CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:Computational identification of cross-reactive TCR epitopes with ARDitox.
Computational identification of cross-reactive TCR epitopes with ARDitox.
我们的发现强调了ARDitox计算机模拟方法在早期可靠识别脱靶表位以供进一步临床前评估中的价值。该平台有力支持开发更安全的TCR介导的免疫疗法。
细胞免疫疗法,例如利用表达天然或工程化T细胞受体(TCRs)的T淋巴细胞的疗法,已显示出治疗疗效。然而,一些工程化的高亲和力TCRs因靶向后来发现既表达于肿瘤细胞又表达于健康组织的表位,导致了致命的脱靶免疫毒性。不幸的是,TCRs可与序列高度不同的表位发生交叉反应,使得预测困难,而TCRs精细的序列特异性意味着小鼠安全性研究无法发现人类特异性表位。
为了解决这一问题,我们开发了 ARDitox,这是一种基于计算免疫学和人工智能(AI)的新型 in silico 方法,用于预测和分析潜在的 TCR 脱靶毒性。我们在四种据报道靶向肿瘤相关抗原的 TCR 上测试了 ARDitox 的性能,其中两种已知会引起临床免疫毒性(MAGEA3 112-120 和 MAGEA3 168-176 表位),一种已通过实验鉴定出脱靶抗原(AFP 158-166 表位),最后一种未发现已知的交叉反应性表位(NY-ESO-1 157-165)。
ARDitox 证实了先前鉴定的免疫毒性表位。随后,我们将分析扩展到一种靶向肿瘤相关抗原 NLGN4X 的新型 TCR,该抗原在胶质瘤中常上调。针对这一靶点,ARDitox 鉴定出一种交叉反应性肽,而使用小鼠模型则无法发现该肽,凸显了我们计算方法的优势。
BACKGROUND: Cellular immunotherapies, such as those utilizing T lymphocytes expressing native or engineered T cell receptors (TCRs), have demonstrated therapeutic efficacy. However, some engineered high-affinity TCRs have caused fatal off-target immunotoxicity due to targeting epitopes later found to be expressed by both tumor cells and healthy tissues. Unfortunately, TCRs can be cross-reactive to epitopes with highly distinct sequences, making prediction difficult, and the exquisite sequence specificity of TCRs means that safety studies in mice miss human-specific epitopes. METHODS: To address this issue, we developed ARDitox, a novel in silico method based on computational immunology and artificial intelligence (AI) for predicting and analyzing potential TCR off-target toxicities. We tested the performance of ARDitox on four TCRs reported to target tumor-associated antigens, two of which are known to cause clinical immunotoxicity (MAGEA3 112-120 and MAGEA3 168-176 epitopes), one of which has experimentally identified off-target antigens (AFP 158-166 epitope), and the last one for which no cross-reactive epitopes are known (NY-ESO-1 157-165 ). RESULTS: ARDitox confirmed the previously identified immunotoxic epitopes. We then expanded our analyses to a novel TCR targeting the tumor-associated antigen NLGN4X, frequently upregulated in gliomas. For this target, ARDitox identified a cross-reactive peptide that would not have been found using mouse models, highlighting the value of our computational approach. CONCLUSIONS: Our findings underscore the value of the ARDitox in silico method for the early and reliable identification of off-target epitopes for further preclinical evaluation. This platform strongly supports the development of safer TCR-mediated immunotherapies.
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