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可编程生物纳米材料用于革新癌症免疫治疗

英文原题:Programmable bionanomaterials for revolutionizing cancer immunotherapy.

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Programmable bionanomaterials for revolutionizing cancer immunotherapy.

PubMed 2024/10/22(内容时间) Biomater Sci Q2 · IF 6.1(JCR 2025)

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中文摘要

癌症免疫疗法涉及一种利用免疫系统检测和消灭癌细胞的尖端方法。它在治疗不同类型的癌症方面已显示出显著疗效。因此,其日益增长的重要性源于其独特的优势和持续康复的潜力。

然而,这种疗法的普遍推广受到持续存在的问题的阻碍,这些问题涉及维持低毒性、高特异性和持久有效性。纳米技术为这些挑战提供了有前景的解决方案,因其显著特性,包括广阔的精确表面积、精准递送药物的能力以及可控的表面化学性质。本综述探讨了纳米材料在癌症免疫疗法中应用的当前进展,重点关注三个主要领域:单克隆抗体、治疗性癌症疫苗和过继性细胞治疗。在过继性细胞治疗中,纳米材料增强免疫细胞(如 T 细胞)的扩增和靶向能力,从而提高其定位和摧毁癌细胞的能力。对于治疗性癌症疫苗,纳米颗粒作为递送载体,保护抗原免于降解并增强抗原呈递细胞对其的摄取,从而增强针对癌症的免疫反应。单克隆抗体受益于纳米技术,通过改进的递送机制和减少的脱靶效应,提高了其特异性和有效性。通过强调纳米技术与免疫疗法的交叉点,我们旨在突出纳米材料在增强癌症免疫疗法有效性和安全性方面的变革潜力。纳米颗粒将药物和生物分子精确递送至肿瘤部位的能力降低了全身毒性并改善了治疗结果。

展开英文摘要原文

Cancer immunotherapy involves a cutting-edge method that utilizes the immune system to detect and eliminate cancer cells. It has shown substantial effectiveness in treating different types of cancer. As a result, its growing importance is due to its distinct benefits and potential for sustained recovery.

However, the general deployment of this treatment is hindered by ongoing issues in maintaining minimal toxicity, high specificity, and prolonged effectiveness. Nanotechnology offers promising solutions to these challenges due to its notable attributes, including expansive precise surface areas, accurate ability to deliver drugs and controlled surface chemistry. This review explores the current advancements in the application of nanomaterials in cancer immunotherapy, focusing on three primary areas: monoclonal antibodies, therapeutic cancer vaccines, and adoptive cell treatment. In adoptive cell therapy, nanomaterials enhance the expansion and targeting capabilities of immune cells, such as T cells, thereby improving their ability to locate and destroy cancer cells.

For therapeutic cancer vaccines, nanoparticles serve as delivery vehicles that protect antigens from degradation and enhance their uptake by antigen-presenting cells, boosting the immune response against cancer. Monoclonal antibodies benefit from nanotechnology through improved delivery mechanisms and reduced off-target effects, which increase their specificity and effectiveness.

By highlighting the intersection of nanotechnology and immunotherapy, we aim to underscore the transformative potential of nanomaterials in enhancing the effectiveness and safety of cancer immunotherapies. Nanoparticles' ability to deliver drugs and biomolecules precisely to tumor sites reduces systemic toxicity and enhances therapeutic outcomes.

论文信息

作者
Sharma A、Bhatia D
单位
Department of Biotechnology, Institute of Applied Sciences and Humanities, GLA University, Mathura, Uttar Pradesh-281406, India. dhiraj.bhatia@iitgn.ac.in.India
文献类型
综述
期刊
Biomaterials science2024 Oct 22
原文标识
PubMed 39291418 · DOI 10.1039/d4bm00815d