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基于活性氧的前药型纳米载体用于变革性治疗。

Reactive oxygen species driven prodrug-based nanoscale carriers for transformative therapies.

机构信息

Department of Biomedical Sciences and BioMedical Sciences Graduate Program (BMSGP), Chonnam National University Medical School, Gwangju 61469, Republic of Korea.

DR Cure Inc., Hwasun 58128, Republic of Korea.

出版信息

Biomater Sci. 2024 Aug 20;12(17):4335-4353. doi: 10.1039/d4bm00647j.

Abstract

Reactive oxygen species (ROS) drive processes in various pathological conditions serving as an attractive target for therapeutic strategies. This review highlights the development and use of ROS-dependent prodrug-based nanoscale carriers that has transformed many biomedical applications. Incorporating prodrugs into nanoscale carriers not only improves their stability and solubility but also enables site-specific drug delivery ultimately enhancing the therapeutic effectiveness of the nanoscale carriers. We critically examine recent advances in ROS-responsive nanoparticulate platforms, encompassing liposomes, polymeric nanoparticles, and inorganic nanocarriers. These platforms facilitate precise control over drug release upon encountering elevated ROS levels at disease sites, thereby minimizing off-target effects and maximizing therapeutic efficiency. Furthermore, we investigate the potential of combination therapies in which ROS-activated prodrugs are combined with other therapeutic agents and underscore their synergistic potential for treating multifaceted diseases. This comprehensive review highlights the immense potential of ROS-dependent prodrug-based nanoparticulate systems in revolutionizing biomedical applications; such nanoparticulate systems can facilitate selective and controlled drug delivery, reduce toxicity, and improve therapeutic outcomes for ROS-associated diseases.

摘要

活性氧(ROS)在各种病理条件下驱动着各种过程,成为治疗策略的一个有吸引力的靶点。本综述重点介绍了基于 ROS 依赖性前药的纳米载体的开发和应用,这一进展已经改变了许多生物医学应用。将前药纳入纳米载体不仅提高了它们的稳定性和溶解度,而且还能够实现靶向药物输送,最终提高纳米载体的治疗效果。我们批判性地研究了最近在 ROS 响应性纳米颗粒平台方面的进展,包括脂质体、聚合物纳米颗粒和无机纳米载体。这些平台能够在疾病部位遇到升高的 ROS 水平时精确控制药物释放,从而最小化脱靶效应并最大限度地提高治疗效率。此外,我们研究了 ROS 激活前药与其他治疗剂联合使用的组合疗法,并强调了它们在治疗多方面疾病方面的协同潜力。本综述全面强调了基于 ROS 依赖性前药的纳米颗粒系统在彻底改变生物医学应用方面的巨大潜力;这种纳米颗粒系统可以促进选择性和控制性药物输送,降低毒性,并改善与 ROS 相关的疾病的治疗效果。

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