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:Spatial and temporal heterogeneity of tumor immune microenvironment between primary tumor and brain metastases in NSCLC.
NCSLC的原发肿瘤与脑转移灶之间存在时间和空间异质性。脑转移病灶表现出更强的免疫抑制性肿瘤免疫微环境。B7-H4和CD68+ TAMs可能对肺腺癌脑转移患者具有潜在治疗价值。
脑转移是非小细胞肺癌的常见结局,尽管采取了积极治疗,其临床结局仍令人沮丧。近年来,免疫治疗发展迅速,然而其对原发性肺癌和脑转移瘤的治疗效果并不相同,提示原发性肺癌和脑转移瘤的免疫微环境可能存在差异,但目前我们对这些差异知之甚少。
本研究收集了17对NSCLC及其脑转移的配对样本,以及45例其他非配对脑转移样本。对所有样本进行了以下标志物的免疫组化染色:免疫检查点CTLA-4、PD-1、PD-L1、B7-H3、B7-H4、IDO1和EphA2;TIL(肿瘤浸润淋巴细胞)(TILs)CD3、CD4、CD8和CD20;肿瘤相关小胶质细胞/巨噬细胞(TAMs)CD68和CD163;以及肿瘤增殖指数Ki-67。在17对配对样本中比较了这些标志物表达的差异,并在肺腺癌脑转移样本中分析了这些标志物表达水平对患者预后的影响。随后,基于上述结果,在一个典型的肺-脑配对样本中进行了多重免疫荧光染色。多重免疫荧光染色结果揭示了原发NSCLC与脑转移之间肿瘤免疫微环境的差异。
在17对配对病灶中,与原发性肿瘤相比,脑转移灶中CTLA-4 +(P = 0.461)、PD-1 +(P = 0.106)、CD3 +(P = 0.045)、CD4 +(P = 0.037)、CD8 +(P = 0.008)和CD20 +(P = 0.029)TIL的浸润显著减少。原发性NSCLC与配对脑转移灶之间CD68(P = 0.954)和CD163(P = 0.654)TAM浸润未观察到统计学显著差异。在所有脑转移病灶中,PD-L1的表达与NSCLC脑转移的时间间隔相关。此外,Cox比例风险回归模型显示,B7-H4高表达(风险比[HR] = 3.276,95%置信区间[CI] 1.335-8.041,P = 0.010)和CD68 TAM浸润(HR = 3.775,95% CI 1.419-10.044,P = 0.008)是肺腺癌脑转移患者的独立预后因素。
BACKGROUND: Brain metastasis is a common outcome in non-small cell lung cancer, and despite aggressive treatment, its clinical outcome is still frustrating. In recent years, immunotherapy has been developing rapidly, however, its therapeutic outcomes for primary lung cancer and brain metastases are not the same, suggesting that there may be differences in the immune microenvironment of primary lung cancer and brain metastases, however, we currently know little about these differences. METHODS: Seventeen paired samples of NSCLC and their brain metastases and 45 other unpaired brain metastases samples were collected for the current study. Immunohistochemical staining was performed on all samples for the following markers: immune checkpoints CTLA-4, PD-1, PD-L1, B7-H3, B7-H4, IDO1, and EphA2; tumor-infiltrating lymphocytes (TILs) CD3, CD4, CD8, and CD20; tumor-associated microglia/macrophages (TAMs) CD68 and CD163; and tumor proliferation index Ki-67. The differences in expression of these markers were compared in 17 paired samples, and the effect of the expression level of these markers on the prognosis of patients was analyzed in lung adenocarcinoma brain metastases samples. Subsequently, multiplex immunofluorescence staining was performed in a typical lung-brain paired sample based on the aforementioned results. The multiplex immunofluorescence staining results revealed the difference in tumor immune microenvironment between primary NSCLC and brain metastases. RESULTS: In 17 paired lesions, the infiltration of CTLA-4 + (P = 0.461), PD-1 + (P = 0.106), CD3 + (P = 0.045), CD4 + (P = 0.037), CD8 + (P = 0.008), and CD20 + (P = 0.029) TILs in brain metastases were significantly decreased compared with primary tumors. No statistically significant difference was observed in the CD68 (P = 0.954) and CD163 (P = 0.654) TAM infiltration between primary NSCLC and paired brain metastases. In all the brain metastases lesions, the expression of PD-L1 is related to the time interval of brain metastases in NSCLC. In addition, the Cox proportional hazards regression models showed high expression of B7-H4 (hazard ratio [HR] = 3.276, 95% confidence interval [CI] 1.335-8.041, P = 0.010) and CD68 TAM infiltration (HR = 3.775, 95% CI 1.419-10.044, P = 0.008) were independent prognosis factors for lung adenocarcinoma brain metastases patients. CONCLUSIONS: Both temporal and spatial heterogeneity is present between the primary tumor and brain metastases of NCSLC. Brain metastases lesions exhibit a more immunosuppressive tumor immune microenvironment. B7-H4 and CD68 + TAMs may have potential therapeutic value for lung adenocarcinoma brain metastases patients.
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