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:Tumor microenvironment responsive nano-immunoregulator for precision cancer photodynamic immunotherapy.
Tumor microenvironment responsive nano-immunoregulator for precision cancer photodynamic immunotherapy.
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时空可控的活性氧(ROS)生成对于推进光动力免疫治疗仍然至关重要。在此,我们提出了一种肿瘤微环境(TME)响应性纳米免疫调节剂,其特征为CaCO3外壳包裹介孔二氧化硅核心,该核心经叶酸/二氢卟吩e6(FA/Ce6)修饰并共载dBET6和马来酰亚胺(MA)。酸性TME触发CaCO3外壳降解,中和肿瘤酸性以将巨噬细胞复极化为M1型,增强抗原呈递和T细胞免疫应答,同时暴露BM@M FC核心。所得的BM@M FC通过FA介导的肿瘤靶向进一步被肿瘤细胞内吞,随后MA介导的谷胱甘肽耗竭放大Ce6生成的ROS,实现强效光动力治疗(PDT)。
同时,dBET6降解BRD4以抑制转移、下调PD-L1,并与PDT协同诱导免疫原性细胞凋亡,从而激活树突状细胞(DCs)和T细胞以增强光动力免疫治疗。体外/体内结果均表明BM@M FC C在抑制原发/转移性肿瘤方面具有优异性能,而单细胞RNA测序阐明BM@M FC C可诱导免疫抑制性TME重塑,包括增加CD8+ T细胞、cDCs和NK细胞;M2向M1巨噬细胞极化;以及增强细胞间通讯。肿瘤细胞图谱分析证实BM@M FC C将下调致癌通路并激活免疫特征。
总体而言,这种TME响应性纳米免疫调节剂展现出优越的治疗效果,为精准癌症光动力免疫治疗提供了有前景的策略。
Spatiotemporally controlled reactive oxygen species (ROS) generation remains pivotal for advancing photodynamic immunotherapy.
Herein, we present tumor microenvironment (TME)-responsive nano-immunoregulator featuring a CaCO 3 shell encapsulating a mesoporous silica core modified with folic acid/chlorin e6 (FA/Ce6) and co-loaded with dBET6 and maleimide (MA). Acidic TME triggers CaCO 3 shell degradation, neutralizing tumor acidity to repolarize macrophages toward M1 type, enhancing antigen presentation and T cells immune response while exposing the BM@M FC core. The resulting BM@M FC further endocytosed by tumor cells via FA-mediated tumor targeting, followed by MA-mediated glutathione depletion amplifies Ce6-generated ROS for potent photodynamic therapy (PDT).
Concurrently, dBET6 degrades BRD4 to inhibit metastasis, downregulate PD-L1, and synergize with PDT to induce immunogenic cell apoptosis, thereby activating dendritic cells (DCs) and T cells for enhanced photodynamic immunotherapy. Both in vitro / vivo results indicate that BM@M FC C have excellent performance to inhibit primary/metastatic tumors, while single-cell RNA sequencing elucidates BM@M FC C can induce immunosuppressive TME remodeling, including increased CD8 + T cells, cDCs, and NK cells; M2-to-M1 macrophage polarization; and enhanced intercellular communication.
Tumor cell profiling confirms BM@M FC C will downregulate oncogenic pathways and activate immune signatures. Collectively, this TME responsive nano-immunoregulator demonstrates superior therapeutic outcomes and provides a promising strategy for precision cancer photodynamic immunotherapy.
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