Free radical biology in neurological manifestations: mechanisms to therapeutics interventions

氧化应激 细胞生物学 脂质过氧化 DNA损伤 活性氧 生物 线粒体 自噬 衰老自由基理论 程序性细胞死亡 神经科学 信号转导 炎症 兴奋 细胞凋亡 神经保护 生物化学 免疫学 DNA
作者
Rahul Tripathi,Rohan Gupta,Mehar Sahu,Devesh Srivastava,Ankita Das,Rashmi K. Ambasta,Pravir Kumar
出处
期刊:Environmental Science and Pollution Research [Springer Nature]
卷期号:29 (41): 62160-62207 被引量:24
标识
DOI:10.1007/s11356-021-16693-2
摘要

Recent advancements and growing attention about free radicals (ROS) and redox signaling enable the scientific fraternity to consider their involvement in the pathophysiology of inflammatory diseases, metabolic disorders, and neurological defects. Free radicals increase the concentration of reactive oxygen and nitrogen species in the biological system through different endogenous sources and thus increased the overall oxidative stress. An increase in oxidative stress causes cell death through different signaling mechanisms such as mitochondrial impairment, cell-cycle arrest, DNA damage response, inflammation, negative regulation of protein, and lipid peroxidation. Thus, an appropriate balance between free radicals and antioxidants becomes crucial to maintain physiological function. Since the 1brain requires high oxygen for its functioning, it is highly vulnerable to free radical generation and enhanced ROS in the brain adversely affects axonal regeneration and synaptic plasticity, which results in neuronal cell death. In addition, increased ROS in the brain alters various signaling pathways such as apoptosis, autophagy, inflammation and microglial activation, DNA damage response, and cell-cycle arrest, leading to memory and learning defects. Mounting evidence suggests the potential involvement of micro-RNAs, circular-RNAs, natural and dietary compounds, synthetic inhibitors, and heat-shock proteins as therapeutic agents to combat neurological diseases. Herein, we explain the mechanism of free radical generation and its role in mitochondrial, protein, and lipid peroxidation biology. Further, we discuss the negative role of free radicals in synaptic plasticity and axonal regeneration through the modulation of various signaling molecules and also in the involvement of free radicals in various neurological diseases and their potential therapeutic approaches.
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