Nanoparticles Targeting Lymph Nodes for Cancer Immunotherapy: Strategies and Influencing Factors

Author:

Li Zi‐Zhan1ORCID,Zhong Nian‐Nian1ORCID,Cao Lei‐Ming1,Cai Ze‐Min1,Xiao Yao1,Wang Guang‐Rui1,Liu Bing2,Xu Chun3,Bu Lin‐Lin2ORCID

Affiliation:

1. State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration, Key Laboratory of Oral Biomedicine Ministry of Education, Hubei Key Laboratory of Stomatology School & Hospital of Stomatology Wuhan University #237 Luoyu Road Wuhan 430079 China

2. State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration, Key Laboratory of Oral Biomedicine Ministry of Education, Hubei Key Laboratory of Stomatology Department of Oral & Maxillofacial ‐ Head Neck Oncology School & Hospital of Stomatology, Wuhan University #237 Luoyu Road Wuhan 430079 China

3. School of Dentistry The University of Queensland 288 Herston Road Brisbane 4066 Australia

Abstract

AbstractImmunotherapy has emerged as a potent strategy in cancer treatment, with many approved drugs and modalities in the development stages. Despite its promise, immunotherapy is not without its limitations, including side effects and suboptimal efficacy. Using nanoparticles (NPs) as delivery vehicles to target immunotherapy to lymph nodes (LNs) can improve the efficacy of immunotherapy drugs and reduce side effects in patients. In this context, this paper reviews the development of LN‐targeted immunotherapeutic NP strategies, the mechanisms of NP transport during LN targeting, and their related biosafety risks. NP targeting of LNs involves either passive targeting, influenced by NP physical properties, or active targeting, facilitated by affinity ligands on NP surfaces, while alternative methods, such as intranodal injection and high endothelial venule (HEV) targeting, have uncertain clinical applicability and require further research and validation. LN targeting of NPs for immunotherapy can reduce side effects and increase biocompatibility, but risks such as toxicity, organ accumulation, and oxidative stress remain, although strategies such as biodegradable biomacromolecules, polyethylene glycol (PEG) coating, and impurity addition can mitigate these risks. Additionally, this work concludes with a future‐oriented discussion, offering critical insights into the field.

Funder

Natural Science Foundation of Hubei Province

Publisher

Wiley

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