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Updated: Jul 7, 2025

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Mechanism by which HDAC3 regulates manganese induced H3K27ac in SH-SY5Y cells and intervention by curcumin
Ying Liu1, Hua Zhao1, Yue Yang2
1School of Public Heath, The Key Laboratory of Environmental Pollution Monitoring and Disease Control, Ministry of Education, Guizhou Medical University, Guiyang, Guizhou, 550025, China.
Abstract:
Long-term excessive exposure to manganese can impair neuronal function in the brain, but the underlying pathological mechanism remains unclear. Oxidative stress plays a central role in manganese-induced neurotoxicity. Numerous studies have established a strong link between abnormal histone acetylation levels and the onset of various diseases. Histone deacetylase inhibitors and activators, such as TSA and ITSA-1, are often used to investigate the intricate mechanisms of histone acetylation in disease. In addition, recent experiments have provided substantial evidence demonstrating that curcumin (Cur) can act as an epigenetic regulator. Given these findings, this study aims to investigate the mechanisms underlying oxidative damage in SH-SY5Y cells exposed to MnCl2·4H2O, with a particular focus on histone acetylation, and to assess the potential therapeutic efficacy of Cur. In this study, SH-SY5Y cells were exposed to manganese for 24 h, were treated with TSA or ITSA-1, and were treated with or without Cur. The results suggested that manganese exposure, which leads to increased expression of HDAC3, induced H3K27 hypoacetylation, inhibited the transcription of antioxidant genes, decreased antioxidant enzyme activities, and induced oxidative damage in cells. Pretreatment with an HDAC3 inhibitor (TSA) increased the acetylation of H3K27 and the transcription of antioxidant genes and thus slowed manganese exposure-induced cellular oxidative damage. In contrast, an HDAC3 activator (ITSA-1) partially increased manganese-induced cellular oxidative damage, while Cur prevented manganese-induced oxidative damage. In summary, these findings suggest that inhibiting H3K27ac is a possible mechanism for ameliorating manganese-induced damage to dopaminergic neurons and that Cur exerts a certain protective effect against manganese-induced damage to dopaminergic neurons.
Insights
Excessive manganese exposure causes oxidative damage to brain cells by reducing histone acetylation. Curcumin protects against this damage, suggesting a therapeutic role in neurotoxicity.
Area of Science:
- Neuroscience
- Toxicology
- Epigenetics
Background:
- Long-term manganese exposure impairs neuronal function, with oxidative stress as a key factor.
- Histone acetylation is linked to various diseases, and its regulation is crucial.
- Curcumin (Cur) shows potential as an epigenetic regulator.
Purpose of the Study:
- Investigate manganese-induced oxidative damage mechanisms in SH-SY5Y cells.
- Focus on the role of histone acetylation in manganese neurotoxicity.
- Evaluate curcumin's therapeutic potential against manganese-induced oxidative damage.
Main Methods:
- Exposed SH-SY5Y cells to manganese chloride (MnCl2·4H2O) for 24 hours.
- Treated cells with histone deacetylase inhibitor (TSA), activator (ITSA-1), or curcumin (Cur).
- Assessed changes in H3K27 acetylation, antioxidant gene expression, enzyme activity, and oxidative damage.
Main Results:
- Manganese exposure increased HDAC3 expression, leading to H3K27 hypoacetylation and inhibited antioxidant gene transcription.
- TSA pretreatment reversed manganese-induced effects, reducing oxidative damage.
- ITSA-1 exacerbated oxidative damage, while Cur demonstrated protective effects against manganese toxicity.
Conclusions:
- Inhibition of H3K27 acetylation is implicated in manganese-induced dopaminergic neuron damage.
- Curcumin offers a protective effect against manganese-induced neurotoxicity.
- Targeting histone acetylation pathways may be a strategy for treating manganese neurotoxicity.
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