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硒纳米颗粒递送 MDM2 抑制剂在结直肠癌中重新激活 p53 并重编程肿瘤免疫微环境

英文原题:Selenium nanoparticle-delivered MDM2 inhibitor reactivates p53 and reprograms tumor immune microenvironment in colorectal cancer.

查看英文原题

Selenium nanoparticle-delivered MDM2 inhibitor reactivates p53 and reprograms tumor immune microenvironment in colorectal cancer.

PubMed 2025/10/31(内容时间) Front Immunol Q1 · IF 7(JCR 2025)

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研究概要

Se@MI 代表一种新型纳米药物策略,将直接 p53 通路再激活与免疫微环境调节相结合。这种双重作用机制为提升结直肠癌免疫治疗疗效提供了潜在策略,并可能有助于克服免疫检查点阻断的耐药机制。

研究思路结论见上方概要

结直肠癌(CRC)仍是全球重大健康挑战,占约85%病例的微卫星稳定(MSS)肿瘤中免疫治疗疗效有限。p53肿瘤抑制通路在野生型肿瘤蛋白53(TP53)肿瘤中常通过鼠双微体2同源物(MDM2)过表达而失活,是兼具直接抗肿瘤效应和免疫调节作用的有前景的治疗靶点。

我们采用一锅法合成了负载MDM2靶向肽抑制剂MI的硒纳米颗粒(Se@MI)。通过透射电子显微镜、动态光散射和UV-Vis光谱对纳米颗粒进行了表征。体外实验包括MTT细胞毒性评估、流式细胞术检测细胞摄取、RNA-seq以及p53通路/凋亡标志物的Western blotting。在CT26小鼠结直肠癌模型中评估了抗肿瘤疗效,机制研究包括转录组分析、免疫组织化学和流式细胞术。通过体重监测、血液学分析、主要器官的组织病理学检查和血清生物标志物评估来评价安全性特征。

Se@MI 纳米颗粒呈现均匀的球形形态(直径 45-50nm),并显示出正 zeta 电位(+24.69 mV),表明具有良好的胶体分散性。在 CT26 细胞中观察到增强的细胞摄取(74.3% 阳性细胞)和强效细胞毒性(IC 50 = 1.00 μM)。转录组分析显示 p53 信号通路显著激活(NES = 1.504,P = 0.029),蛋白质分析证实 p21、PUMA、Bax 和 cleaved caspase-3 的诱导。在体内,Se@MI 治疗实现了 72.23% 的肿瘤生长抑制,显著优于对照组。在机制上,Se@MI 通过破坏 MDM2-p53 相互作用恢复 p53 功能,诱导凋亡和细胞周期阻滞。重要的是,Se@MI 通过增加 CD8+ T 细胞浸润和细胞毒性功能,同时抑制调节性 T 细胞,重编程了肿瘤免疫微环境。综合安全性评估显示其具有优异的生物相容性,对体重、血液学参数、器官组织学、炎症细胞因子或肝/肾功能标志物均无不良影响。

展开英文摘要原文

Colorectal cancer (CRC) remains a major global health challenge, with limited immunotherapy efficacy in microsatellite stable (MSS) tumors that comprise ~85% of cases. The p53 tumor suppressor pathway, frequently inactivated through the mouse double minute 2 homolog (MDM2) overexpression in wild-type tumor protein 53(TP53) tumors, represents a promising therapeutic target for both direct antitumor effects and immune modulation.

We developed selenium nanoparticles loaded with the MDM2-targeting peptide inhibitor MI (Se@MI) using a one-pot synthesis approach. The nanoparticles were characterized by transmission electron microscopy, dynamic light scattering, and UV-Vis spectroscopy. In vitro assays included MTT cytotoxicity evaluation, cellular uptake by flow cytometry, RNA-seq, and Western blotting of p53-pathway/apoptosis markers. Antitumor efficacy was evaluated in CT26 murine colorectal cancer models, with mechanistic studies including transcriptomic analysis, immunohistochemistry, and flow cytometry. Safety profiles were assessed through body weight monitoring, hematological analysis, histopathological examination of major organs, and serum biomarker evaluation.

Se@MI nanoparticles demonstrated uniform spherical morphology (45-50nm diameter) and displayed a positive zeta potential (+24.69 mV), indicative of favorable colloidal dispersibility. Enhanced cellular uptake (74.3% positive cells) and potent cytotoxicity (IC 50 = 1.00 μM) were observed in CT26 cells. Transcriptomic analysis revealed significant activation of p53 signaling pathways (NES = 1.504, P = 0.029) and protein analyses confirmed induction of p21, PUMA, Bax, and cleaved caspase-3. In vivo , Se@MI treatment achieved 72.23% tumor growth inhibition, significantly outperforming controls. Mechanistically, Se@MI restored p53 function by disrupting MDM2-p53 interactions, inducing apoptosis and cell cycle arrest. Importantly, Se@MI reprogrammed the tumor immune milieu through increased infiltration of CD8+ T cell and cytotoxic function while suppressing regulatory T cells. Comprehensive safety evaluation revealed excellent biocompatibility with no adverse effects on body weight, hematological parameters, organ histology, inflammatory cytokines, or hepatic/renal function markers.

Se@MI represents a novel nanomedicine strategy that combines direct p53 pathway reactivation with immune microenvironment modulation. This dual mechanism of action offers a potential strategy to boost immunotherapeutic outcomes in colorectal carcinoma and may help overcome resistance mechanisms to immune checkpoint blockade.

论文信息

作者
You W、Feng J、Guo L、Yan J、Yan S
单位
Department of Hepatology, The Second Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi, China.China
期刊
Frontiers in immunology2025
原文标识
PubMed 41246348 · DOI 10.3389/fimmu.2025.1684611