CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Electrophilic proximity-inducing synthetic adapters enhance universal T cell function by covalently enforcing immune receptor signaling.
Electrophilic proximity-inducing synthetic adapters enhance universal T cell function by covalently enforcing immune receptor signaling.
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通过小分子诱导细胞间相互作用的邻近诱导是基础与转化科学中的一个新兴领域。这些小分子的共价锚定是一种有用的化学策略,用于强制实现邻近;然而,其在驱动细胞间相互作用方面仍很大程度上未被探索。在免疫治疗应用中,双功能小分子是诱导免疫效应细胞(如 T 细胞)与肿瘤细胞之间邻近从而引发杀肿瘤功能的有吸引力的工具。
我们描述了一种由亲电双功能小分子和配对合成抗原受体(SARs)组成的两组分系统,该系统可引发 T 细胞活化。这些分子被称为共价免疫招募剂(CIRs),被设计用于亲和标记并共价结合 SARs。
我们评估了 CIRs 指导经三类生物学上不同的 SAR 工程化的人 T 细胞抗肿瘤功能的效用。无论亲电化学、肿瘤靶向部分或 SAR 设计如何,CIRs 均优于等效的非共价双功能衔接器,确立了共价性在最大化功能性中的关键作用。
我们确定,共价连接以依赖于每种 SARs 生物学和信号阈值的方式强制实现早期 T 细胞活化事件。这些结果为优化通用 SAR-T 细胞功能性提供了一个平台,并更广泛地揭示了关于共价衔接器如何调节细胞间邻近诱导的新见解。
Proximity-induction of cell-cell interactions via small molecules represents an emerging field in basic and translational sciences. Covalent anchoring of these small molecules represents a useful chemical strategy to enforce proximity; however, it remains largely unexplored for driving cell-cell interactions. In immunotherapeutic applications, bifunctional small molecules are attractive tools for inducing proximity between immune effector cells like T cells and tumor cells to induce tumoricidal function.
We describe a two-component system composed of electrophilic bifunctional small molecules and paired synthetic antigen receptors (SARs) that elicit T cell activation. The molecules, termed covalent immune recruiters (CIRs), were designed to affinity label and covalently engage SARs.
We evaluated the utility of CIRs to direct anti-tumor function of human T cells engineered with three biologically distinct classes of SAR. Irrespective of the electrophilic chemistry, tumor-targeting moiety, or SAR design, CIRs outperformed equivalent non-covalent bifunctional adapters, establishing a key role for covalency in maximizing functionality.
We determined that covalent linkage enforced early T cell activation events in a manner that was dependent upon each SARs biology and signaling threshold. These results provide a platform to optimize universal SAR-T cell functionality and more broadly reveal new insights into how covalent adapters modulate cell-cell proximity-induction.
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