1 Applied Biology Division, CSIR-Indian Institute of Chemical Technology, Hyderabad, India.
2 Academy of Scientific and Innovative Research (AcSIR), Chennai, India.
Antioxid Redox Signal. 2019 Feb 10;30(5):786-809. doi: 10.1089/ars.2017.7383. Epub 2018 Aug 24.
SIGNIFICANCE: Redox signaling plays a vital role in regulating various cellular signaling pathways and disease biology. Recently, nanomedicine (application of nanotechnology in biology and medicine) has been demonstrated to regulate angiogenesis through redox signaling. A complete understanding of redox signaling pathways influenced angiogenesis/antiangiogenesis triggered by therapeutic nanoparticles is extensively reviewed in this article. Recent Advances: In recent times, nanomedicines are regarded as the Trojan horses that could be employed for successful drug delivery, gene delivery, peptide delivery, disease diagnosis, and others, conquering barriers associated with conventional theranostic approaches. CRITICAL ISSUES: Physiological angiogenesis is a tightly regulated process maintaining a balance between proangiogenic and antiangiogenic factors. The redox signaling is one of the main factors that contribute to this physiological balance. An aberrant redox signaling cascade can be caused by several exogenous and endogenous factors and leads to reduced or augmented angiogenesis that ultimately results in several disease conditions. FUTURE DIRECTIONS: Redox signaling-based nanomedicine approach has emerged as a new platform for angiogenesis-related disease therapy, where nanoparticles promote angiogenesis via controlled reactive oxygen species (ROS) production and antiangiogenesis by triggering excessive ROS formation. Recently, investigators have identified different efficient nano-candidates, which modulate angiogenesis by controlling intracellular redox molecules. Considering the importance of angiogenesis in health care a thorough understanding of nanomedicine-regulated redox signaling would inspire researchers to design and develop more novel nanomaterials that could be used as an alternative strategy for the treatment of various diseases, where angiogenesis plays a vital role.
意义:氧化还原信号在调节各种细胞信号通路和疾病生物学方面起着至关重要的作用。最近,纳米医学(纳米技术在生物学和医学中的应用)已被证明可通过氧化还原信号调节血管生成。本文广泛综述了治疗性纳米粒子引发的血管生成/抗血管生成所受氧化还原信号通路的影响。
最新进展:近年来,纳米医学被视为可以成功进行药物输送、基因输送、肽类输送、疾病诊断等的特洛伊木马,克服了传统治疗方法相关的障碍。
关键问题:生理性血管生成是一个严格调节的过程,在促血管生成和抗血管生成因子之间保持平衡。氧化还原信号是促成这种生理平衡的主要因素之一。几个外源和内源因素会导致异常的氧化还原信号级联反应,从而导致血管生成减少或增加,最终导致多种疾病状况。
未来方向:基于氧化还原信号的纳米医学方法已经成为与血管生成相关的疾病治疗的新平台,其中纳米粒子通过控制活性氧(ROS)的产生来促进血管生成,通过触发过多的 ROS 形成来抗血管生成。最近,研究人员已经确定了不同的有效纳米候选物,它们通过控制细胞内氧化还原分子来调节血管生成。考虑到血管生成在医疗保健中的重要性,对纳米医学调节的氧化还原信号的透彻理解将激励研究人员设计和开发更多新型纳米材料,这些材料可作为治疗各种疾病的替代策略,而血管生成在这些疾病中起着至关重要的作用。
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