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Isolation and Cultivation of Neural Progenitors Followed by Chromatin-Immunoprecipitation of Histone 3 Lysine 79 Dimethylation Mark
Published on: January 26, 2018
Loss of KDM5A-mediated H3K4me3 demethylation promotes aberrant neural development by Wnt/β-catenin pathway activation
Jianting Li1, Yuxiang Liang1,2, Zhihua Cao1
1Department of Biochemistry and Molecular Biology, College of Basic Medicine, Shanxi Key Laboratory of Birth Defect and Cell Regeneration, MOE Key Laboratory of Coal Environmental Pathogenicity and Prevention, Shanxi Medical University, Taiyuan, China.
Abstract:
Neural tube defects (NTDs) are common and severe birth defects. Folate supplementation can prevent NTDs, but the underlying molecular mechanisms are unclear. Aberrant wnt/β-catenin pathway activation leads to defective anteroposterior patterning, resulting in NTDs, but little is known about whether epigenetic factors contribute to this process. Here, we performed ChIP and Cut&Tag to explore H3K4me3 in folate-deficient cells and NTDs mouse models. Our findings show folate deficiency increased H3K4me3 levels at wnt target genes promoters, enhancing their transcription. This effect was mediated by reduced expression of histone demethylase KDM5A, leading to the maintenance of H3K4me3 marks and activation of wnt/β-catenin signalling. Similarly, wnt/β-catenin pathway was activated in KDM5A-KO cells, differentiation of neuronal progenitors cells from mouse ESCs under folate deficiency and folate-deficient NTD mice. Intriguingly, KDM5A depletion in zebrafish embryos resulted in defective neurodevelopment and increased wnt signalling. Furthermore, the transcription factor PAX2 downregulated KDM5A under folate-deficient conditions. Clinically, increased H3K4me3 levels and wnt target genes expression were observed in low-folate NTDs brain samples. All these findings suggest KDM5A-dependent epigenetic regulation of wnt signaling is crucial in low folate NTDs, implicating a potential therapeutic target.
Insights
Folate deficiency increases epigenetic marks at Wnt target genes, activating Wnt signaling and causing neural tube defects (NTDs). Reduced KDM5A expression is key in this process, suggesting KDM5A as a therapeutic target for NTDs.
Area of Science:
- Developmental Biology
- Epigenetics
- Molecular Biology
Background:
- Neural tube defects (NTDs) are severe congenital abnormalities, and while folate prevents them, the molecular basis remains elusive.
- Aberrant Wnt/β-catenin signaling contributes to NTDs, but the role of epigenetic factors is not well understood.
Purpose of the Study:
- To investigate the epigenetic mechanisms underlying NTDs in folate-deficient conditions.
- To explore the role of H3K4me3 and KDM5A in Wnt pathway activation in NTDs.
Main Methods:
- Chromatin immunoprecipitation (ChIP) and Cut&Tag assays were used to analyze H3K4me3 levels in folate-deficient cells and NTD mouse models.
- Gene expression analysis and functional studies in cell lines, mouse models, zebrafish, and human brain samples.
Main Results:
- Folate deficiency elevated H3K4me3 at Wnt target gene promoters, enhancing transcription via reduced KDM5A expression.
- KDM5A knockout cells and folate-deficient NTD mice showed activated Wnt/β-catenin signaling and defective neurodevelopment.
- PAX2 downregulated KDM5A in folate deficiency, and increased H3K4me3 and Wnt target gene expression were found in human NTD brain samples.
Conclusions:
- KDM5A-dependent epigenetic regulation of Wnt signaling is critical in low-folate NTDs.
- KDM5A represents a potential therapeutic target for preventing or treating neural tube defects.
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