RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Generation of novel human anti-OX-40 mAbs endowed with different biological properties as tools for cancer therapy.
Generation of novel human anti-OX-40 mAbs endowed with different biological properties as tools for cancer therapy.
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第二代抗体免疫治疗包括针对免疫检查点(ICs)的单克隆抗体,用于调节针对癌症或病毒的特定T细胞反应。我们最近通过一种基于噬菌体库在人淋巴细胞上的组合与下一代测序(NGS)的新型筛选策略,生成了针对十种不同ICs的大量全人源抗体库。在此,我们生成并测试了四种新型全人源IgG1单克隆抗体,特异性针对OX-40,这是一种表达于免疫细胞上的免疫刺激性受体,已被证明是免疫治疗策略的有前景靶点。
通过ELISA和生物层干涉术,我们证明它们均以高亲和力特异性结合OX-40,并且识别不同的表位。其中三个抗体干扰OX-40与其配体的结合,从而表明它们与配体竞争受体结合位点。T细胞激活实验证实了这3个抗体的激动剂特性,它们能够通过激活受体下游通路来模拟配体。这种激活导致hPBMCs的有效增殖和促炎细胞因子的分泌。hPBMCs与肿瘤细胞的共培养实验证实了它们诱导免疫细胞抗肿瘤激活的能力。第四个抗体,尽管不具有激动剂活性,但能够通过一种不同的作用机制诱导淋巴细胞激活,该机制基于共培养实验中NK介导的Treg杀伤。讨论与结论:靶向不同表位的这些抗OX40 mAbs的组合可导致免疫细胞的更强激活。此外,表位分箱分析表明它们识别与临床验证的Rocatinlimab不重叠的不同表位,因此它们可能成为潜在的新治疗工具。利用这些新型mAbs的不同行为,我们还利用它们来阐明OX-40在NK细胞上不明确的作用。我们在此首次证明,NK细胞表达的中等糖基化OX-40形式水平高于T细胞,该形式优先被新型mAbs识别,而不被OX-40L识别,后者反而结合一种非免疫细胞上不存在的高度糖基化OX-40变体。因此,糖基化模式可能影响OX-40结合物的识别和生物学效应,在设计新型药物时应予以考虑。
INTRODUCTION: The second generation of Antibody-based Immunotherapy includes monoclonal antibodies against Immune Checkpoints (ICs), to modulate specific T cell responses against cancer or viruses.
We recently generated a large repertoire of fully human antibodies targeting ten different ICs through a novel selection strategy based on the combination of phage libraries on human lymphocytes and next generation sequencing (NGS).
Here we generated and tested four novel fully human IgG1 mAbs specific for OX-40, an immunostimulatory receptor expressed on immune cells, which has been shown to be a promising target for immune-based therapeutic strategies. METHODS AND RESULTS: By ELISA and Biolayer Interferometry we demonstrated that they all specifically bind with high affinity to OX-40 and they recognize distinct epitopes. Three of them interfere with the binding of OX-40 and its ligand, thus suggesting that they compete with it for the receptor binding. T cell activation assays confirmed the agonistic properties of these 3 antibodies which are able to mimic the ligand by activating the pathway downstream the receptor.
This activation results into an effective proliferation of hPBMCs and secretion of proinflammatory cytokines. Co-culture assays of hPBMCs with tumor cells confirm their ability to induce the activation of immune cells against cancer cells.
The fourth antibody, even though non-agonistic, was able to induce the activation of lymphocytes by a different mechanism of action, based on NK-mediated Treg killing in co-culture assays. DISCUSSION AND CONCLUSIONS: Combinations of these anti-OX40 mAbs targeting different epitopes lead to stronger activation of immune cells.
Moreover, epitope binning analyses show that they recognize distinct epitopes not overlapping with that of the clinically validated Rocatinlimab, thus they could become potential new therapeutic tools. Taking advantage of the different behaviour of the novel mAbs, we also exploited them to clarify the unclear role of OX-40 on NK cells.
We show here for the first time that NK cells express higher levels of a medium glycosylated OX-40 form than T cells, which is preferentially recognized by the novel mAbs but not by OX-40L, which instead binds to a highly glycosylated OX-40 variant absent on non-immune cells.
Thus, glycosylation pattern could affect the recognition and biological effects of OX-40 binders and should be considered for the design of novel drugs.
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