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氧化应激调节纳米材料及其在纳米医学中的生化作用。

Oxidative stress modulating nanomaterials and their biochemical roles in nanomedicine.

机构信息

John Curtin School of Medical Research, Australian National University, Canberra, ACT 2601, Australia.

Research School of Chemistry, Australian National University, Canberra, ACT 2601, Australia.

出版信息

Nanoscale Horiz. 2024 Sep 23;9(10):1630-1682. doi: 10.1039/d4nh00171k.

Abstract

Many pathological conditions are predominantly associated with oxidative stress, arising from reactive oxygen species (ROS); therefore, the modulation of redox activities has been a key strategy to restore normal tissue functions. Current approaches involve establishing a favorable cellular redox environment through the administration of therapeutic drugs and redox-active nanomaterials (RANs). In particular, RANs not only provide a stable and reliable means of therapeutic delivery but also possess the capacity to finely tune various interconnected components, including radicals, enzymes, proteins, transcription factors, and metabolites. Here, we discuss the roles that engineered RANs play in a spectrum of pathological conditions, such as cancer, neurodegenerative diseases, infections, and inflammation. We visualize the dual functions of RANs as both generator and scavenger of ROS, emphasizing their profound impact on diverse cellular functions. The focus of this review is solely on inorganic redox-active nanomaterials (inorganic RANs). Additionally, we deliberate on the challenges associated with current RANs-based approaches and propose potential research directions for their future clinical translation.

摘要

许多病理状况主要与氧化应激有关,氧化应激是由活性氧(ROS)引起的;因此,调节氧化还原活性已成为恢复正常组织功能的关键策略。目前的方法包括通过给予治疗性药物和氧化还原活性纳米材料(RANs)来建立有利的细胞氧化还原环境。特别是,RANs 不仅提供了稳定可靠的治疗药物输送手段,而且还具有精细调节各种相互关联的成分的能力,包括自由基、酶、蛋白质、转录因子和代谢物。在这里,我们讨论了工程化 RANs 在一系列病理状况(如癌症、神经退行性疾病、感染和炎症)中的作用。我们将 RANs 的双重功能视为 ROS 的产生者和清除者,强调它们对各种细胞功能的深远影响。本综述的重点仅放在无机氧化还原活性纳米材料(无机 RANs)上。此外,我们还讨论了当前基于 RANs 的方法所面临的挑战,并为它们未来的临床转化提出了潜在的研究方向。

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