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:Loss of heterozygosity impacts MHC expression on the immune microenvironment in CDK12-mutated prostate cancer.
这些数据表明,在MHC表达水平和LOH状态的背景下分析CDK12改变,可能为PCa中这一潜在可干预的基因组亚组的预后提供更好的预测价值。此外,这些发现强调了探索新型治疗策略以增强CDK12缺陷型PCa中MHC表达,从而改善免疫治疗反应的迫切需要。
在前列腺癌(PCa)中,MSI状态、TMB高和PDL1表达等成熟生物标志物可作为对免疫治疗有利反应的可靠指标。近期研究表明CDK12突变与免疫治疗反应之间可能存在关联;然而,CDK12突变影响免疫反应的确切机制尚不清楚。对于这一CDK12突变PCa亚群,免疫逃逸的一个合理解释可能是MHC表达降低。
我们利用来自48个原发性和10个转移性公共数据库样本以及一个由53个低中风险原发性PCa组成的回顾性队列的CDK12突变PCa基因组数据,研究了MHC基因表达变异如何影响相关的下游通路。我们根据MHC相关基因的表达四分位数对患者进行分类,并将肿瘤分为“高”和“低”表达水平。MHC表达通路较高的CDK12突变肿瘤与免疫系统相关,并伴有PD-L1、IDO1和TIM3表达升高。与炎症性肿瘤微环境(TME)表型一致,数字细胞术分析在该组中鉴定出CD8+ T细胞、B细胞、γδ T细胞和M1巨噬细胞增加。相反,MHC表达较低的CDK12突变肿瘤表现出与免疫冷TME表型和免疫编辑一致的特征。值得注意的是,低MHC表达还与影响整个HLA基因簇的6号染色体杂合性缺失(LOH)相关。这些LOH事件在肿瘤细胞的主要克隆和次要亚克隆群体中均被观察到。在我们对本研究所53例原发性PCa病例的回顾性研究中,我们发现CDK12突变的患病率为4%(2/53),并通过Sanger测序确认了其中一例肿瘤中的该缺陷。与我们对公共数据库数据的分析一致,该肿瘤在RNA水平上表现出低MHC表达。需要更广泛的研究来确定HLA表达降低是否通常与原发性肿瘤相关,还是CDK12突变PCa的特异性特征。
BACKGROUND: In prostate cancer (PCa), well-established biomarkers such as MSI status, TMB high, and PDL1 expression serve as reliable indicators for favorable responses to immunotherapy. Recent studies have suggested a potential association between CDK12 mutations and immunotherapy response; however, the precise mechanisms through which CDK12 mutation may influence immune response remain unclear. A plausible explanation for immune evasion in this subset of CDK12-mutated PCa may be reduced MHC expression. RESULTS: Using genomic data of CDK12-mutated PCa from 48 primary and 10 metastatic public domain samples and a retrospective cohort of 53 low-intermediate risk primary PCa, we investigated how variation in the expression of the MHC genes affected associated downstream pathways. We classified the patients based on gene expression quartiles of MHC-related genes and categorized the tumors into "High" and "Low" expression levels. CDK12-mutated tumors with higher MHC-expressed pathways were associated with the immune system and elevated PD-L1, IDO1, and TIM3 expression. Consistent with an inflamed tumor microenvironment (TME) phenotype, digital cytometric analyses identified increased CD8 + T cells, B cells, γδ T cells, and M1 Macrophages in this group. In contrast, CDK12-mutated tumors with lower MHC expression exhibited features consistent with an immune cold TME phenotype and immunoediting. Significantly, low MHC expression was also associated with chromosome 6 loss of heterozygosity (LOH) affecting the entire HLA gene cluster. These LOH events were observed in both major clonal and minor subclonal populations of tumor cells. In our retrospective study of 53 primary PCa cases from this Institute, we found a 4% (2/53) prevalence of CDK12 mutations, with the confirmation of this defect in one tumor through Sanger sequencing. In keeping with our analysis of public domain data this tumor exhibited low MHC expression at the RNA level. More extensive studies will be required to determine whether reduced HLA expression is generally associated with primary tumors or is a specific feature of CDK12 mutated PCa. CONCLUSIONS: These data show that analysis of CDK12 alteration, in the context of MHC expression levels, and LOH status may offer improved predictive value for outcomes in this potentially actionable genomic subgroup of PCa. In addition, these findings highlight the need to explore novel therapeutic strategies to enhance MHC expression in CDK12-defective PCa to improve immunotherapy responses.
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