肥胖与癌症:一项转化科学综述
Obesity and Cancer: A Translational Science Review.
超重和肥胖与更高的癌症发病率相关,在美国每年占新发癌症诊断的 10%。减重可能通过减轻肥胖的不良影响来降低癌症风险,但可能需要减重超过 10% 才能降低癌症风险。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Prognostic Significance of the Immune Microenvironment in Endometrial Cancer.
Prognostic Significance of the Immune Microenvironment in Endometrial Cancer.
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本研究采用基于人工智能(AI)的分析来探究子宫内膜癌(EC)的免疫微环境。我们旨在评估基于AI的免疫指标作为预后生物标志物的潜力。共296例EC病例被分为4种分子亚型:POLE超突变型(POLEmut)、错配修复缺陷型(MMRd)、p53异常型(p53abn)和无特定分子特征型(NSMP)。采用基于AI的方法评估以下免疫指标:使用Lunit SCOPE IO评估总TIL(肿瘤浸润淋巴细胞)、瘤内TIL、间质TIL和肿瘤细胞,以及使用QuPath通过免疫组织化学(IHC)评估CD4+、CD8+和FOXP3+ T细胞。这7项免疫指标用于进行无监督聚类分析。
同时评估了PD-L1 22C3 IHC的表达。聚类分析显示了3个不同的免疫微环境分组:免疫活跃型、免疫荒漠型和肿瘤主导型。免疫活跃型在POLEmut中高度流行,也见于其他分子亚型。尽管免疫荒漠型在NSMP和p53mut中更为常见,但在MMRd和POLEmut中也可检测到。POLEmut显示最高水平的CD4+和CD8+ T细胞、总TIL、瘤内TIL和间质TIL,以及最低水平的FOXP3+/CD8+比值。相比之下,免疫活跃型中的p53abn显示较高的FOXP3+/CD4+和FOXP3+/CD8+比值。免疫活跃型与有利的总生存期和无复发生存期相关。在NSMP亚型中,观察到免疫活跃型与更好的无复发生存期之间存在显著关联。PD-L1 22C3 联合阳性评分(CPS)在3组间显示出显著差异,免疫活跃组的中位CPS和CPS 1%频率最高。EC的免疫微环境在分子亚型内存在差异。在同一免疫微环境组内,根据分子亚型观察到免疫指标和T细胞组成的显著差异。基于AI的免疫微环境分组可作为EC的预后标志物,免疫活跃组与良好预后相关。
This study used artificial intelligence (AI)-based analysis to investigate the immune microenvironment in endometrial cancer (EC).
We aimed to evaluate the potential of AI-based immune metrics as prognostic biomarkers. In total, 296 cases with EC were classified into 4 molecular subtypes: polymerase epsilon ultramutated (POLEmut), mismatch repair deficiency (MMRd), p53 abnormal (p53abn), and no specific molecular profile (NSMP). AI-based methods were used to evaluate the following immune metrics: total tumor-infiltrating lymphocytes (TIL), intratumoral TIL, stromal TIL, and tumor cells using Lunit SCOPE IO, as well as CD4+, CD8+, and FOXP3+ T cells using immunohistochemistry (IHC) by QuPath. These 7 immune metrics were used to perform unsupervised clustering. PD-L1 22C3 IHC expression was also evaluated. Clustering analysis demonstrated 3 distinct immune microenvironment groups: immune active, immune desert, and tumor dominant. The immune-active group was highly prevalent in POLEmut, and it was also seen in other molecular subtypes. Although the immune-desert group was more frequent in NSMP and p53mut, it was also detected in MMRd and POLEmut.
POLEmut showed the highest levels of CD4+ and CD8+ T cells, total TIL, intratumoral TIL, and stromal TIL with the lowest levels of FOXP3+/CD8+ ratio. In contrast, p53abn in the immune-active group showed higher FOXP3+/CD4+ and FOXP3+/CD8+ ratios. The immune-active group was associated with favorable overall survival and recurrence-free survival. In the NSMP subtype, a significant association was observed between immune active and better recurrence-free survival.
The PD-L1 22C3 combined positive score (CPS) showed significant differences among the 3 groups, with the immune-active group having the highest median CPS and frequency of CPS 1%. The immune microenvironment of EC was variable within molecular subtypes. Within the same immune microenvironment group, significant differences in immune metrics and T cell composition were observed according to molecular subtype. AI-based immune microenvironment groups served as prognostic markers in ECs, with the immune-active group associated with favorable outcomes.
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