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Published on: February 9, 2021
NADPH oxidase as a therapeutic target in Alzheimer's disease
1Department of Anatomy and Neurobiology, Virginia Commonwealth University Medical Campus, Richmond, VA 23298, USA. Block@vcu.edu
Abstract:
At present, available treatments for Alzheimer's disease (AD) are largely unable to halt disease progression. Microglia, the resident macrophages in the brain, are strongly implicated in the pathology and progressively degenerative nature of AD. Specifically, microglia are activated in response to both beta amyloid (Abeta) and neuronal damage, and can become a chronic source of neurotoxic cytokines and reactive oxygen species (ROS). NADPH oxidase is a multi-subunit enzyme complex responsible for the production of both extracellular and intracellular ROS by microglia. Importantly, NADPH oxidase expression is upregulated in AD and is an essential component of microglia-mediated Abeta neurotoxicity. Activation of microglial NADPH oxidase causes neurotoxicity through two mechanisms: 1) extracellular ROS produced by microglia are directly toxic to neurons; 2) intracellular ROS function as a signaling mechanism in microglia to amplify the production of several pro-inflammatory and neurotoxic cytokines (for example, tumor necrosis factor-alpha, prostaglandin E2, and interleukin-1beta). The following review describes how targeting NADPH oxidase can reduce a broad spectrum of toxic factors (for example, cytokines, ROS, and reactive nitrogen species) to result in inhibition of neuronal damage from two triggers of deleterious microglial activation (Abeta and neuron damage), offering hope in halting the progression of AD.
Insights
Targeting NADPH oxidase in microglia may halt Alzheimer's disease progression. Inhibiting this enzyme reduces toxic factors like reactive oxygen species and cytokines, protecting neurons from damage.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Alzheimer's disease (AD) treatments are insufficient to stop progression.
- Microglia, brain macrophages, are key players in AD pathology.
- Microglia activation by beta amyloid (Abeta) and neuronal damage releases neurotoxic factors.
Purpose of the Study:
- Review the role of NADPH oxidase in microglia-mediated neurotoxicity in AD.
- Explore targeting NADPH oxidase as a therapeutic strategy for AD.
Main Methods:
- Literature review on microglial function in AD.
- Analysis of NADPH oxidase pathway in neuroinflammation.
- Examination of therapeutic potential of targeting NADPH oxidase.
Main Results:
- NADPH oxidase in microglia produces reactive oxygen species (ROS) and exacerbates neuroinflammation.
- Upregulated NADPH oxidase in AD contributes to Abeta-induced neurotoxicity.
- Targeting NADPH oxidase can reduce multiple neurotoxic factors.
Conclusions:
- NADPH oxidase is a critical mediator of microglial neurotoxicity in AD.
- Inhibiting NADPH oxidase offers a promising therapeutic approach to halt AD progression.
- Reducing ROS, cytokines, and reactive nitrogen species can protect neurons from Abeta and damage-induced toxicity.
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