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口腔上皮中 Ezh2 依赖性甲基化促进腭二次发生。

Ezh2-dependent methylation in oral epithelia promotes secondary palatogenesis.

机构信息

Institute for Pediatric Regenerative Medicine of Shriners Hospital for Children-Northern California & Department of Biochemistry and Molecular Medicine, School of Medicine, University of California at Davis, Sacramento, California, USA.

出版信息

Birth Defects Res. 2023 Nov 15;115(19):1851-1865. doi: 10.1002/bdr2.2216. Epub 2023 Jul 12.

Abstract

BACKGROUND

In addition to genomic risk variants and environmental influences, increasing evidence suggests epigenetic modifications are important for orofacial development and their alterations can contribute to orofacial clefts. Ezh2 encodes a core catalytic component of the Polycomb repressive complex responsible for addition of methyl marks to Histone H3 as a mechanism of repressing target genes. The role of Ezh2 in orofacial clefts remains unknown.

AIMS

To investigate the epithelial role of Ezh2-dependent methylation in secondary palatogenesis.

METHODS

We used conditional gene-targeting methods to ablate Ezh2 in the surface ectoderm-derived oral epithelium of mouse embryos. We then performed single-cell RNA sequencing combined with immunofluorescence and RT-qPCR to investigate gene expression in conditional mutant palate. We also employed double knockout analyses of Ezh1 and Ezh2 to address if they have synergistic roles in palatogenesis.

RESULTS

We found that conditional inactivation of Ezh2 in oral epithelia results in partially penetrant cleft palate. Double knockout analyses revealed that another family member Ezh1 is dispensable in orofacial development, and it does not have synergistic roles with Ezh2 in palatogenesis. Histochemistry and single-cell RNA-seq analyses revealed dysregulation of cell cycle regulators in the palatal epithelia of Ezh2 mutant mouse embryos disrupts palatogenesis.

CONCLUSION

Ezh2-dependent histone H3K27 methylation represses expression of cell cycle regulator Cdkn1a and promotes proliferation in the epithelium of the developing palatal shelves. Loss of this regulation may perturb movement of the palatal shelves, causing a delay in palate elevation which may result in failure of the secondary palate to close altogether.

摘要

背景

除了基因组风险变异和环境影响外,越来越多的证据表明表观遗传修饰对于口面发育很重要,其改变可能导致口面裂。Ezh2 编码多梳抑制复合物的核心催化亚基,负责向组蛋白 H3 添加甲基标记,作为抑制靶基因的一种机制。Ezh2 在口面裂中的作用尚不清楚。

目的

研究 Ezh2 依赖性甲基化在腭二次发生中的上皮作用。

方法

我们使用条件基因靶向方法在小鼠胚胎的表面外胚层衍生的口腔上皮中敲除 Ezh2。然后,我们进行单细胞 RNA 测序结合免疫荧光和 RT-qPCR 以研究条件性突变腭中的基因表达。我们还进行了 Ezh1 和 Ezh2 的双敲除分析,以解决它们在腭发生中是否具有协同作用。

结果

我们发现,口腔上皮中 Ezh2 的条件性失活导致部分穿透性腭裂。双敲除分析表明,另一个家族成员 Ezh1 在口面发育中是不必要的,并且它在腭发生中与 Ezh2 没有协同作用。组织化学和单细胞 RNA-seq 分析表明,Ezh2 突变小鼠胚胎腭上皮中的细胞周期调节剂失调,破坏了腭发生。

结论

Ezh2 依赖性组蛋白 H3K27 甲基化抑制细胞周期调节剂 Cdkn1a 的表达并促进发育中腭突上皮的增殖。这种调节的丧失可能会扰乱腭突的运动,导致腭升高延迟,从而导致二次腭无法完全闭合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a62/10784412/1ed0b3d1da9d/nihms-1917619-f0001.jpg

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Role of epigenetics and miRNAs in orofacial clefts.表观遗传学和 microRNAs 在口腔面裂中的作用。
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Cellular and developmental basis of orofacial clefts.口腔面裂的细胞与发育基础。
Birth Defects Res. 2020 Nov;112(19):1558-1587. doi: 10.1002/bdr2.1768. Epub 2020 Jul 29.
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Genetics and signaling mechanisms of orofacial clefts.口腔颌面裂的遗传学和信号机制。
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