身照射后,过继转移经工程化改造、表达或不表达caIL-12的OT-I TCR-T细胞。 结果:OT-I TCR-T细胞可将caIL-12递送至B16-U-OVA肿瘤部位;在携带OVA阴性变异株的异质性肿瘤小鼠中,诱导强效肿瘤控制并改善生存。caIL-12对OVA阴性B16变异株的作用,主要通过抗原扩展启动并活化内源性抗肿瘤CD8 T细胞实现。此外,OT-I-caIL-12诱导的抗原扩展还能控制植入远处部位的OVA阴性肿瘤。该治疗效应要求抗原特异性TCR-T细胞与caIL-12在肿瘤部位共定位,且需有能够识别共有肿瘤抗原的内源性CD8 T细胞参与。 结论:靶向肿瘤的T细胞表达caIL-12后,对靶抗原阴性肿瘤变异株也具有治疗作用,主要通过诱导抗原扩展实现。这些发现凸显caIL-12应对抗原逃逸和肿瘤异质性的潜力;这两种因素可能限制T细胞疗法治疗实体瘤的疗效。
BACKGROUND: Adoptive T-cell therapy has demonstrated clinical activity in B-cell malignancies, offering hope for its application to a broad spectrum of cancers. However, a significant portion of patients with solid tumors experience primary or secondary resistance to this treatment modality. Target antigen loss resulting either from non-uniform antigen expression or defects in antigen processing and presentation machinery is one well-characterized resistance mechanism. Constitutively expressed membrane-anchored interleukin-12 (caIL-12) has demonstrated enhanced antitumor activity and low systemic exposure in multiple preclinical adoptive T-cell treatment models with homogeneous tumor antigen expression. In this study, we assess the therapeutic impact of caIL-12 on target antigen-negative variants in syngeneic mouse models. METHODS: Target antigen-positive tumors were generated by transducing B16F10 melanoma cells (B16) or Lewis Lung Carcinoma cells (LLC) with a construct expressing the OVA antigen, SIINFEKL, tagged to ubiquitin (B16-U-OVA, LLC-U-OVA), while B16 or LLC tumors served as antigen-negative variants. C57BL/6J mice were subcutaneously injected with heterogeneous tumors composed of 80% B16-U-OVA and 20% B16. Bilateral tumors were established by injecting the left flank with B16-U-OVA or LLC-U-OVA tumors and the right flank injected with B16 or LLC tumors. The tumor-bearing mice then underwent 5.5 Gy total body irradiation, followed by adoptive transfer of OT-I TCR-T cells engineered with or without caIL-12. RESULTS: TCR-T cells (OT-I) delivered caIL-12 to the B16-U-OVA tumor sites and induced robust tumor control and survival benefits in mice bearing a heterogeneous tumor with OVA-negative variants. caIL-12 exerted its effect on OVA-negative B16 variants primarily by priming and activating endogenous antitumor CD8 T cells via antigen spreading. In addition, antigen spreading induced by OT-I-caIL-12 resulted in controlling OVA-negative tumors implanted at distant sites. This therapeutic effect required antigen-specific TCR-T cells and caIL-12 to colocalize at the tumor site, along with endogenous CD8 T cells capable of recognizing shared tumor antigens. CONCLUSION: Expression of caIL-12 by tumor-targeting T cells demonstrated therapeutic effect against target-antigen-negative tumor variants, primarily through the induction of antigen spreading. These findings highlight the potential of caIL-12 to address challenges of antigen escape and tumor heterogeneity that may limit the efficacy of T-cell therapy against solid tumors.
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