← 返回前沿论文

仿生 PD-1-MSCs 膜工程纳米颗粒用于增强血脑屏障穿透与抗胶质瘤治疗

英文原题:Biomimetic PD-1-MSCs membrane-engineered nanoparticles for enhanced blood-brain barrier penetration and anti- glioma therapy.

PubMed 2026/08/18(内容时间) Front Immunol Q1 · IF 7(JCR 2025)

研究概要

PD-1修饰的MSC膜仿生纳米平台整合了靶向化疗和免疫检查点抑制。它高效穿越BBB,特异性蓄积于胶质瘤组织,发挥强效抗肿瘤作用,并改善肿瘤免疫微环境,具有良好的生物安全性。本研究为胶质瘤精准治疗提供了一种新颖且有前景的仿生化疗免疫治疗策略。

研究思路结论见上方概要

胶质瘤是最常见且最具侵袭性的原发性颅内肿瘤。其临床管理受到血脑屏障(BBB)和免疫抑制性肿瘤微环境(TME)的严重阻碍。本研究旨在构建PD-1功能化间充质干细胞(MSC)膜仿生纳米颗粒,共载榄香烯和卡巴他赛(PD-1-MSCs-ELE/CTX@BLIP),并探讨其穿透BBB、靶向胶质瘤的能力及其联合化学免疫治疗疗效和相关机制。

利用基因工程构建过表达 PD-1 的 MSCs,并提取其衍生细胞膜以制备仿生纳米颗粒。进行了一系列表征以确定纳米颗粒的粒径、zeta 电位、包封率、稳定性和生物安全性。采用体外 BBB 模型和胶质瘤细胞模型评估 BBB 通透性、细胞摄取、细胞毒性、细胞周期阻滞、凋亡和炎症细胞因子分泌。构建皮下和原位胶质瘤小鼠模型以研究体内肿瘤靶向、抗肿瘤活性、生存获益和全身生物安全性。采用流式细胞术、免疫荧光、酶联免疫吸附测定和组织病理学染色检测该纳米系统对肿瘤免疫微环境的调控作用。

合成的PD-1-MSCs-ELE/CTX@BLIP表现出均匀的粒径、高药物包封率以及优异的储存稳定性和生物相容性。借助MSC仿生修饰和PD-1/PD-L1轴,该纳米颗粒表现出显著的BBB穿透能力和对胶质瘤细胞的主动靶向能力(8.57倍)。体外研究显示,该制剂显著抑制胶质瘤细胞增殖和迁移,诱导细胞凋亡,并逆转T细胞耗竭。体内研究结果表明,PD-1-MSCs-ELE/CTX@BLIP在肿瘤组织中表现出显著蓄积,显著抑制肿瘤增殖,并明显延长原位胶质瘤荷瘤小鼠的生存时间(57.52%)。在机制上,它阻断PD-1/PD-L1免疫检查点通路,增加瘤内CD8+ T细胞浸润,上调促炎细胞因子IFN-,并下调免疫抑制因子IL-1,从而重塑免疫抑制性TME。此外,主要器官、血液以及肝/肾功能检测显示无全身毒性。

展开英文摘要原文

OBJECTIVE: Glioma is the most common and aggressive primary intracranial tumor. Its clinical management is substantially hindered by the blood-brain barrier (BBB) and the immunosuppressive tumor microenvironment (TME). This study aimed to construct PD-1-functionalized mesenchymal stem cell (MSC) membrane biomimetic nanoparticles co-loaded with elemene and cabazitaxel (PD-1-MSCs-ELE/CTX@BLIP) and investigate their capacity to penetrate the BBB, target gliomas, and their combined chemoimmunotherapeutic efficacy and related mechanisms. METHODS: Genetic engineering was utilized to create PD-1-overexpressing MSCs, and the derived cell membranes were extracted to fabricate biomimetic nanoparticles. A series of characterizations was performed to ascertain the particle size, zeta potential, encapsulation efficiency, stability, and biosafety of the nanoparticles. An in vitro BBB model and glioma cell models were employed to evaluate BBB permeability, cellular uptake, cytotoxicity, cell cycle arrest, apoptosis, and inflammatory cytokine secretion. Subcutaneous and orthotopic glioma mouse models were created to investigate in vivo tumor targeting, antitumor activity, survival benefit, and systemic biosafety. Flow cytometry, immunofluorescence, enzyme-linked immunosorbent assay, and histopathological staining were employed to examine the regulatory impact of the nanosystem on the tumor immune microenvironment. RESULTS: The synthesized PD-1-MSCs-ELE/CTX@BLIP exhibited uniform particle size, high drug encapsulation efficacy, and excellent storage stability and biocompatibility. Leveraging MSC biomimetic modification and the PD-1/PD-L1 axis, the nanoparticles exhibited significant BBB penetration ability and active targeting capability toward glioma cells (8.57-fold). In vitro studies revealed that the formulation significantly inhibited glioma cell proliferation and migration, induced cell apoptosis, and rejuvenated T cell exhaustion. In vivo findings revealed that PD-1-MSCs-ELE/CTX@BLIP exhibited significant accumulation in tumor tissues, remarkably suppressed tumor proliferation, and markedly prolonged the survival duration (57.52%) of orthotopic glioma-bearing mice. Mechanistically, it blocked the PD-1/PD-L1 immune checkpoint pathway, increased intratumoral CD8+ T cell infiltration, upregulated pro-inflammatory cytokine IFN- , and downregulated immunosuppressive factors IL-1 , thereby remodeling the immunosuppressive TME. Furthermore, major organs, blood, and liver/kidney function tests revealed no systemic toxicity. CONCLUSION: The PD-1-modified MSC membrane biomimetic nanoplatform integrates targeted chemotherapy and immune checkpoint inhibition. It efficiently crosses the BBB, specifically accumulates in glioma tissues, exerts potent antitumor effects, and improves the tumor immune microenvironment with favorable biosafety. This study provides a novel, promising biomimetic chemoimmunotherapeutic approach for precise glioma treatment.

论文信息

作者
Li J、Gao Y、Zhao W、Zeng H、Zhao X、Deng D、Chen S
单位
Innovative Institute of Chinese Medicine and Pharmacy/Institute of Herbgenomics, Chengdu University of Traditional Chinese Medicine, Chengdu, China.China
期刊
Frontiers in immunology2026
原文标识
PubMed 42682642 · DOI 10.3389/fimmu.2026.1906527