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全身免疫指数可预测小细胞肺癌中 TIL(肿瘤浸润淋巴细胞)强度及免疫治疗应答

英文原题:Systemic immune index predicts tumor-infiltrating lymphocyte intensity and immunotherapy response in small cell lung cancer.

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Systemic immune index predicts tumor-infiltrating lymphocyte intensity and immunotherapy response in small cell lung cancer.

PubMed 2024/02/28(内容时间) Transl Lung Cancer Res Q2 · IF 3.4(JCR 2025)

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研究概要

本研究提供了一种通过结合 PNI 与局部免疫生物标志物来探讨 SCLC 总体免疫状态预后价值的方法。同时也强调了 PNI 在 SCLC 免疫治疗疗效预测和获益人群选择中具有前景的临床应用价值。

研究思路结论见上方概要

尽管免疫检查点阻断(ICB)在小细胞肺癌(SCLC)中取得了近期进展,但对系统性肿瘤免疫环境(STIE)和局部肿瘤免疫微环境(TIME)缺乏了解,使得难以准确预测临床结局并识别ICB治疗的潜在获益人群。

我们纳入了191例I-III期SCLC患者,通过多项定量指标综合评估STIE的预后作用,并进一步将其与通过eXtreme Gradient Boosting(XGBoost)机器学习算法建立的局部免疫评分系统(LISS)相整合。我们还在接受程序性死亡配体 1(PD-L1)阻断治疗的独立晚期SCLC队列中检验了STIE在获益人群筛选中的价值。

在若干系统性免疫标志物中,通过预后营养指数(PNI)评估的STIE与无病生存期(DFS)和总生存期(OS)相关,并仍是SCLC患者的独立预后因素[风险比(HR):0.473,95%置信区间(CI):0.241-0.929,P=0.030]。较高的PNI评分与炎症型SCLC分子亚型和局部TIL(肿瘤浸润淋巴细胞)(TILs)密切相关。我们进一步构建了LISS,其结合了排名前三的重要局部免疫生物标志物(CD8 + T细胞计数、CD8 + T细胞上的PD-L1表达和CD4 + T细胞计数),并将其与PNI评分整合。最终整合的免疫风险系统是一个独立预后因素,并且比肿瘤淋巴结转移(TNM)分期和单一免疫生物标志物取得了更好的预测性能。此外,PNI高的广泛期SCLC患者从PD-L1阻断治疗中获得了更好的临床反应和更长的无进展生存期(PFS)(11.8 vs. 5.9个月,P=0.012)。

展开英文摘要原文

Despite recent progresses in immune checkpoint blockade (ICB) in small-cell lung cancer (SCLC), a lack of understanding regarding the systemic tumor immune environment (STIE) and local tumor immune microenvironment (TIME) makes it difficult to accurately predict clinical outcomes and identify potential beneficiaries from ICB therapy.

We enrolled 191 patients with stage I-III SCLC and comprehensively evaluated the prognostic role of STIE by several quantitative measurements, and further integrate it with a local immune score system (LISS) established by eXtreme Gradient Boosting (XGBoost) machine learning algorithm. We also test the value of STIE in beneficiary selection in our independent advanced SCLC cohort receiving programmed cell death 1 ligand 1 (PD-L1) blockade therapy.

Among several systemic immune markers, the STIE as assessed by prognostic nutritional index (PNI) was correlated with disease-free survival (DFS) and overall survival (OS), and remained as an independent prognostic factor for SCLC patients [hazard ratio (HR): 0.473, 95% confidence interval (CI): 0.241-0.929, P=0.030]. Higher PNI score was closely associated with inflamed SCLC molecular subtype and local tumor-infiltrating lymphocytes (TILs). We further constructed a LISS which combined top three important local immune biomarkers (CD8 + T-cell count, PD-L1 expression on CD8 + T-cell and CD4 + T-cell count) and integrated it with the PNI score. The final integrated immune risk system was an independent prognostic factor and achieved better predictive performance than Tumor Node Metastasis (TNM) stages and single immune biomarker. Furthermore, PNI-high extensive-stage SCLC patients achieved better clinical response and longer progression-free survival (PFS) (11.8 vs. 5.9 months, P=0.012) from PD-L1 blockade therapy.

This study provides a method to investigate the prognostic value of overall immune status by combining the PNI with local immune biomarkers in SCLC. The promising clinical application of PNI in efficacy prediction and beneficiary selection for SCLC immunotherapy is also highlighted.

论文信息

作者
Deng C、Liao J、Fu Z、Fu F、Li D、Li Y、Wang J、Chen H
单位
Department of Thoracic Surgery and State Key Laboratory of Genetic Engineering, Fudan University Shanghai Cancer Center, Shanghai, China.China
期刊
Translational lung cancer research2024 Feb 29
原文标识
PubMed 38496688 · DOI 10.21037/tlcr-23-696