纳米颗粒性质对淋巴结免疫细胞相互作用的影响。

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2025-02-01 DOI:10.1016/j.actbio.2024.12.039
Muhammad Asim Farooq, Angus P.R. Johnston, Natalie L. Trevaskis
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引用次数: 0

摘要

淋巴系统在健康和许多疾病中起着重要作用,如癌症、自身免疫性疾病、心血管疾病、代谢疾病、肝脏疾病、病毒性疾病和其他传染病。因此,淋巴系统是一系列疾病的重要治疗靶点。淋巴结富含T细胞、B细胞、树突状细胞和巨噬细胞,也是疫苗和免疫疗法的主要作用部位。因此,促进向LNs提供治疗药物和疫苗可以通过减少治疗剂量来提高治疗效果并促进避免脱靶副作用。一些基于纳米颗粒(NP)的递送系统,如聚合NPs、脂质NPs、脂质体、胶束和树状大分子,已经被报道可以增强治疗药物和/或疫苗对LNs的递送。注射到组织后特异性进入淋巴高度依赖于颗粒性质,特别是颗粒大小,因为由于较高的血流速率,小分子更有可能被毛细血管吸收,而较大的分子和NPs可以通过淋巴管特异性运输到LNs,因为初始的淋巴毛细血管比血液毛细血管更具渗透性。一旦NPs进入淋巴结,颗粒性质也对其在淋巴结内的分布和与免疫细胞的关联产生重要影响,这对疫苗和免疫疗法的设计具有重要意义。这篇综述文章的重点是NP的性质,如大小,表面电荷和修饰,给药途径,对淋巴吸收,保留,和与免疫细胞在LNs相互作用的影响。我们认为,对这些因素进行优化,可以提高疫苗或靶向淋巴细胞疗法的疗效,也有助于疫苗的合理设计。意义声明:淋巴系统在健康中起着至关重要的作用,是一系列疾病的重要治疗靶点。促进向淋巴结免疫细胞提供免疫疗法和疫苗,可以通过减少治疗剂量来提高疗效并促进避免脱靶副作用。将治疗药物和疫苗输送到淋巴结的主要方法之一是通过注射纳米颗粒输送系统。这篇综述旨在概述纳米颗粒的性质,如大小、表面电荷、修饰和给药途径,对淋巴吸收、淋巴结保留以及与淋巴结免疫细胞的相互作用的影响。这将为未来用于疫苗和免疫疗法的改进纳米粒子系统的设计提供信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Impact of nanoparticle properties on immune cell interactions in the lymph node
The lymphatic system plays an important role in health and many diseases, such as cancer, autoimmune, cardiovascular, metabolic, hepatic, viral, and other infectious diseases. The lymphatic system is, therefore, an important treatment target site for a range of diseases. Lymph nodes (LNs), rich in T cells, B cells, dendritic cells, and macrophages, are also primary sites of action for vaccines and immunotherapies. Promoting the delivery of therapeutics and vaccines to LNs can, therefore, enhance treatment efficacy and facilitate avoidance of off-target side effects by enabling a reduction in therapeutic dose. Several nanoparticle (NP) based delivery systems, such as polymeric NPs, lipid NPs, liposomes, micelles, and dendrimers, have been reported to enhance the delivery of therapeutics and/or vaccines to LNs. Specific uptake into the lymph following injection into tissues is highly dependent on particle properties, particularly particle size, as small molecules are more likely to be taken up by blood capillaries due to higher blood flow rates, whereas larger molecules and NPs can be specifically transported via the lymphatic vessels to LNs as the initial lymphatic capillaries are more permeable than blood capillaries. Once NPs enter LNs, particle properties also have an important influence on their disposition within the node and association with immune cells, which has significant implications for the design of vaccines and immunotherapies. This review article focuses on the impact of NP properties, such as size, surface charge and modification, and route of administration, on lymphatic uptake, retention, and interactions with immune cells in LNs. We suggest that optimizing all these factors can enhance the efficacy of vaccines or therapeutics with targets in the lymphatics and also be helpful for the rational design of vaccines.

Statement of Significance

The lymphatic system plays an essential role in health and is an important treatment target site for a range of diseases. Promoting the delivery of immunotherapies and vaccines to immune cells in lymph nodes can enhance efficacy and facilitate avoidance of off-target side effects by enabling a reduction in therapeutic dose. One of the major approaches used to deliver therapeutics and vaccines to lymph nodes is via injection in nanoparticle delivery systems. This review aims to provide an overview of the impact of nanoparticle properties, such as size, surface charge, modification, and route of administration, on lymphatic uptake, lymph node retention, and interactions with immune cells in lymph nodes. This will inform the design of future improved nanoparticle systems for vaccines and immunotherapies.
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Corrigendum to “A composite hydrogel with co-delivery of antimicrobial peptides and platelet-rich plasma to enhance healing of infected wounds in diabetes” [Acta Biomaterialia 2021, 124, 205-218] Corrigendum to “Vascular Endothelial Growth Factor-Capturing Aligned Electrospun Polycaprolactone/Gelatin Nanofibers Promote Patellar Ligament Regeneration” [Acta Biomaterialia 140, 2022, 122-246] Physical exercise impacts bone remodeling around bio-resorbable magnesium implants A metal-organic framework functionalized CaO2-based cascade nanoreactor induces synergistic cuproptosis/ferroptosis and Ca2+ overload-mediated mitochondrial damage for enhanced sono-chemodynamic immunotherapy
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