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评估并探讨阿魏菇多糖-金纳米粒子的免疫增强作用及其机制。

Evaluation and mechanism of immune enhancement effects of Pleurotus ferulae polysaccharides-gold nanoparticles.

机构信息

Xinjiang Key Laboratory of Biological Resources and Genetic Engineering, College of Life Science and Technology, Xinjiang University, Urumqi 830046, China.

School of Science, Faculty of Health and Environmental Sciences, Auckland University of Technology, Auckland 1142, New Zealand; Maurice Wilkins Centre for Molecular Biodiscovery, Auckland 1010, New Zealand.

出版信息

Int J Biol Macromol. 2023 Feb 1;227:1015-1026. doi: 10.1016/j.ijbiomac.2022.11.277. Epub 2022 Nov 30.

Abstract

We previously demonstrated that Pleurotus ferulae polysaccharide (PFPS) promoted dendritic cell (DC) maturation through the TLR4 signaling pathway. To improve PFPS activity and bioavailability, gold nanoparticles with PFPS (PFPS-Au NPs) were synthesized. Of note, although the polysaccharide content of PFPS-Au NPs was only one tenth of PFPS, PFPS-Au NPs enhanced the immunostimulatory activities of PFPS in the maturation and function of dendritic cells (DCs) by TLR4 and NLRP3 signaling pathways, evidenced by stronger activation of the down-stream MAPK and NF-κB pathways and NLRP3 inflammasome pathway. More importantly, PFPS-Au NPs enhanced DC migration and murine immunity, particularly in type 1 T-helper cell responses. Moreover, the half-life of PFPS-Au NPs (2.217 ± 0.187 h) was longer than that of PFPS (1.39 ± 0.257 h) in the blood and the distribution of PFPS-Au NPs (19.8 %) in the spleen was significantly increased compared with PFPS (13.3 %), indicating the improved bioavailability in vivo. PFPS-Au NPs as an adjuvant promoted antigen-specific cellular immune responses to an HPV DC-based vaccine, which significantly inhibited the growth of TC-1 tumors in mice. All results suggest that the prepared Au NPs could enhance PFPS-immunostimulatory activity, which will pave the way for PFPS-Au NPs to be applied in clinical trials.

摘要

我们之前的研究表明,阿魏菇多糖(PFPS)通过 TLR4 信号通路促进树突状细胞(DC)成熟。为了提高 PFPS 的活性和生物利用度,我们合成了负载 PFPS 的金纳米粒子(PFPS-Au NPs)。值得注意的是,尽管 PFPS-Au NPs 的多糖含量仅为 PFPS 的十分之一,但通过 TLR4 和 NLRP3 信号通路,PFPS-Au NPs 增强了 PFPS 在树突状细胞(DC)成熟和功能中的免疫刺激活性,这表现在下游 MAPK 和 NF-κB 通路以及 NLRP3 炎性小体通路的激活更强。更重要的是,PFPS-Au NPs 增强了 DC 的迁移和小鼠的免疫功能,特别是在 1 型辅助性 T 细胞反应中。此外,PFPS-Au NPs(2.217±0.187 h)在血液中的半衰期长于 PFPS(1.39±0.257 h),并且与 PFPS(13.3%)相比,PFPS-Au NPs 在脾脏中的分布(19.8%)显著增加,表明体内生物利用度得到了提高。PFPS-Au NPs 作为佐剂促进了 HPV 基于 DC 的疫苗的抗原特异性细胞免疫反应,显著抑制了 TC-1 肿瘤在小鼠中的生长。所有结果表明,所制备的 Au NPs 可以增强 PFPS 的免疫刺激活性,这将为 PFPS-Au NPs 在临床试验中的应用铺平道路。

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