Glucosylation endows nanoparticles with TLR4 agonist capability to trigger macrophage polarization and augment antitumor immunity

巨噬细胞极化 TLR4型 免疫系统 体内 先天免疫系统 癌症免疫疗法 材料科学 体外 巨噬细胞 免疫疗法 化学 生物 免疫学 生物化学 生物技术
作者
Li Liu,Shengxiang Fu,Wencheng Zhu,Zhipeng Cai,Yong Cao,Yubing Huang,Li Yang,Xiaomin Fu,Rongrong Jin,Chunchao Xia,Yunjiao Zhang,Su Lui,Qiyong Gong,Bin Song,Longping Wen,James M. Anderson,Hua Ai
出处
期刊:Biomaterials [Elsevier]
卷期号:304: 122424-122424 被引量:1
标识
DOI:10.1016/j.biomaterials.2023.122424
摘要

Carbohydrates have emerged as promising candidates for immunomodulation, however, how to present them to immune cells and achieve potent immunostimulatory efficacy remains challenging. Here, we proposed and established an effective way of designing unique glyconanoparticles that can amplify macrophage-mediated immune responses through structural mimicry and multiple stimulation. We demonstrate that surface modification with glucose can greatly augment the immunostimulatory efficacy of nanoparticles, comparing to mannose and galactose. In vitro studies show that glucosylation improved the pro-inflammatory efficacy of iron oxide nanoparticles (IONPs) by up to 300-fold, with the immunostimulatory activity of glucosylated IONPs even surpassing that of LPS under certain conditions. In vivo investigation show that glucosylated IONPs elicited increased antitumor immunity and achieved favorable therapeutic outcomes in multiple murine tumor models. Mechanistically, we proposed that glucosylation potentiated the immunostimulatory effect of IONPs by amplifying toll-like receptors 4 (TLR4) activation. Specifically, glucosylated IONPs directly interacted with the TLR4-MD2 complex, resulting in M1 macrophage polarization and enhanced antitumor immunity via activation of NF-κB, MAPK, and STAT1 signaling pathways. Our work provides a simple modification strategy to endow nanoparticles with potent TLR4 agonist effects, which may shed new light on the development of artificial immune modulators for cancer immunotherapy.
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