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缺氧调节纳米材料缓解肿瘤乏氧微环境并增强免疫治疗:我们处于什么位置?

Hypoxia-modulatory nanomaterials to relieve tumor hypoxic microenvironment and enhance immunotherapy: Where do we stand?

机构信息

College of Marine Life Science, Ocean University of China, 5# Yushan Road, Qingdao, 266003, PR China.

College of Marine Life Science, Ocean University of China, 5# Yushan Road, Qingdao, 266003, PR China.

出版信息

Acta Biomater. 2021 Apr 15;125:1-28. doi: 10.1016/j.actbio.2021.02.030. Epub 2021 Feb 24.

Abstract

The past several years have witnessed the blooming of emerging immunotherapy, as well as their therapeutic potential in remodeling the immune system. Nevertheless, with the development of biological mechanisms in oncology, it has been demonstrated that hypoxic tumor microenvironment (TME) seriously impairs the therapeutic outcomes of immunotherapy. Hypoxia, caused by Warburg effect and insufficient oxygen delivery, has been considered as a primary construction element of TME and drawn tremendous attention in cancer therapy. Multiple hypoxia-modulatory theranostic agents have been facing many obstacles and challenges while offering initial therapeutic effect. Inspired by versatile nanomaterials, great efforts have been devoted to design hypoxia-based nanoplatforms to preserve drug activity, reduce systemic toxicity, provide adequate oxygenation, and eventually ameliorate hypoxic-tumor management. Besides these, recently, some curative and innovative hypoxia-related nanoplatforms have been applied in synergistic immunotherapy, especially in combination with immune checkpoint blockade (ICB), immunomodulatory therapeutics, cancer vaccine therapy and immunogenic cell death (ICD) effect. Herein, the paramount impact of hypoxia on tumor immune escape was initially described and discussed, followed by a comprehensive overview on the design tactics of multimodal nanoplatforms based on hypoxia-enabled theranostic agents. A variety of nanocarriers for relieving tumor hypoxic microenvironment were also summarized. On this basis, we presented the latest progress in the use of hypoxia-modulatory nanomaterials for synergistic immunotherapy and highlighted current challenges and plausible promises in this area in the near future. STATEMENT OF SIGNIFICANCE: Cancer immunotherapy, emerging as a novel treatment to eradicate malignant tumors, has achieved a measure of success in clinical popularity and transition. However, over the last decades, hypoxia-induced tumor immune escape has attracted enormous attention in cancer treatment. Limitations of free targeting agents have paved the path for the development of multiple nanomaterials with the hope of boosting immunotherapy. In this review, the innovative design tactics and multifunctional nanocarriers for hypoxia alleviation are summarized, and the smart nanomaterial-assisted hypoxia-modulatory therapeutics for synergistic immunotherapy and versatile biomedical applications are especially highlighted. In addition, the challenges and prospects of clinical transformation are further discussed.

摘要

过去几年见证了新兴免疫疗法的蓬勃发展,以及它们在重塑免疫系统方面的治疗潜力。然而,随着肿瘤生物学机制的发展,已经证明缺氧的肿瘤微环境(TME)严重影响了免疫疗法的治疗效果。由沃伯格效应和供氧不足引起的缺氧,被认为是 TME 的主要构建要素,并在癌症治疗中引起了极大关注。多种缺氧调节治疗剂在提供初步治疗效果的同时,也面临着许多障碍和挑战。受多功能纳米材料的启发,人们付出了巨大努力来设计基于缺氧的纳米平台,以保持药物活性、降低系统毒性、提供充足的氧合,并最终改善缺氧肿瘤的管理。除此之外,最近,一些有治疗作用和创新性的与缺氧相关的纳米平台已应用于协同免疫疗法,特别是与免疫检查点阻断(ICB)、免疫调节治疗、癌症疫苗治疗和免疫原性细胞死亡(ICD)效应相结合。在此,首先描述和讨论了缺氧对肿瘤免疫逃逸的重要影响,然后全面概述了基于缺氧使能治疗剂的多模式纳米平台的设计策略。还总结了用于缓解肿瘤缺氧微环境的各种纳米载体。在此基础上,我们介绍了利用缺氧调节纳米材料进行协同免疫治疗的最新进展,并强调了该领域在不久的将来的当前挑战和潜在前景。

意义陈述

癌症免疫疗法作为一种消除恶性肿瘤的新型治疗方法,在临床普及和转化方面取得了一定的成功。然而,在过去的几十年中,缺氧诱导的肿瘤免疫逃逸在癌症治疗中引起了极大关注。游离靶向剂的局限性为多种纳米材料的发展铺平了道路,以期增强免疫疗法。在这篇综述中,总结了缓解缺氧的创新设计策略和多功能纳米载体,以及用于协同免疫治疗和多功能生物医学应用的智能纳米材料辅助缺氧调节治疗。此外,还进一步讨论了临床转化的挑战和前景。

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