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工程化用于靶向激活Notch信号通路的合成激动剂。

Engineering synthetic agonists for targeted activation of Notch signaling.

作者信息

Perez David H, Antfolk Daniel, Bustos Xiomar E, Medina Elliot, Chang Shiun, Ramadan Ahmed A, Rodriguez Paulo C, Gonzalez-Perez David, Abate-Daga Daniel, Luca Vincent C

机构信息

Department of Immunology, Moffitt Cancer Center, Tampa, FL 33602, USA.

出版信息

bioRxiv. 2024 Oct 2:2024.08.06.606897. doi: 10.1101/2024.08.06.606897.

Abstract

Notch signaling regulates cell fate decisions and has context-dependent tumorigenic or tumor suppressor functions. Although there are several classes of Notch inhibitors, the mechanical force requirement for Notch receptor activation has hindered attempts to generate soluble agonists. To address this problem, we engineered synthetic Notch agonist (SNAG) proteins by tethering affinity-matured Notch ligands to antibodies or cytokines that internalize their targets. This bispecific format enables SNAGs to "pull" on mechanosensitive Notch receptors, triggering their activation in the presence of a desired biomarker. We successfully developed SNAGs targeting six independent surface markers, including the tumor antigens PDL1, CD19, and HER2, and the immunostimulatory receptor CD40. SNAGs targeting CD40 increase expansion of central memory γδ T cells from peripheral blood, highlighting their potential to improve the phenotype and yield of low-abundance T cell subsets. These insights have broad implications for the pharmacological activation of mechanoreceptors and will expand our ability to modulate Notch signaling in biotechnology.

摘要

Notch信号通路调控细胞命运决定,具有取决于背景的致瘤或肿瘤抑制功能。尽管存在几类Notch抑制剂,但Notch受体激活所需的机械力阻碍了生成可溶性激动剂的尝试。为解决这一问题,我们通过将亲和力成熟的Notch配体与能内化其靶标的抗体或细胞因子相连,设计了合成Notch激动剂(SNAG)蛋白。这种双特异性形式使SNAG能够“拉动”机械敏感的Notch受体,在存在所需生物标志物的情况下触发其激活。我们成功开发了靶向六种独立表面标志物的SNAG,包括肿瘤抗原PDL1、CD19和HER2,以及免疫刺激受体CD40。靶向CD40的SNAG增加了外周血中中央记忆γδT细胞的扩增,突出了它们改善低丰度T细胞亚群表型和产量的潜力。这些见解对机械感受器的药理学激活具有广泛影响,并将扩展我们在生物技术中调节Notch信号通路的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76a7/11457548/e72e8959ef40/nihpp-2024.08.06.606897v3-f0001.jpg

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