下一代肿瘤不可知靶点即将出现
Next-generation tumor-agnostic targets on the horizon.
肿瘤不可知药物开发将肿瘤学重新聚焦于共享的分子依赖性而非组织来源,从而能够针对跨肿瘤的罕见可操作驱动因素进行高效开发。
英文原题:Genomic profiles and their associations with TMB, PD-L1 expression, and immune cell infiltration landscapes in synchronous multiple primary lung cancers.
MPLCs由不同的分子事件驱动,通常表现出低TMB、低PD-L1和异质性免疫浸润格局。特定的基因组谱与MPLCs中的TMB和肿瘤免疫微环境格局相关。我们的发现有助于指导MPLCs的诊断,并识别可能从免疫治疗和靶向治疗中获益的患者群体。
诊断和治疗多原发肺癌(MPLCs)患者给临床带来挑战,初步证据显示靶向治疗和免疫治疗后结果不令人满意。因此,我们调查了MPLCs的基因组图谱及其与肿瘤突变负荷(TMB)、程序性死亡配体1(PD-L1)和免疫细胞浸润景观的可能关联。
共112例MPLC患者符合条件,手术切除294个肿瘤,其中255个肿瘤使用1021基因panel进行测序。采用免疫组化染色评估PD-L1水平以及中央肿瘤和浸润边缘的CD3+/CD8+TIL(肿瘤浸润淋巴细胞)密度和CD68+/CD163+肿瘤相关巨噬细胞(TAM)密度,并基于这些变量生成免疫分型。
MPLCs常同时发生于60岁以下的非吸烟女性,表现为磨玻璃影、腺癌和I期肺部病变。255个肿瘤中最常见的突变基因是EGFR(56%)、ERBB2(12%)、TP53(12%)、BRAF(11%)、RBM10(11%)和KRAS(9%)。我们发现87例(77.7%)患者具有多样化的基因组图谱,61例(54.5%)患者在不同肿瘤之间至少共享一个推定驱动基因,其肿瘤更具侵袭性。中位TMB为1.92个突变/Mb,高TMB(≥3)病变常携带EGFR L858R/KRAS G12C/RBM10/TP53/LRP1B突变或野生型ERBB2。仅8.1%的患者和3.9%的病变肿瘤细胞PD-L1阳性,且该阳性在LRP1B/TP53突变肿瘤中更为常见。EGFR L858R/RBM10/TP53突变与特定免疫细胞和炎症型免疫表型呈正相关,而ERBB2突变则呈负相关。TMB、CD3+TIL和CD68+/CD163+TAM在配对肿瘤之间呈现显著异质性(所有kappa<0.2),但PD-L1和CD8+TIL在肿瘤配对中分布更为均一。
BACKGROUND: Diagnosing and treating patients with multiple primary lung cancers (MPLCs) bring challenges to the clinic, and the preliminary evidence has revealed unsatisfying outcomes after targeted therapy and immunotherapy. Therefore, we surveyed genomic profiles of MPLCs and their possible associations with tumor mutation burden (TMB), programmed death-ligand 1 (PD-L1), and the immune cell infiltration landscape. MATERIALS AND METHODS: A total of 112 patients with MPLCs with surgically resected 294 tumors were eligible, and 255 tumors were sequenced using a 1021-gene panel. Immunohistochemistry staining was performed to evaluate the levels of PD-L1 and the density of CD3+/CD8+ tumor-infiltrating lymphocytes (TILs), and CD68+/CD163+ tumor-associated macrophages (TAMs) at the central tumor and invasive margin, and immunotypes were generated based on those variables. RESULTS: MPLCs often occur simultaneously in non-smoker women younger than 60 years and manifest as ground-glass opacities, adenocarcinoma, and stage I lung lesions. The most frequently mutated genes in the 255 tumors were EGFR (56%), ERBB2 (12%), TP53 (12%), BRAF (11%), RBM10 (11%), and KRAS (9%). We found 87 (77.7%) patients with diverse genomic profiles, and 61 (54.5%) who shared at least one putative driver gene between different tumors presented more aggressive tumors. The median TMB was 1.92 mutations/Mb, and high-TMB (≥3) lesions often harbored EGFR L858R /KRAS G12C /RBM10/TP53/LRP1B mutations or wild-type ERBB2. Only 8.1% of patients and 3.9% of lesions were positive for PD-L1 on tumor cells, and this positivity was more frequent in LRP1B/TP53-mutant tumors. EGFR L858R /RBM10/TP53 mutations were positively associated with specific immune cells and an inflamed immunotype, but ERBB2 mutations were negatively correlated. TMB, CD3+TILs, and CD68+/CD163+ TAMs presented with significant heterogeneity among paired tumors (all kappa <0.2), but PD-L1 and CD8 +TILs were more uniformly present in tumor pairs. CONCLUSION: MPLCs are driven by different molecular events and often exhibit low TMB, low PD-L1, and a heterogeneous immune infiltration landscape. Specific genomic profiles are associated with TMB and the tumor immune microenvironmental landscape in MPLCs. Our findings can help to guide MPLCs diagnoses and to identify patient populations that may benefit from immunotherapy and targeted therapy.
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