A synthetic cytotoxic T cell platform for rapidly prototyping TCR function

IF 6.8 1区 医学 Q1 ONCOLOGY NPJ Precision Oncology Pub Date : 2024-08-19 DOI:10.1038/s41698-024-00669-9
Govinda Sharma, James Round, Fei Teng, Zahra Ali, Chris May, Eric Yung, Robert A. Holt
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Abstract

Current tools for functionally profiling T cell receptors with respect to cytotoxic potency and cross-reactivity are hampered by difficulties in establishing model systems to test these proteins in the contexts of different HLA alleles and against broad arrays of potential antigens. We have implemented a granzyme-activatable sensor of T cell cytotoxicity in a universal prototyping platform which enables facile recombinant expression of any combination of TCR-, peptide-, and class I MHC-coding sequences and direct assessment of resultant responses. This system consists of an engineered cell platform based on the immortalized natural killer cell line, YT-Indy, and the MHC-null antigen-presenting cell line, K562. These cells were engineered to furnish the YT-Indy/K562 pair with appropriate protein domains required for recombinant TCR expression and function in a non-T cell chassis, integrate a fluorescence-based target-centric early detection reporter of cytotoxic function, and deploy a set of protective genetic interventions designed to preserve antigen-presenting cells for subsequent capture and downstream characterization. Our data show successful reconstitution of the surface TCR complex in the YT-Indy cell line at biologically relevant levels. We also demonstrate successful induction and highly sensitive detection of antigen-specific response in multiple distinct model TCRs. Additionally, we monitored destruction of targets in co-culture and found that our survival-optimized system allowed for complete preservation after 24 h exposure to cytotoxic effectors. With this bioplatform, we anticipate investigators will be empowered to rapidly express and characterize T cell receptor responses, generate knowledge regarding the patterns of T cell receptor recognition, and optimize therapeutic T cell receptors.

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用于快速构建 TCR 功能原型的合成细胞毒性 T 细胞平台
由于难以建立模型系统来测试这些蛋白在不同 HLA 等位基因背景下以及针对广泛的潜在抗原阵列的作用,目前用于分析 T 细胞受体细胞毒性效力和交叉反应性的工具受到了阻碍。我们在一个通用的原型平台上实现了一种粒酶激活的 T 细胞细胞毒性传感器,它能方便地重组表达 TCR、多肽和 I 类 MHC 编码序列的任何组合,并直接评估由此产生的反应。该系统包括一个基于永生化自然杀伤细胞株 YT-Indy 和 MHC 缺失的抗原递呈细胞株 K562 的工程细胞平台。设计这些细胞的目的是为 YT-Indy/K562 细胞对提供在非 T 细胞底盘中重组 TCR 表达和功能所需的适当蛋白质结构域,整合基于荧光的以靶点为中心的细胞毒性功能早期检测报告器,并部署一套保护性遗传干预措施,旨在保留抗原递呈细胞,以便后续捕获和下游鉴定。我们的数据显示,YT-Indy 细胞系中的表面 TCR 复合物在生物相关水平上成功重组。我们还证明了在多个不同的模型 TCR 中成功诱导和高灵敏度地检测抗原特异性反应。此外,我们还监测了共培养中靶点的破坏情况,发现我们的生存优化系统可以在暴露于细胞毒性效应物 24 小时后完全保存靶点。有了这个生物平台,我们预计研究人员将有能力快速表达和描述 T 细胞受体反应,生成有关 T 细胞受体识别模式的知识,并优化治疗性 T 细胞受体。
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来源期刊
CiteScore
9.90
自引率
1.30%
发文量
87
审稿时长
18 weeks
期刊介绍: Online-only and open access, npj Precision Oncology is an international, peer-reviewed journal dedicated to showcasing cutting-edge scientific research in all facets of precision oncology, spanning from fundamental science to translational applications and clinical medicine.
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