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采用纳米技术的免疫工程方法推动治疗应用。

Nanotechnology-enabled immunoengineering approaches to advance therapeutic applications.

作者信息

Chuang Skylar T, Conklin Brandon, Stein Joshua B, Pan George, Lee Ki-Bum

机构信息

Department of Chemistry and Chemical Biology, Rutgers, The State University of New Jersey, Piscataway, NJ, 08854, USA.

出版信息

Nano Converg. 2022 Apr 28;9(1):19. doi: 10.1186/s40580-022-00310-0.

Abstract

Immunotherapy has reached clinical success in the last decade, with the emergence of new and effective treatments such as checkpoint blockade therapy and CAR T-cell therapy that have drastically improved patient outcomes. Still, these therapies can be improved to limit off-target effects, mitigate systemic toxicities, and increase overall efficacies. Nanoscale engineering offers strategies that enable researchers to attain these goals through the manipulation of immune cell functions, such as enhancing immunity against cancers and pathogens, controlling the site of immune response, and promoting tolerance via the delivery of small molecule drugs or biologics. By tuning the properties of the nanomaterials, such as size, shape, charge, and surface chemistry, different types of immune cells can be targeted and engineered, such as dendritic cells for immunization, or T cells for promoting adaptive immunity. Researchers have come to better understand the critical role the immune system plays in the progression of pathologies besides cancer, and developing nanoengineering approaches that seek to harness the potential of immune cell activities can lead to favorable outcomes for the treatment of injuries and diseases.

摘要

在过去十年中,免疫疗法已取得临床成功,诸如检查点阻断疗法和嵌合抗原受体(CAR)T细胞疗法等新型有效治疗方法的出现,极大地改善了患者的治疗效果。尽管如此,这些疗法仍可加以改进,以限制脱靶效应、减轻全身毒性并提高总体疗效。纳米级工程提供了一些策略,使研究人员能够通过操纵免疫细胞功能来实现这些目标,例如增强对癌症和病原体的免疫力、控制免疫反应部位以及通过递送小分子药物或生物制剂来促进耐受性。通过调节纳米材料的性质,如尺寸、形状、电荷和表面化学性质,可以靶向和改造不同类型的免疫细胞,如用于免疫接种的树突状细胞,或用于促进适应性免疫的T细胞。研究人员已更好地理解免疫系统在除癌症之外的疾病进展中所起的关键作用,开发旨在利用免疫细胞活动潜力的纳米工程方法可能会为损伤和疾病的治疗带来良好结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d07/9050995/bb236c07a8b7/40580_2022_310_Fig1_HTML.jpg

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