免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Gene network-based and ensemble modeling-based selection of tumor-associated antigens with a predicted low risk of tissue damage for targeted immunotherapy.
Gene network-based and ensemble modeling-based selection of tumor-associated antigens with a predicted low risk of tissue damage for targeted immunotherapy.
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在本研究中,我们证明了从头计算选择具有诱导抗肿瘤免疫反应能力且预测组织损伤风险低的抗原的可行性。在向临床转化时,我们的流程支持快速周转验证,例如,用于过继性 T 细胞转移制备,在通用和个性化抗原导向的免疫治疗环境中均可应用。
肿瘤相关抗原及其衍生肽为设计适用于广泛患者的现成主线或辅助抗癌免疫疗法提供了机会。一个高效且合理的抗原筛选流程将为免疫治疗试验奠定基础,有望增强治疗效果,极大地惠及患有罕见、研究不足癌症的患者。
我们提出了一种经过实验验证、数据驱动的计算流程,该流程采用多管齐下的方法对抗原进行选择和排序。除了根据肿瘤活检和健康组织中的表达谱选择抗原来最大程度降低免疫相关不良事件的风险外,我们还整合了基于计算建模结果的网络分析衍生抗原不可或缺性指数,以及依赖于肽理化特征的机器学习集成模型所预测的候选免疫原性。
在葡萄膜黑色素瘤的模型研究中,人类白细胞抗原(HLA)对接模拟和肽-主要组织相容性复合体结合亲和力的实验定量证实,我们的方法能够区分高结合亲和力和低结合亲和力的肽,其性能与现有方法相似。使用自体T细胞进行的盲法验证实验显示,尽管供体间变异性很高,肽刺激仍诱导了干扰素-γ分泌和细胞毒性活性。剖析所测试抗原的评分贡献发现,那些有可能诱导细胞毒性但由于潜在组织损伤或表达不稳定而不适合的肽,被计算流程正确地剔除了。
Tumor-associated antigens and their derived peptides constitute an opportunity to design off-the-shelf mainline or adjuvant anti-cancer immunotherapies for a broad array of patients. A performant and rational antigen selection pipeline would lay the foundation for immunotherapy trials with the potential to enhance treatment, tremendously benefiting patients suffering from rare, understudied cancers.
We present an experimentally validated, data-driven computational pipeline that selects and ranks antigens in a multipronged approach. In addition to minimizing the risk of immune-related adverse events by selecting antigens based on their expression profile in tumor biopsies and healthy tissues, we incorporated a network analysis-derived antigen indispensability index based on computational modeling results, and candidate immunogenicity predictions from a machine learning ensemble model relying on peptide physicochemical characteristics.
In a model study of uveal melanoma, Human Leukocyte Antigen (HLA) docking simulations and experimental quantification of the peptide-major histocompatibility complex binding affinities confirmed that our approach discriminates between high-binding and low-binding affinity peptides with a performance similar to that of established methodologies. Blinded validation experiments with autologous T-cells yielded peptide stimulation-induced interferon-γ secretion and cytotoxic activity despite high interdonor variability. Dissecting the score contribution of the tested antigens revealed that peptides with the potential to induce cytotoxicity but unsuitable due to potential tissue damage or instability of expression were properly discarded by the computational pipeline.
In this study, we demonstrate the feasibility of the de novo computational selection of antigens with the capacity to induce an anti-tumor immune response and a predicted low risk of tissue damage. On translation to the clinic, our pipeline supports fast turn-around validation, for example, for adoptive T-cell transfer preparations, in both generalized and personalized antigen-directed immunotherapy settings.
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