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机器学习引导的胶质母细胞瘤细胞向树突状细胞样抗原呈递细胞的转化作为癌症免疫疗法

Machine Learning-Directed Conversion of Glioblastoma Cells to Dendritic Cell-Like Antigen-Presenting Cells as Cancer Immunotherapy.

作者信息

Liu Tianyi, Jin Dan, Le Son B, Chen Dongjiang, Sebastian Mathew, Riva Alberto, Liu Ruixuan, Tran David D

机构信息

Division of Neuro-Oncology, Department of Neurological Surgery, University of Southern California Keck School of Medicine, Los Angeles, California.

USC Brain Tumor Center, University of Southern California Keck School of Medicine, Los Angeles, California.

出版信息

Cancer Immunol Res. 2024 Oct 1;12(10):1340-1360. doi: 10.1158/2326-6066.CIR-23-0721.

Abstract

Immunotherapy has limited efficacy in glioblastoma (GBM) due to the blood-brain barrier and the immunosuppressed or "cold" tumor microenvironment (TME) of GBM, which is dominated by immune-inhibitory cells and depleted of CTL and dendritic cells (DC). Here, we report the development and application of a machine learning precision method to identify cell fate determinants (CFD) that specifically reprogram GBM cells into induced antigen-presenting cells with DC-like functions (iDC-APC). In murine GBM models, iDC-APCs acquired DC-like morphology, regulatory gene expression profile, and functions comparable to natural DCs. Among these acquired functions were phagocytosis, direct presentation of endogenous antigens, and cross-presentation of exogenous antigens. The latter endowed the iDC-APCs with the ability to prime naïve CD8+ CTLs, a hallmark DC function critical for antitumor immunity. Intratumor iDC-APCs reduced tumor growth and improved survival only in immunocompetent animals, which coincided with extensive infiltration of CD4+ T cells and activated CD8+ CTLs in the TME. The reactivated TME synergized with an intratumor soluble PD1 decoy immunotherapy and a DC-based GBM vaccine, resulting in robust killing of highly resistant GBM cells by tumor-specific CD8+ CTLs and significantly extended survival. Lastly, we defined a unique CFD combination specifically for the human GBM to iDC-APC conversion of both glioma stem-like cells and non-stem-like cell GBM cells, confirming the clinical utility of a computationally directed, tumor-specific conversion immunotherapy for GBM and potentially other solid tumors.

摘要

由于血脑屏障以及胶质母细胞瘤(GBM)免疫抑制或“冷”的肿瘤微环境(TME),免疫疗法在GBM中的疗效有限,GBM的肿瘤微环境以免疫抑制细胞为主,细胞毒性T淋巴细胞(CTL)和树突状细胞(DC)缺失。在此,我们报告了一种机器学习精准方法的开发与应用,该方法用于识别细胞命运决定因素(CFD),这些因素可将GBM细胞特异性重编程为具有DC样功能的诱导抗原呈递细胞(iDC-APC)。在小鼠GBM模型中,iDC-APC具有与天然DC相似的形态、调控基因表达谱和功能。这些获得的功能包括吞噬作用、内源性抗原的直接呈递以及外源性抗原的交叉呈递。后者赋予iDC-APC激活初始CD8+ CTL的能力,这是DC的一项关键抗肿瘤免疫功能。肿瘤内的iDC-APC仅在免疫健全的动物中能减少肿瘤生长并提高生存率,这与肿瘤微环境中CD4+ T细胞的广泛浸润和活化的CD8+ CTL相吻合。重新激活的肿瘤微环境与肿瘤内可溶性PD1诱饵免疫疗法以及基于DC的GBM疫苗协同作用,导致肿瘤特异性CD8+ CTL对高度耐药的GBM细胞进行强力杀伤,并显著延长生存期。最后,我们确定了一组独特的CFD组合,专门用于将人GBM中的胶质瘤干细胞样细胞和非干细胞样GBM细胞转化为iDC-APC,证实了针对GBM以及潜在其他实体瘤的计算导向、肿瘤特异性转化免疫疗法的临床实用性。

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