Kvorjak Michael, Ruffo Elisa, Tivon Yaniv, So Victor, Parikh Avani B, Deiters Alexander, Lohmueller Jason
University of Pittsburgh School of Medicine, Department of Surgery, Pittsburgh, PA 15232, USA.
University of Pittsburgh School of Medicine, Department of Immunology, Pittsburgh, PA 15232, USA.
bioRxiv. 2023 May 23:2023.05.22.541664. doi: 10.1101/2023.05.22.541664.
As living drugs, engineered T cell therapies are revolutionizing disease treatment with their unique functional capabilities. However, they suffer from limitations of potentially unpredictable behavior, toxicities, and non-traditional pharmacokinetics. Engineering conditional control mechanisms responsive to tractable stimuli such as small molecules or light is thus highly desirable. We and others previously developed "universal" chimeric antigen receptors (CARs) that interact with co-administered antibody adaptors to direct target cell killing and T cell activation. Universal CARs are of high therapeutic interest due to their ability to simultaneously target multiple antigens on the same disease or different diseases by combining with adaptors to different antigens. Here, we further enhance the programmability and potential safety of universal CAR T cells by engineering OFF-switch adaptors that can conditionally control CAR activity, including T cell activation, target cell lysis, and transgene expression, in response to a small molecule or light stimulus. Moreover, in adaptor combination assays, OFF-switch adaptors were capable of orthogonal conditional targeting of multiple antigens simultaneously following Boolean logic. OFF-switch adaptors represent a robust new approach for precision targeting of universal CAR T cells with potential for enhanced safety.
作为活药物,工程化T细胞疗法凭借其独特的功能能力正在彻底改变疾病治疗方式。然而,它们存在潜在行为不可预测、毒性以及非传统药代动力学等局限性。因此,构建对小分子或光等易处理刺激有响应的条件控制机制非常必要。我们和其他研究团队之前开发了“通用”嵌合抗原受体(CAR),其与共同给药的抗体衔接子相互作用以指导靶细胞杀伤和T细胞激活。通用CAR因其能够通过与针对不同抗原的衔接子结合,同时靶向同一种疾病或不同疾病上的多种抗原,而具有很高的治疗价值。在此,我们通过构建可响应小分子或光刺激而有条件地控制CAR活性(包括T细胞激活、靶细胞裂解和转基因表达)的关闭开关衔接子,进一步提高了通用CAR T细胞的可编程性和潜在安全性。此外,在衔接子组合试验中,关闭开关衔接子能够按照布尔逻辑同时对多种抗原进行正交条件靶向。关闭开关衔接子代表了一种强大的新方法,可用于通用CAR T细胞的精准靶向,具有提高安全性的潜力。