Hu Joyce, Arvejeh Pooria M, Bone Sydney, Hett Erik, Marincola Francesco M, Roh Kyung-Ho
Translational and Advanced Medicine (TAM) Biosciences, Nashville, TN, 37011, USA.
Cellular and Molecular Research Center, Basic Health Sciences Institute, Shahrekord University of Medical Sciences, Shahrekord, Iran.
J Transl Med. 2025 Apr 16;23(1):447. doi: 10.1186/s12967-025-06435-0.
Cancer immunotherapy aims to harness the body's own immune system for effective and long-lasting elimination of malignant neoplastic tissues. Owing to the advance in understanding of cancer pathology and immunology, many novel strategies for enhancing immunological responses against various cancers have been successfully developed, and some have translated into excellent clinical outcomes. As one promising strategy for the next generation of immunotherapies, activating the multi-cellular network (MCN) within the tumor microenvironment (TME) to deploy multiple mechanisms of action (MOAs) has attracted significant attention. To achieve this effectively and safely, delivering multiple or pleiotropic therapeutic cargoes to the targeted sites of cancerous tissues, cells, and intracellular organelles is critical, for which numerous nanocarriers have been developed and leveraged. In this review, we first introduce therapeutic payloads categorized according to their predicted functions in cancer immunotherapy and their physicochemical structures and forms. Then, various nanocarriers, along with their unique characteristics, properties, advantages, and limitations, are introduced with notable recent applications in cancer immunotherapy. Following discussions on targeting strategies, a summary of each nanocarrier matching with suitable therapeutic cargoes is provided with comprehensive background information for designing cancer immunotherapy regimens.
癌症免疫疗法旨在利用人体自身的免疫系统,有效且持久地消除恶性肿瘤组织。由于对癌症病理学和免疫学的认识不断进步,许多增强针对各种癌症的免疫反应的新策略已被成功开发,其中一些已转化为出色的临床疗效。作为下一代免疫疗法的一种有前景的策略,激活肿瘤微环境(TME)内的多细胞网络(MCN)以部署多种作用机制(MOA)已引起了广泛关注。为了有效且安全地实现这一目标,将多种或多效性治疗载荷递送至癌组织、细胞和细胞内细胞器的靶向部位至关重要,为此已开发并利用了众多纳米载体。在本综述中,我们首先介绍根据其在癌症免疫疗法中的预测功能及其物理化学结构和形式分类的治疗有效载荷。然后,介绍各种纳米载体及其独特的特征、性质、优点和局限性,以及它们在癌症免疫疗法中的近期显著应用。在讨论靶向策略之后,提供了每种纳米载体与合适的治疗有效载荷匹配的总结,并为设计癌症免疫疗法方案提供了全面的背景信息。