Advancing brain immunotherapy through functional nanomaterials.

IF 5.7 3区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Drug Delivery and Translational Research Pub Date : 2025-01-09 DOI:10.1007/s13346-024-01778-5
Bhanu Nirosha Yalamandala, Thi My Hue Huynh, Hui-Wen Lien, Wan-Chi Pan, Hoi Man Iao, Thrinayan Moorthy, Yun-Hsuan Chang, Shang-Hsiu Hu
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Abstract

Glioblastoma (GBM), a highly aggressive brain tumor, poses significant treatment challenges due to its highly immunosuppressive microenvironment and the brain immune privilege. Immunotherapy activating the immune system and T lymphocyte infiltration holds great promise against GBM. However, the brain's low immunogenicity and the difficulty of crossing the blood-brain barrier (BBB) hinder therapeutic efficacy. Recent advancements in immune-actuated particles for targeted drug delivery have shown the potential to overcome these obstacles. These particles interact with the BBB by rapidly and reversibly disrupting its structure, thereby significantly enhancing targeting and penetrating delivery. The BBB targeting also minimizes potential long-term damage. At GBM, the particles demonstrated effective chemotherapy, chemodynamic therapy, photothermal therapy (PTT), photodynamic therapy (PDT), radiotherapy, or magnetotherapy, facilitating tumor disruption and promoting antigen release. Additionally, components of the delivery system retained autologous tumor-associated antigens and presented them to dendritic cells (DCs), ensuring prolonged immune activation. This review explores the immunosuppressive mechanisms of GBM, existing therapeutic strategies, and the role of nanomaterials in enhancing immunotherapy. We also discuss innovative particle-based approaches designed to traverse the BBB by mimicking innate immune functions to improve treatment outcomes for brain tumors.

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利用功能纳米材料推进脑免疫治疗。
胶质母细胞瘤(GBM)是一种高度侵袭性的脑肿瘤,由于其高度免疫抑制的微环境和大脑免疫特权,给治疗带来了重大挑战。激活免疫系统和T淋巴细胞浸润的免疫疗法对GBM有很大的希望。然而,大脑的低免疫原性和跨越血脑屏障(BBB)的困难阻碍了治疗效果。用于靶向药物递送的免疫驱动颗粒的最新进展显示出克服这些障碍的潜力。这些颗粒通过快速可逆地破坏血脑屏障的结构与血脑屏障相互作用,从而显著增强靶向性和穿透性递送。BBB的目标也最大限度地减少潜在的长期损害。在GBM中,这些颗粒表现出有效的化疗、化疗动力疗法、光热疗法(PTT)、光动力疗法(PDT)、放疗或磁疗,促进肿瘤破坏和促进抗原释放。此外,递送系统的组成部分保留了自体肿瘤相关抗原并将其呈递给树突状细胞(dc),确保了长期的免疫激活。本文综述了GBM的免疫抑制机制、现有的治疗策略以及纳米材料在增强免疫治疗中的作用。我们还讨论了创新的基于粒子的方法,旨在通过模仿先天免疫功能来穿越血脑屏障,以改善脑肿瘤的治疗效果。
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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来源期刊
Drug Delivery and Translational Research
Drug Delivery and Translational Research MEDICINE, RESEARCH & EXPERIMENTALPHARMACOL-PHARMACOLOGY & PHARMACY
CiteScore
11.70
自引率
1.90%
发文量
160
期刊介绍: The journal provides a unique forum for scientific publication of high-quality research that is exclusively focused on translational aspects of drug delivery. Rationally developed, effective delivery systems can potentially affect clinical outcome in different disease conditions. Research focused on the following areas of translational drug delivery research will be considered for publication in the journal. Designing and developing novel drug delivery systems, with a focus on their application to disease conditions; Preclinical and clinical data related to drug delivery systems; Drug distribution, pharmacokinetics, clearance, with drug delivery systems as compared to traditional dosing to demonstrate beneficial outcomes Short-term and long-term biocompatibility of drug delivery systems, host response; Biomaterials with growth factors for stem-cell differentiation in regenerative medicine and tissue engineering; Image-guided drug therapy, Nanomedicine; Devices for drug delivery and drug/device combination products. In addition to original full-length papers, communications, and reviews, the journal includes editorials, reports of future meetings, research highlights, and announcements pertaining to the activities of the Controlled Release Society.
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