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:Interleukin-2 is required for NKp30-dependent NK cell cytotoxicity by preferentially regulating NKp30 expression.
Interleukin-2 is required for NKp30-dependent NK cell cytotoxicity by preferentially regulating NKp30 expression.
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自然杀伤(NK)细胞是癌症免疫监视中的关键效应细胞,能够消除广谱癌细胞,且不具有主要组织相容性复合体(MHC)特异性,也无移植物抗宿主病(GvHD)风险。使用来自健康供者的同种异体NK细胞疗法已在治疗多种癌症,尤其是血液系统恶性肿瘤方面展现出良好的临床疗效,但其需要IL-2等细胞因子来主要支持NK细胞的持续存在和扩增。
然而,IL-2在调节活化受体以及为临床试验扩增的NK细胞功能中的作用仍知之甚少,需要加以阐明,以充分发挥NK细胞在癌症免疫治疗中的作用。
在此,我们证明,IL-2剥夺会显著损害原代扩增NK细胞的细胞毒性,其机制是优先下调NKp30,而非NKp46,尽管二者在表达和功能上共同依赖同一衔接蛋白。利用NK92和产生IL-2的NK92MI细胞,我们观察到,在IL-2剥夺后,NKp30介导的对髓系白血病细胞如表达NKp30配体B7-H6的K562和THP-1细胞的细胞毒性受到严重损害。
此外,IL-2缺乏介导的NK细胞功能障碍可通过异位过表达免疫刺激性NKp30亚型如NKp30a或NKp30b而被克服。特别是,NK92细胞中NKp30a的过表达在无需补充IL-2的情况下改善了体内THP-1细胞的清除。
总之,我们的结果突出了IL-2在调节NKp30方面与调节NKp46相比的独特作用,并提示NKp30上调,如此处通过异位过表达所示,可作为在癌症免疫治疗中利用NK细胞的一种可行方式,并可能与IL-2免疫细胞因子联合使用。
Natural killer (NK) cells are key effectors in cancer immunosurveillance, eliminating a broad spectrum of cancer cells without major histocompatibility complex (MHC) specificity and graft-versus-host diseases (GvHD) risk. The use of allogeneic NK cell therapies from healthy donors has demonstrated favorable clinical efficacies in treating diverse cancers, particularly hematologic malignancies, but it requires cytokines such as IL-2 to primarily support NK cell persistence and expansion.
However, the role of IL-2 in the regulation of activating receptors and the function of NK cells expanded for clinical trials is poorly understood and needs clarification for the full engagement of NK cells in cancer immunotherapy.
Here, we demonstrated that IL-2 deprivation significantly impaired the cytotoxicity of primary expanded NK cells by preferentially downregulating NKp30 but not NKp46 despite their common adaptor requirement for expression and function. Using NK92 and IL-2-producing NK92MI cells, we observed that NKp30-mediated cytotoxicity against myeloid leukemia cells such as K562 and THP-1 cells expressing B7-H6, a ligand for NKp30, was severely impaired by IL-2 deprivation.
Furthermore, IL-2 deficiency-mediated NK cell dysfunction was overcome by the ectopic overexpression of an immunostimulatory NKp30 isoform such as NKp30a or NKp30b. In particular, NKp30a overexpression in NK92 cells improved the clearance of THP-1 cells in vivo without IL-2 supplementation.
Collectively, our results highlight the distinct role of IL-2 in the regulation of NKp30 compared to that of NKp46 and suggest NKp30 upregulation, as shown here by ectopic overexpression, as a viable modality to harness NK cells in cancer immunotherapy, possibly in combination with IL-2 immunocytokines.
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