CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Predicting Antigen-Specificities of Orphan T Cell Receptors from Cancer Patients with TCRpcDist.
Predicting Antigen-Specificities of Orphan T Cell Receptors from Cancer Patients with TCRpcDist.
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分析和聚类T细胞受体(TCR)库以反映抗原特异性的方法,对于免疫相关疾病的诊断和预后以及个性化疗法的开发至关重要。基于序列的方法已显示出成功,但仍存在局限性,尤其是当用于训练的实验数据量稀少时。基于结构的方法作为强有力的替代方案,尤其是在优化TCR对特定表位的亲和力方面,在大规模预测上显示出局限性。为应对这些挑战,提出了TCRpcDist,这是一种基于3D的方法,利用与预测会与表位相互作用的环残基的理化性质相关的度量来计算TCR之间的相似性。通过利用私有和公开数据集并将TCRpcDist与竞争方法进行比较,证明TCRpcDist能够准确识别可能结合相同表位的TCR组。
重要的是,TCRpcDist确定癌症患者中孤儿TIL(肿瘤浸润淋巴细胞)抗原特异性(新抗原和肿瘤相关抗原)的能力得到了实验验证。
因此,TCRpcDist是一种有前景的方法,可支持TCR库分析和TCR去孤儿化,用于包括癌症免疫疗法在内的个体化治疗。
Approaches to analyze and cluster T-cell receptor (TCR) repertoires to reflect antigen specificity are critical for the diagnosis and prognosis of immune-related diseases and the development of personalized therapies. Sequence-based approaches showed success but remain restrictive, especially when the amount of experimental data used for the training is scarce. Structure-based approaches which represent powerful alternatives, notably to optimize TCRs affinity toward specific epitopes, show limitations for large-scale predictions.
To handle these challenges, TCRpcDist is presented, a 3D-based approach that calculates similarities between TCRs using a metric related to the physico-chemical properties of the loop residues predicted to interact with the epitope. By exploiting private and public datasets and comparing TCRpcDist with competing approaches, it is demonstrated that TCRpcDist can accurately identify groups of TCRs that are likely to bind the same epitopes.
Importantly, the ability of TCRpcDist is experimentally validated to determine antigen specificities (neoantigens and tumor-associated antigens) of orphan tumor-infiltrating lymphocytes (TILs) in cancer patients. TCRpcDist is thus a promising approach to support TCR repertoire analysis and TCR deorphanization for individualized treatments including cancer immunotherapies.
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