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DeepTCR 是一个深度学习框架,用于揭示 T 细胞受体库中的序列概念。

DeepTCR is a deep learning framework for revealing sequence concepts within T-cell repertoires.

机构信息

Bloomberg Kimmel Institute for Cancer Immunotherapy, Johns Hopkins University School of Medicine, Baltimore, MD, USA.

The Sidney Kimmel Comprehensive Cancer Center, Johns Hopkins University School of Medicine, Baltimore, MD, USA.

出版信息

Nat Commun. 2021 Mar 11;12(1):1605. doi: 10.1038/s41467-021-21879-w.

Abstract

Deep learning algorithms have been utilized to achieve enhanced performance in pattern-recognition tasks. The ability to learn complex patterns in data has tremendous implications in immunogenomics. T-cell receptor (TCR) sequencing assesses the diversity of the adaptive immune system and allows for modeling its sequence determinants of antigenicity. We present DeepTCR, a suite of unsupervised and supervised deep learning methods able to model highly complex TCR sequencing data by learning a joint representation of a TCR by its CDR3 sequences and V/D/J gene usage. We demonstrate the utility of deep learning to provide an improved 'featurization' of the TCR across multiple human and murine datasets, including improved classification of antigen-specific TCRs and extraction of antigen-specific TCRs from noisy single-cell RNA-Seq and T-cell culture-based assays. Our results highlight the flexibility and capacity for deep neural networks to extract meaningful information from complex immunogenomic data for both descriptive and predictive purposes.

摘要

深度学习算法已被用于实现模式识别任务的性能提升。在免疫基因组学中,从数据中学习复杂模式的能力具有重要意义。T 细胞受体 (TCR) 测序评估适应性免疫系统的多样性,并允许对其抗原性的序列决定因素进行建模。我们提出了 DeepTCR,这是一套无监督和监督的深度学习方法,能够通过学习 TCR 的 CDR3 序列和 V/D/J 基因使用情况的联合表示来对高度复杂的 TCR 测序数据进行建模。我们证明了深度学习在提供跨多个人类和小鼠数据集的 TCR 的改进“特征化”方面的实用性,包括改进的抗原特异性 TCR 分类和从嘈杂的单细胞 RNA-Seq 和基于 T 细胞培养的测定中提取抗原特异性 TCR。我们的结果强调了深度神经网络从复杂免疫基因组数据中提取有意义信息的灵活性和能力,用于描述性和预测性目的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b14/7952906/cd6093febb5c/41467_2021_21879_Fig1_HTML.jpg

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