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基于计算机的 SARS-CoV-2 细胞表位预测:进展与展望。

In silico T cell epitope identification for SARS-CoV-2: Progress and perspectives.

机构信息

Department of Electronic and Computer Engineering, The Hong Kong University of Science and Technology, Hong Kong, China.

Department of Electronic and Computer Engineering, The Hong Kong University of Science and Technology, Hong Kong, China.

出版信息

Adv Drug Deliv Rev. 2021 Apr;171:29-47. doi: 10.1016/j.addr.2021.01.007. Epub 2021 Jan 17.

Abstract

Growing evidence suggests that T cells may play a critical role in combating severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). Hence, COVID-19 vaccines that can elicit a robust T cell response may be particularly important. The design, development and experimental evaluation of such vaccines is aided by an understanding of the landscape of T cell epitopes of SARS-CoV-2, which is largely unknown. Due to the challenges of identifying epitopes experimentally, many studies have proposed the use of in silico methods. Here, we present a review of the in silico methods that have been used for the prediction of SARS-CoV-2 T cell epitopes. These methods employ a diverse set of technical approaches, often rooted in machine learning. A performance comparison is provided based on the ability to identify a specific set of immunogenic epitopes that have been determined experimentally to be targeted by T cells in convalescent COVID-19 patients, shedding light on the relative performance merits of the different approaches adopted by the in silico studies. The review also puts forward perspectives for future research directions.

摘要

越来越多的证据表明,T 细胞可能在对抗严重急性呼吸综合征冠状病毒 2(SARS-CoV-2)方面发挥着关键作用。因此,能够引发强烈 T 细胞反应的 COVID-19 疫苗可能尤为重要。对这些疫苗的设计、开发和实验评估,需要深入了解 SARS-CoV-2 的 T 细胞表位全景图,但这在很大程度上仍是未知的。由于实验鉴定表位存在挑战,许多研究都提出了使用计算方法。本文综述了用于预测 SARS-CoV-2 T 细胞表位的计算方法。这些方法采用了多种技术方法,这些方法通常基于机器学习。根据识别特定免疫原性表位的能力进行了性能比较,这些表位是通过实验确定的,在 COVID-19 恢复期患者的 T 细胞中被靶向,揭示了计算研究采用的不同方法的相对性能优势。该综述还提出了未来研究方向的观点。

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