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牙髓再生中牙源性干细胞衍生外泌体的机制研究

Mechanistic insights into dental stem cells-derived exosomes in regenerative endodontics.

作者信息

Ahmad Paras, Estrin Nathan, Farshidfar Nima, Zhang Yufeng, Miron Richard J

机构信息

Department of Research, Advanced PRF Education, Jupiter, Florida, USA.

Department of Oral Biology, Rutgers School of Dental Medicine, The State University of New Jersey, Newark, New Jersey, USA.

出版信息

Int Endod J. 2025 Jun 11. doi: 10.1111/iej.14269.

Abstract

BACKGROUND

Dental pulp is a richly vascularised and innervated tissue vital for tooth vitality, sensory function, and structural integrity. While conventional root canal therapy effectively treats necrotic permanent teeth, it irreversibly eliminates pulp vitality, potentially increasing the risk of secondary infections and long-term structural compromise. In response, regenerative endodontics has emerged as a biologically favourable alternative that seeks to restore the pulp-dentine complex using principles of tissue engineering.

OBJECTIVES

This review aims to explore the therapeutic potential and mechanisms of action of exosomes derived from dental stem cells (DSC-Exos), a subclass of mesenchymal stem cells (MSCs), in promoting regeneration of the pulp-dentine complex, while also addressing translational challenges and proposing an integrated regenerative framework.

METHODS

A comprehensive literature search was conducted across Web of Science, PubMed, and Scopus databases using keywords associated with "stem cells," "exosomes," "extracellular vesicles," and "dental pulp regeneration." Titles and abstracts were screened, and eligible studies were selected based on predefined inclusion criteria: (a) original research or case reports focusing on DSC-Exos in regenerative endodontics, (b) in vitro and in vivo studies, and (c) clinical trials or animal studies showing pulp-like tissue development. Studies not fulfilling these criteria were excluded. A total of 67 articles were included for narrative synthesis.

RESULTS

DSC-Exos were found to facilitate multiple regenerative functions: promoting odontoblastic differentiation and dentine mineralisation, enhancing angiogenesis, regulating inflammation, modulating immune responses, promoting cell proliferation and migration, reducing apoptosis and senescence, and supporting neuroprotection. In-vivo studies demonstrated pulp-like tissue formation, revascularisation, and functional restoration. However, heterogeneity in exosome isolation, culture conditions, donor variability, and unclear molecular pathways remain unresolved issues.

DISCUSSION

DSC-Exos present a promising acellular, immunologically safer approach to regenerative endodontics compared to direct stem cell transplantation. Despite their potential, the lack of standardised methodologies and incomplete understanding of their molecular interaction with odontoblasts hinders clinical translation. Integration of exosomes with scaffolds, growth factors, and endogenous cues may enhance regenerative efficacy.

CONCLUSIONS

DSC-Exos represent a novel frontier in regenerative endodontics. This review proposes a triangular framework encompassing DSCs, exosomes, signalling molecules, scaffolds, and the dentine microenvironment to support a holistic and clinically translatable model for pulp-dentine complex regeneration.

摘要

背景

牙髓是一种血管丰富且神经分布密集的组织,对牙齿的活力、感觉功能和结构完整性至关重要。虽然传统的根管治疗能有效治疗坏死的恒牙,但它会不可逆地消除牙髓活力,可能增加继发感染和长期结构受损的风险。作为回应,再生牙髓治疗已成为一种生物学上更有利的替代方法,旨在利用组织工程原理恢复牙髓 - 牙本质复合体。

目的

本综述旨在探讨源自牙干细胞(DSC - Exos)的外泌体的治疗潜力和作用机制,牙干细胞是间充质干细胞(MSCs)的一个亚类,其在促进牙髓 - 牙本质复合体再生方面的作用,同时也解决转化挑战并提出一个综合的再生框架。

方法

在Web of Science、PubMed和Scopus数据库中进行了全面的文献检索,使用与“干细胞”“外泌体”“细胞外囊泡”和“牙髓再生”相关的关键词。筛选标题和摘要,并根据预定义的纳入标准选择符合条件的研究:(a)专注于再生牙髓治疗中DSC - Exos的原始研究或病例报告;(b)体外和体内研究;(c)显示牙髓样组织发育的临床试验或动物研究。不符合这些标准的研究被排除。共纳入67篇文章进行叙述性综合分析。

结果

发现DSC - Exos有助于多种再生功能:促进成牙本质细胞分化和牙本质矿化、增强血管生成、调节炎症、调节免疫反应、促进细胞增殖和迁移、减少细胞凋亡和衰老以及支持神经保护。体内研究证明了牙髓样组织形成、血管再生和功能恢复。然而,外泌体分离、培养条件、供体变异性和不明确的分子途径中的异质性仍然是未解决的问题。

讨论

与直接干细胞移植相比,DSC - Exos为再生牙髓治疗提供了一种有前景的无细胞、免疫安全性更高的方法。尽管它们具有潜力,但缺乏标准化方法以及对其与成牙本质细胞分子相互作用的不完全理解阻碍了临床转化。将外泌体与支架、生长因子和内源性信号整合可能会提高再生效果。

结论

DSC - Exos代表了再生牙髓治疗的一个新前沿。本综述提出了一个三角框架,涵盖牙干细胞、外泌体、信号分子、支架和牙本质微环境,以支持牙髓 - 牙本质复合体再生的整体且可临床转化的模型。

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