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.
肿瘤细胞治疗研究
英文原题:Sialic Acid Binding Liposome Nanoparticles for Targeted Bladder Cancer Therapy.
Sialic Acid Binding Liposome Nanoparticles for Targeted Bladder Cancer Therapy.
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将治疗药物靶向递送至膀胱癌,对于优化疗效和尽量减少副作用至关重要。本研究开发了一种新型靶向纳米载体系统:通过4-羧基苯硼酸(CPBA)修饰脂质体,使其能够选择性结合膀胱癌细胞上过表达的唾液酸残基。为进一步改善治疗结局,研究采用化疗与免疫治疗联合方案,以同时清除肿瘤细胞并激活抗肿瘤免疫反应。研究制备了肿瘤靶向脂质体-壳聚糖-CPBA(LPCB)纳米颗粒,并共同负载化疗药物阿霉素(Dox)和可刺激抗肿瘤免疫的Toll样受体(TLR)7/8激动剂瑞喹莫德(R848)。与非靶向(未掺入CPBA)纳米颗粒相比,包载Dox和R848的LPCB纳米颗粒(LPCBDR)与膀胱肿瘤细胞(T24、MB49)的结合增强,细胞毒性也更强。LPCBDR纳米颗粒还增强了小鼠树突状细胞(DC)群体的活化,表现为共刺激分子上调。采用Cy7标记纳米颗粒开展的体内生物分布研究证实,与非靶向纳米颗粒相比,LPCB纳米颗粒优先蓄积于肿瘤。在MB49皮下肿瘤模型中,LPCBDR治疗组的肿瘤体积显著小于非靶向纳米颗粒组和游离药物组。对肿瘤和脾脏样本进行流式细胞分析进一步显示,NK细胞、CD4⁺ T细胞和CD8⁺ T细胞的效应功能均得到强效激活。综合结果表明,靶向唾液酸的LPCBDR纳米颗粒为膀胱癌治疗提供了有前景的药物递送平台。
Targeted delivery of therapeutics to bladder cancer is crucial for optimizing therapeutic efficacy and minimizing side effects. In this study, a novel targeted nanocarrier system was developed to enhance bladder cancer targeted therapy by modifying liposomes with 4-carboxyphenylboronic acid (CPBA), enabling selective binding with sialic acid residues overexpressed on bladder cancer cells.
To further improve therapeutic outcomes, we employed a combination therapy based on chemotherapy and immunotherapy to both eliminate tumor cells and activate antitumor immune responses.
We fabricated tumor-targeting liposome-chitosan-CPBA (LPCB) nanoparticles coloaded with doxorubicin (Dox), a chemotherapeutic agent, and resiquimod (R848), a toll-like receptor (TLR) 7/8 agonist that stimulates antitumor immunity. LPCB nanoparticles encapsulating Dox and R848 (LPCBDR) demonstrated enhanced binding to bladder tumor cells (T24, MB49) and cytotoxicity compared to nontargeted (non-CPBA incorporated) nanoparticles. LPCBDR nanoparticles also showed enhanced activation of murine dendritic cell (DC) populations characterized by the upregulation of costimulatory molecules.
In vivo biodistribution studies with Cy7-labeled nanoparticles confirmed preferential tumor accumulation of LPCB NPs compared to nontargeted nanoparticles. Therapeutic efficacy using MB49 subcutaneous tumor model revealed that LPCBDR treatment group significantly reduces tumor volume compared to nontargeted nanoparticles and free drugs.
Flow cytometric analysis of tumor and spleen samples further showed robust activation of Natural Killer (NK) cells, CD4 + T cells, and CD8 + T cell effector functions. Combined results demonstrate that sialic acid targeting LPCBDR nanoparticles offers a promising drug delivery platform for bladder cancer therapy.
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