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:Effect of Hypoxia on Siglec-7 and Siglec-9 Receptors and Sialoglycan Ligands and Impact of Their Targeting on NK Cell Cytotoxicity.
Effect of Hypoxia on Siglec-7 and Siglec-9 Receptors and Sialoglycan Ligands and Impact of Their Targeting on NK Cell Cytotoxicity.
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我们的研究结果指向 Siglec-唾液酸化聚糖相互作用在缺氧应激诱导的 NK 细胞功能障碍中的作用,并建议未来肿瘤免疫治疗策略中通过靶向 Siglec 来干预该轴。
肿瘤微环境缺氧是实体瘤公认的标志,可显著促进肿瘤侵袭性和治疗耐药,并可能影响NK细胞表面激活性/抑制性受体的表达平衡和活性。本研究考察缺氧对NK细胞及肿瘤靶细胞表面Siglec-7和Siglec-9(Sig-7/9)及其配体表达的影响,并阐明使用专门设计的纳米颗粒靶向并阻断Sig-7/9受体后,对NK细胞细胞毒功能的影响。
研究从外周血单个核细胞(PBMC)中分离CD56+CD3- NK细胞,并使用NK-92克隆作为效应细胞;以MCF-7和K562作为靶细胞。所有细胞在常氧或缺氧条件下培养24小时。为检测Siglec-7和Siglec-9受体表达,研究使用针对CD328 Siglec-7/9的PE标记抗体对U937、NK-92和原代NK细胞染色。研究还使用包被唾液酸模拟物的聚合物纳米颗粒,评估Siglec-7/9与其唾液酸化配体的相互作用及其对NK细胞活性的影响。研究使用ZEISS LSM 800 Airyscan系统,在10倍放大下进行免疫突触形成观察和活细胞成像,持续24小时。
数据显示,缺氧不影响NK细胞Siglec-7/9受体表达。相反,缺氧应激使部分NK靶细胞的Siglec-7唾液酸聚糖配体表达增加。研究使用能够结合Siglec-7和Siglec-9的唾液酸模拟物包被聚合物纳米颗粒(Sig-7/9 NP),发现将这些纳米颗粒与NK细胞孵育,可增加免疫突触形成和颗粒酶B积聚,并增强对NK靶细胞的杀伤。这些研究表明,缺氧可能影响NK细胞疗法,并提示应考虑缺氧微环境下肿瘤特异性糖基化的作用。
研究结果提示,Siglec-唾液酸化聚糖相互作用参与缺氧应激诱导的NK细胞功能障碍,并建议未来癌症免疫治疗策略可考虑通过靶向Siglec调节这一通路。
CD56 CD3 - NK cells were isolated from PBMCs along with an NK-92 clone and used as effector cells, while MCF-7 and K562 served as target cells. All cells were incubated under normoxic or hypoxic conditions for 24 h. To assess Siglec-7 and Siglec-9 receptor expression, U937, NK-92, and primary NK cells were stained with PE-labeled antibodies against CD328 Siglec-7/9. Interactions between Siglec-7/9 and their sialylated ligands, along with their functional impact on NK cell activity, were evaluated using polymeric nanoparticles coated with a sialic acid mimetic. Immunological synapse formation and live-cell imaging were performed with a ZEISS LSM 800 with Airyscan at 10 magnification for 24 h.
Our data indicate that hypoxia had no effect on the expression of Siglec-7/9 receptors by NK cells. In contrast, hypoxic stress resulted in an increase in Siglec-7 sialoglycan ligand expression by a sub-population of NK target cells. Using polymeric nanoparticles coated with a sialic acid mimetic that binds both Siglec-7 and -9 (Sig-7/9 NP), we demonstrated that incubation of these nanoparticles with NK cells resulted in increased immunological synapse formation, granzyme B accumulation, and killing of NK target cells. These studies indicate that hypoxic stress may have an impact on NK cell-based therapies and highlight the need to consider the hypoxic microenvironment for tumor-specific glycosylation.
Our findings point to the role of Siglec-sialylated glycan interactions in hypoxic stress-induced NK cell dysfunction and recommend the potential integration of the manipulation of this axis through the targeting of Siglecs in future cancer immunotherapy strategies.
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