LBPO.CL04 · 临床研究 · Late-Breaking
SAAL1:一种预测食管鳞状细胞癌免疫治疗耐药的新型生物标志物及克服耐药的治疗靶点
SAAL1: A novel biomarker for predicting and therapeutic target for overcoming immunotherapy resistance in esophageal squamous cell carcinoma
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:新辅助放化疗(nCRT)是局部晚期食管鳞状细胞癌(ESCC)的标准治疗。我们此前的NEOCRTEC1901研究表明,在nCRT基础上加用PD-1抑制剂可将病理完全缓解(pCR)率显著提高至50%,使该联合方案成为潜在的新标准。然而,免疫治疗的反应差异巨大,凸显出阐明肿瘤免疫逃逸机制、鉴定生物标志物和靶点以提高疗效的迫切需求。本研究旨在采用多组学方法鉴定并表征影响ESCC免疫治疗反应的关键分子。在机制方面,通过整合转录组学、蛋白质组学、生存及蛋白质-蛋白质相互作用数据的多组学筛选,我们首次鉴定出与PD-L1相互作用的癌基因SAAL1,将其确定为ESCC免疫治疗的关键负性调控因子。在机制上,SAAL1直接结合PD-L1蛋白,并募集去泛素化酶USP5以去除PD-L1上的泛素链。这一作用抑制了PD-L1经内质网相关降解(ERAD)-蛋白酶体途径的降解,从而稳定PD-L1蛋白水平。单细胞RNA测序分析进一步揭示,肿瘤细胞中SAAL1表达上调与恶性演化轨迹相吻合,其高表达重塑了肿瘤免疫微环境内的细胞通讯。在功能方面,SAAL1通过稳定PD-L1,显著增强肿瘤细胞表面PD-L1与PD-1的结合能力,抑制CD8⁺ T细胞的细胞毒功能,并驱动免疫抑制性肿瘤微环境(TME)的形成。这表现为CD8⁺ T细胞等效应免疫细胞浸润减少,同时伴有以中性粒细胞浸润增加为特征的促炎状态,共同塑造出"免疫荒漠"或"冷肿瘤"表型。体外和体内实验显示,敲低SAAL1可抑制ESCC细胞增殖和克隆形成能力,促进抗肿瘤免疫因子的表达,并显著增强CD8⁺ T细胞的肿瘤杀伤效力。重要的是,在动物模型中,SAAL1敲低与PD-1抑制剂联合较PD-1抑制剂单药治疗表现出更优的抗肿瘤效果。结论:本研究从临床队列出发,将SAAL1鉴定为ESCC免疫治疗的一种新型负性调控因子和潜在预后生物标志物。SAAL1高表达在初治及接受新辅助免疫治疗的ESCC患者中均提示预后不良,其预测能力超过TNM和ypTNM分期。其分子机制涉及通过与USP5协同去泛素化并稳定PD-L1蛋白来促进肿瘤免疫逃逸。这些发现揭示了SAAL1-USP5-PD-L1轴在ESCC免疫抑制中的核心作用,并为克服ESCC免疫治疗耐药提供了一种新的联合治疗策略和靶点。
查看英文原文 English abstract
Background: Neoadjuvant chemoradiotherapy (nCRT) is the standard treatment for locally advanced esophageal squamous cell carcinoma (ESCC). Our previous NEOCRTEC1901 study demonstrated that adding a PD-1 inhibitor to nCRT significantly increases the pathological complete response (pCR) rate to 50%, positioning this combination as a potential new standard. However, responses to immunotherapy vary dramatically, highlighting an urgent need to elucidate tumor immune escape mechanisms and identify biomarkers and targets to improve efficacy. This study aims to identify and characterize key molecules influencing immunotherapy response in ESCC using a multi-omics approach. Mechanistically , through an integrated multi-omics screening encompassing transcriptomic, proteomic, survival, and protein-protein interaction data, we have, for the first time, identified the oncogene SAAL1 , which interacts with PD-L1, as a key negative regulator of immunotherapy in ESCC. Mechanistically, SAAL1 directly binds to PD-L1 protein and recruits the deubiquitinase USP5 to remove ubiquitin chains from PD-L1. This action inhibits PD-L1 degradation via the endoplasmic reticulum-associated degradation (ERAD)-proteasome pathway, thereby stabilizing PD-L1 protein levels. Single-cell RNA sequencing analysis further revealed that upregulated SAAL1 expression in tumor cells coincides with malignant evolutionary trajectories, and its high expression remodels cellular communication within the tumor immune microenvironment. Functionally , by stabilizing PD-L1, SAAL1 significantly enhances the binding capacity of PD-L1 on the tumor cell surface to PD-1, inhibits the cytotoxic function of CD8⁺ T cells, and drives the formation of an immunosuppressive tumor microenvironment (TME). This manifests as reduced infiltration of effector immune cells like CD8⁺ T cells, coupled with a pro-inflammatory state characterized by increased neutrophil infiltration, collectively shaping an "immune-desert" or "cold tumor" phenotype. In vitro and in vivo experiments showed that knocking down SAAL1 inhibited ESCC cell proliferation and clonogenicity, promoted the expression of anti-tumor immune factors, and significantly enhanced the tumor-killing efficacy of CD8⁺ T cells. Importantly, in animal models, the combination of SAAL1 knockdown with a PD-1 inhibitor demonstrated superior anti-tumor effects compared to PD-1 inhibitor monotherapy. Conclusion: Starting from clinical cohorts, this study identifies SAAL1 as a novel negative regulator and a potential prognostic biomarker for immunotherapy in ESCC. High SAAL1 expression indicates poor prognosis in both treatment-naïve and neoadjuvant immunotherapy-treated ESCC patients, and its predictive power surpasses that of the TNM and ypTNM staging. Its molecular mechanism involves promoting tumor immune escape by co-operating with USP5 to deubiquitinate and stabilize PD-L1 protein. These findings unveil the central role of the SAAL1-USP5-PD-L1 axis in ESCC immunosuppression and provide a novel combinatorial therapeutic strategy and target for overcoming immunotherapy resistance in ESCC.
利益披露 Disclosure
C. Fang, None..
F. Shi, None..
Z. Zhang, None..
H. Yang, None.