Role and mechanisms of histone methylation in osteogenic/odontogenic differentiation of dental mesenchymal stem cells

IF 10.8 1区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE
Meijun Hu, Zhipeng Fan
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Abstract

Dental mesenchymal stem cells (DMSCs) are pivotal for tooth development and periodontal tissue health and play an important role in tissue engineering and regenerative medicine because of their multidirectional differentiation potential and self-renewal ability. The cellular microenvironment regulates the fate of stem cells and can be modified using various optimization techniques. These methods can influence the cellular microenvironment, activate disparate signaling pathways, and induce different biological effects. “Epigenetic regulation” refers to the process of influencing gene expression and regulating cell fate without altering DNA sequences, such as histone methylation. Histone methylation modifications regulate pivotal transcription factors governing DMSCs differentiation into osteo-/odontogenic lineages. The most important sites of histone methylation in tooth organization were found to be H3K4, H3K9, and H3K27. Histone methylation affects gene expression and regulates stem cell differentiation by maintaining a delicate balance between major trimethylation sites, generating distinct chromatin structures associated with specific downstream transcriptional states. Several crucial signaling pathways associated with osteogenic differentiation are susceptible to modulation via histone methylation modifications. A deeper understanding of the regulatory mechanisms governing histone methylation modifications in osteo-/odontogenic differentiation and immune-inflammatory responses of DMSCs will facilitate further investigation of the epigenetic regulation of histone methylation in DMSC-mediated tissue regeneration and inflammation. Here is a concise overview of the pivotal functions of epigenetic histone methylation at H3K4, H3K9, and H3K27 in the regulation of osteo-/odontogenic differentiation and renewal of DMSCs in both non-inflammatory and inflammatory microenvironments. This review summarizes the current research on these processes in the context of tissue regeneration and therapeutic interventions.

Abstract Image

组蛋白甲基化在牙间充质干细胞成骨/成牙分化中的作用和机制
牙间充质干细胞(mesenchal stem cells, DMSCs)是牙齿发育和牙周组织健康的关键细胞,由于其多向分化和自我更新的能力,在组织工程和再生医学中发挥着重要作用。细胞微环境调节着干细胞的命运,可以使用各种优化技术进行修改。这些方法可以影响细胞微环境,激活不同的信号通路,并诱导不同的生物效应。“表观遗传调控”是指在不改变DNA序列的情况下影响基因表达和调节细胞命运的过程,如组蛋白甲基化。组蛋白甲基化修饰调节关键转录因子控制DMSCs分化成骨/牙源性谱系。在牙齿组织中最重要的组蛋白甲基化位点是H3K4、H3K9和H3K27。组蛋白甲基化通过维持主要三甲基化位点之间的微妙平衡来影响基因表达并调节干细胞分化,产生与特定下游转录状态相关的不同染色质结构。与成骨分化相关的几个关键信号通路易受组蛋白甲基化修饰的调节。更深入地了解组蛋白甲基化修饰在dmsc成骨/牙源性分化和免疫炎症反应中的调控机制,将有助于进一步研究dmsc介导的组织再生和炎症中组蛋白甲基化的表观遗传调控。本文简要概述了H3K4、H3K9和H3K27位点表观遗传组蛋白甲基化在非炎症和炎症微环境中调控成骨/牙源性分化和DMSCs更新中的关键功能。本文综述了目前在组织再生和治疗干预方面对这些过程的研究。
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来源期刊
International Journal of Oral Science
International Journal of Oral Science DENTISTRY, ORAL SURGERY & MEDICINE-
CiteScore
31.80
自引率
1.30%
发文量
53
审稿时长
>12 weeks
期刊介绍: The International Journal of Oral Science covers various aspects of oral science and interdisciplinary fields, encompassing basic, applied, and clinical research. Topics include, but are not limited to: Oral microbiology Oral and maxillofacial oncology Cariology Oral inflammation and infection Dental stem cells and regenerative medicine Craniofacial surgery Dental material Oral biomechanics Oral, dental, and maxillofacial genetic and developmental diseases Craniofacial bone research Craniofacial-related biomaterials Temporomandibular joint disorder and osteoarthritis The journal publishes peer-reviewed Articles presenting new research results and Review Articles offering concise summaries of specific areas in oral science.
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