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:PLS-α-GalCer: a novel targeted glycolipid therapy for solid tumors.
PLS-α-GalCer: a novel targeted glycolipid therapy for solid tumors.
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PLS-α-GalCer 是一种有前景的实体瘤免疫治疗药物,与α-GalCer 相比具有更优越的抗肿瘤活性,并可与肿瘤疫苗以及潜在的其他免疫疗法如免疫检查点抑制剂联合使用。
典型的 I 型自然杀伤 T(NKT)细胞激动剂 α-半乳糖神经酰胺(α-GalCer)在临床上对实体瘤仅显示出极小的疗效。目前 α-GalCer 最有前景的临床应用是离体致敏患者来源的树突状细胞;然而,该技术面临成本、物流方面的顾虑以及安全性问题。作为一种靶向树突状细胞的胃肠外替代方案,我们证明 poly(L-lysine succinylated)(PLS)-α-GalCer,一种新型清道夫受体-A1 靶向的 α-GalCer 前药,与 α-GalCer 相比具有增强的抗肿瘤活性。
为了比较 PLS-α-GalCer 和 α-GalCer 的抗肿瘤活性,我们分别使用 Panc02 和 TC-1 细胞建立了小鼠同系皮下胰腺和宫颈肿瘤模型。采用流式细胞术和免疫组化全片扫描分析评估瘤内免疫细胞浸润。通过 ELISA 和 LEGENDplex 分析检测血清细胞因子水平。通过流式细胞术测定 I 型 NKT 细胞胞内干扰素-γ(IFN-γ)水平。采用免疫荧光检测抗原呈递细胞(APC)对 PLS-α-GalCer 和 α-GalCer 的摄取和加工。
与α-GalCer相比,PLS-α-GalCer通过清道夫受体A1(SR-A1)介导将α-GalCer靶向至APC,显著提高了对实体瘤的抗肿瘤功能。Panc02和TC-1肿瘤模型表明,PLS-α-GalCer增加了瘤内抗原特异性T细胞、NKT细胞和T细胞,并提高了M1/M2巨噬细胞比例。在TC-1肿瘤模型中,我们证明PLS-α-GalCer与E7肿瘤疫苗协同作用,显著抑制肿瘤生长并提高小鼠生存率。此外,PLS-α-GalCer的抗肿瘤功能依赖于I型NKT细胞,并且需要SR-A1靶向。另外,使用SR-A1敲除的RAW细胞(一种小鼠巨噬细胞系),我们表明PLS-α-GalCer在APC中的摄取和加工比α-GalCer更高效。与α-GalCer相比,PLS-α-GalCer还显著诱导更少的血清Th2和Th17细胞因子,同时显著刺激更多IFN-γ并维持更长时间,并提高Th1:Th2细胞因子比值。
The prototypical type I natural killer T (NKT) cell agonist, α-galactosylceramide (α-GalCer), has shown only minimal effects against solid tumors in the clinic. The most promising clinical application of α-GalCer currently entails ex vivo priming of patient-derived dendritic cells; however, this technology suffers from cost, logistical concerns, and safety issues. As a parenteral dendritic cell-targeted alternative, we demonstrate that poly(L-lysine succinylated) (PLS)-α-GalCer, a novel scavenger receptor-A1 targeted α-GalCer prodrug has enhanced antitumor activity compared with α-GalCer.
To compare the antitumor activity of PLS-α-GalCer and α-GalCer, we used mouse syngeneic subcutaneous pancreatic and cervical tumor models using Panc02 and TC-1 cells, respectively. Intratumoral immune cell infiltration was evaluated using flow cytometry and immunohistochemistry whole-slide scan analysis. Serum cytokine levels were examined by ELISA and LEGENDplex analysis. Type I NKT cell intracellular interferon-gamma (IFN-γ) levels were determined by flow cytometry. Immunofluorescence was used to test the uptake and processing of PLS-α-GalCer and α-GalCer in antigen-presenting cells (APCs).
The scavenger receptor A1 (SR-A1)-mediated targeting of α-GalCer to APCs by PLS-α-GalCer significantly improves the antitumor function against solid tumors compared with α-GalCer. The Panc02 and TC-1 tumor models demonstrated that PLS-α-GalCer increases intratumoral antigen-specific T, NKT and T cells, and increases the M1/M2 macrophage ratio. In the TC-1 tumor model, we demonstrated that PLS-α-GalCer synergizes with an E7 tumor vaccine to significantly suppress tumor growth and increase the survival of mice. Furthermore, the antitumor function of PLS-α-GalCer is dependent on type I NKT cells and requires SR-A1 targeting. In addition, using SR-A1 knockout RAW cells, a murine macrophage cell line, we showed that PLS-α-GalCer uptake and processing in APCs are more efficient compared with α-GalCer. PLS-α-GalCer also induces significantly less serum Th2 and Th17 cytokines while stimulating significantly more IFN-γ for a longer period and increases Th1:Th2 cytokine ratios compared with α-GalCer.
PLS-α-GalCer is a promising immunotherapy for the treatment of solid tumors that has superior antitumor activity compared with α-GalCer and could be combined with tumor vaccines and potentially other immunotherapies such as immune checkpoint inhibitors.
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