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Published on: January 30, 2014
The Role of Aldose Reductase in Beta-Amyloid-Induced Microglia Activation
Yu-Kai Huang1,2,3, Chia-Chun Liu4, Shining Wang4
1Graduate Institute of Medicine, College of Medicine, Kaohsiung Medical University, Kaohsiung 80708, Taiwan.
Abstract:
The occurrence of Alzheimer's disease has been associated with the accumulation of beta-amyloid (β-amyloid) plaques. These plaques activate microglia to secrete inflammatory molecules, which damage neurons in the brain. Thus, understanding the underlying mechanism of microglia activation can provide a therapeutic strategy for alleviating microglia-induced neuroinflammation. The aldose reductase (AR) enzyme catalyzes the reduction of glucose to sorbitol in the polyol pathway. In addition to mediating diabetic complications in hyperglycemic environments, AR also helps regulate inflammation in microglia. However, little is known about the role of AR in β-amyloid-induced inflammation in microglia and subsequent neuronal death. In this study, we confirmed that AR inhibition attenuates increased β-amyloid-induced reactive oxygen species and tumor necrosis factor α secretion by suppressing ERK signaling in BV2 cells. In addition, we are the first to report that AR inhibition reduced the phagocytotic capability and cell migration of BV2 cells in response to β-amyloid. To further investigate the protective role of the AR inhibitor sorbinil in neurons, we co-cultured β-amyloid-induced microglia with stem cell-induced neurons. sorbinil ameliorated neuronal damage in both cells in the co-culture system. In summary, our findings reveal AR regulation of microglia activation as a novel therapeutic target for Alzheimer's disease.
Insights
Aldose reductase (AR) inhibition reduces beta-amyloid-induced inflammation and neuronal damage, offering a new therapeutic target for Alzheimer's disease.
Area of Science:
- Neuroscience
- Biochemistry
- Immunology
Background:
- Alzheimer's disease is linked to beta-amyloid plaques that activate microglia, causing neuroinflammation and neuronal death.
- Aldose reductase (AR) regulates inflammation in microglia, but its role in beta-amyloid-induced inflammation is unclear.
Purpose of the Study:
- To investigate the role of aldose reductase (AR) in beta-amyloid-induced microglia activation and neuroinflammation.
- To explore AR inhibition as a potential therapeutic strategy for Alzheimer's disease.
Main Methods:
- Utilized BV2 microglial cells and a co-culture system of microglia and stem cell-induced neurons.
- Administered beta-amyloid and an AR inhibitor (sorbinil).
- Assessed reactive oxygen species, tumor necrosis factor-alpha secretion, phagocytosis, cell migration, and neuronal damage.
Main Results:
- AR inhibition suppressed beta-amyloid-induced reactive oxygen species and tumor necrosis factor-alpha secretion via ERK signaling.
- AR inhibition reduced microglial phagocytosis and migration in response to beta-amyloid.
- The AR inhibitor sorbinil protected both microglia and neurons from beta-amyloid-induced damage in co-cultures.
Conclusions:
- Aldose reductase (AR) plays a key role in mediating beta-amyloid-induced microglia activation and neuroinflammation.
- Inhibiting AR is a promising therapeutic approach for Alzheimer's disease by targeting microglia-mediated neuroinflammation and neuronal protection.

