PO.IM01.16 · 免疫学
发现靶向CD28的单域抗体以促进共刺激性T细胞衔接器的开发
Discovery of CD28 targeting single domain antibodies to facilitate the development of costimulatory T cell engager
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
最佳的T细胞激活是一个多步骤过程,需要T细胞受体与肽-MHC复合物的结合(信号1)以及共刺激信号(信号2)的耦合。信号2的缺失会增加TCR激活诱导的细胞凋亡并降低T细胞增殖,这可能导致临床上抗PD1疗法或CD3 T细胞衔接器(TCE)的治疗活性受损。本研究的目的是鉴定CD28单域抗体,以开发共刺激性T细胞衔接器,改善T细胞增殖、存活和反应持久性,从而进一步扩展检查点阻断和/或CD3 TCE疗法在治疗多种实体瘤中的应用。通过分析PBMC/T细胞激活测定中的IL-2分泌,评估了靶向CD28的VHH或基于CD28的双特异性TCE(BiTCE)或三特异性TCE(TriTCE)的激动特性。在使用基于CD28的抗体处理后,通过抗凋亡标志物Bcl-xl的表达测量T细胞存活。在CD3 TCE或抗PD-1 mAb存在的情况下,将肿瘤细胞与T细胞及基于CD28的双或三TCE共同孵育。随后测量靶细胞的存活率以反映T细胞杀伤活性。进一步使用异种移植小鼠模型确认将靶向CD28的激动剂整合入CD3 TCE的益处。我们获得了一系列以非超级激动方式、以不同结合亲和力结合CD28的靶向CD28激动性VHH。CD28靶向T细胞衔接器的共刺激效应得到证实:(1) 当与CD3 TCE联合时,CD28xB7-H3 BiTCE显著改善了对OVCAR-3细胞的T细胞杀伤效力和持久性,当与抗PD-1 mAb联合时强烈激活T细胞并增强对A375细胞的T细胞杀伤效力;(2) 通过筛选最合适的CD28激动剂和精巧的形式设计,生成了CD3/CD28/TAA TriTCE。与CD3xROR1和CD3xMUC16相比,CD3xROR1xCD28和CD3xMUC16xCD28均显著改善T细胞存活,进而在体外和体内实现对靶肿瘤细胞更持久的T细胞杀伤。因此,在CD3 TCE和免疫检查点阻断治疗期间纳入CD28信号传导可能改善实体瘤患者的治疗获益。
查看英文原文 English abstract
Optimal T-cell activation is a multistep process requiring T-cell receptor engagement by peptide-MHC complexes (Signal 1) coupled with costimulatory signals (Signal 2). The lack of Signal 2 increases the TCR activation-induced cell apoptosis and decreases T cell proliferation, which may lead to compromised therapeutic activity of anti-PD1 therapy or CD3 T cell engagers (TCEs) in the clinic. The purpose of this study is to identify CD28 single domain antibodies to develop co-stimulatory T cell engager to improve T cell proliferation, survival and response durability, and therefore further expand the utility of checkpoint blockade and/or CD3 TCE therapies for treatment of a broad range of solid tumors. The agonistic propriety of CD28-targeting VHH or CD28-based bi-specific TCE (BiTCE) or tri-specific TCE (TriTCE) was evaluated by analysis of IL-2 secretion in PBMC/T cell activation assay. T cell survival was measured by the expression of anti-apoptosis marker Bcl-xl after treatment of CD28-based antibody. Tumor cells were incubated with T cells together with CD28-based bi- or tri-TCE in the presence of CD3 TCE or anti-PD-1 mAb. Viability of target cells were then measured to reflect T cell killing activity. Xenograft mice models were further used to confirm the benefit of integrating CD28-targeting agonist into CD3 TCE. A series of CD28-targeting agonistic VHHs binding to CD28 with different binding affinities in a non-superagonistic manner were obtained. The co-stimulatory effect of CD28-targeting T cell engagers were demonstrated: (1) CD28xB7-H3 BiTCE significantly improved T cell killing potency and durability on OVCAR-3 cells when combined with CD3 TCE and strongly activated T cells and enhanced T cell killing potency of A375 cells when combined with anti-PD-1 mAb; (2) CD3/CD28/TAA TriTCE were generated by screening of the most suitable CD28 agonist and delicate format design. Both CD3xROR1xCD28 and CD3xMUC16xCD28 significantly improve T cell survival which in turn allows more persisted T cell killing of target tumor cells in vitro and in vivo, compared to CD3xROR1 and CD3xMUC16, respectively. Therefore, including CD28 signaling during CD3 TCE and immune checkpoint blockade treatment may improve the therapeutic benefit in patients with solid tumors.
利益披露 Disclosure
S. Nie, None..
Y. Wan, None..
H. Zhou, None..
X. Ji, None..
J. Xu, None..
L. Wu, None..
J. Gu, None.