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:Knockout of the inhibitory receptor TIGIT enhances the antitumor response of ex vivo expanded NK cells and prevents fratricide with therapeutic Fc-active TIGIT antibodies.
Knockout of the inhibitory receptor TIGIT enhances the antitumor response of ex vivo expanded NK cells and prevents fratricide with therapeutic Fc-active TIGIT antibodies.
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在体外扩增的 NK 细胞中敲除 TIGIT 可增加其细胞毒性和代谢适应性,并在与 Fc 活性抗 TIGIT 抗体联合使用时防止 NK 细胞自相残杀。这些抗自相残杀的 TIGIT KO NK 细胞具有单独或与 Fc 活性抗 TIGIT 抗体联合使用以增强其疗效的治疗潜力。
表达于自然杀伤(NK)细胞和T细胞上的抑制性受体T细胞免疫受体含Ig和ITIM结构域(TIGIT)调控癌症免疫,并被誉为癌症免疫治疗开发的下一前沿。尽管抗TIGIT及其与抗程序性死亡配体1联合治疗的早期结果令人高度振奋,但III期试验的中期分析结果却令人失望。面对喜忧参半的结果,有必要理解治疗性抗TIGIT对TIGIT+免疫细胞的影响,以支持其临床应用。大多数在研的TIGIT抗体具有Fc活性结构域,可与效应细胞上的Fc受体结合。在小鼠模型中,Fc活性抗TIGIT诱导了更优的免疫应答,而其疗效需要Fc受体参与。NK细胞耗竭削弱了抗TIGIT的抗肿瘤免疫,表明NK细胞在抗TIGIT疗效中发挥关键作用。由于NK细胞表达TIGIT和Fc受体CD16,Fc活性抗TIGIT可能通过自相残杀导致NK细胞耗竭,而这一点尚未被研究。
在扩增的NK细胞中进行了基于CRISPR-Cas9的TIGIT敲除(KO)。通过流式细胞术、CyTOF和RNA测序比较了TIGIT KO与野生型(WT)NK细胞的表型和转录组特征。通过钙黄绿素-AM释放和基于活细胞成像的细胞毒性试验测定了TIGIT KO对NK细胞细胞毒性的影响。通过Seahorse分析仪比较了TIGIT KO与WT NK细胞的代谢特征。通过将WT和TIGIT KO NK细胞与Fc活性及Fc非活性抗TIGIT共培养,测定了抗TIGIT的Fc组分对NK细胞自相残杀的影响。
TIGIT KO增强了NK细胞对多种癌细胞系(包括球体)的细胞毒性。与WT NK细胞相比,TIGIT KO NK细胞在与癌细胞共培养时上调了mTOR复合物1(mTORC1)信号传导,并具有更好的代谢适应性,基础糖酵解速率增加。重要的是,TIGIT KO与Fc活性抗TIGIT联合使用时防止了NK细胞自相残杀。
Inhibitory receptor T-cell Immunoreceptor with Ig and ITIM domains (TIGIT) expressed by Natural Killer (NK) and T cells regulates cancer immunity and has been touted as the next frontier in the development of cancer immunotherapeutics. Although early results of anti-TIGIT and its combinations with antiprogrammed death-ligand 1 were highly exciting, results from an interim analysis of phase III trials are disappointing. With mixed results, there is a need to understand the effects of therapeutic anti-TIGIT on the TIGIT + immune cells to support its clinical use. Most of the TIGIT antibodies in development have an Fc-active domain, which binds to Fc receptors on effector cells. In mouse models, Fc-active anti-TIGIT induced superior immunity, while Fc receptor engagement was required for its efficacy. NK-cell depletion compromised the antitumor immunity of anti-TIGIT indicating the essential role of NK cells in the efficacy of anti-TIGIT. Since NK cells express TIGIT and Fc-receptor CD16, Fc-active anti-TIGIT may deplete NK cells via fratricide, which has not been studied.
CRISPR-Cas9-based TIGIT knockout (KO) was performed in expanded NK cells. Phenotypic and transcriptomic properties of TIGIT KO and wild-type (WT) NK cells were compared with flow cytometry, CyTOF, and RNA sequencing. The effect of TIGIT KO on NK-cell cytotoxicity was determined by calcein-AM release and live cell imaging-based cytotoxicity assays. The metabolic properties of TIGIT KO and WT NK cells were compared with a Seahorse analyzer. The effect of the Fc-component of anti-TIGIT on NK-cell fratricide was determined by co-culturing WT and TIGIT KO NK cells with Fc-active and Fc-inactive anti-TIGIT.
TIGIT KO increased the cytotoxicity of NK cells against multiple cancer cell lines including spheroids. TIGIT KO NK cells upregulated mTOR complex 1 (mTORC1) signaling and had better metabolic fitness with an increased basal glycolytic rate when co-cultured with cancer cells compared with WT NK cells. Importantly, TIGIT KO prevented NK-cell fratricide when combined with Fc-active anti-TIGIT.
TIGIT KO in ex vivo expanded NK cells increased their cytotoxicity and metabolic fitness and prevented NK-cell fratricide when combined with Fc-active anti-TIGIT antibodies. These fratricide-resistant TIGIT KO NK cells have therapeutic potential alone or in combination with Fc-active anti-TIGIT antibodies to enhance their efficacy.
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