模拟发育微环境的牙源性外泌体在体内促进牙髓-牙本质复合体的完全再生

IF 11.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Journal of Advanced Research Pub Date : 2025-01-05 DOI:10.1016/j.jare.2024.12.048
Yifan Wang, Jing Mao, Yujie Wang, Rui Wang, Nan Jiang, Xiaohan Hu, Xin Shi
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引用次数: 0

摘要

建立优化的牙本质-牙髓复合工程再生微环境已变得越来越重要。最近,外泌体已成为模拟发育微环境和促进组织再生的有利仿生纳米治疗工具。目的本研究旨在阐明人牙髓干细胞(DPSCs)外泌体在牙髓-牙本质复合体再生过程中启动成牙分化的同时维持间充质干细胞(MSC)在牙髓形成、血管生成和神经发生中的特性的多方面作用。方法采用差速离心分离正常dpsc (DPSC-Exos)和初始触发牙源性分化dpsc (DPSC-Od-Exos)的外泌体。这些外泌体对DPSCs和人脐静脉内皮细胞(HUVECs)生物学行为的影响通过CCK-8实验和Transwell迁移实验以及专门评估牙源性、血管生成和神经生成能力的实验进行了体外研究。在体内,将含有DPSC-Exos或DPSC-Od-Exos的Matrigel塞和人牙根碎片皮下移植到小鼠模型中。随后进行组织学、免疫组织化学和免疫荧光分析以确定再生结果。结果dpsc - exos与DPSC-Od-Exos在性状上无显著差异。体外分析表明,与DPSC-Exos相比,DPSC-Od-Exos显著促进了dpsc的增殖、迁移和多系分化。此外,DPSC-Od-Exos对huvec管状结构的形成有更明显的影响。与此一致,Matrigel plug实验证实,DPSC-Od-Exos在促进DPSCs内皮分化和刺激huvec血管生成方面表现优异。值得注意的是,DPSC-Od-Exos有助于人牙根碎片髓质-牙本质复合体的完全再生,其特征是神经血管结构丰富,成牙细胞样细胞层连续,将细胞质投影延伸到新形成的牙本质小管中。结论通过模拟发育微环境,多功能DPSC-Od-Exos在重建牙本质样组织、血管网络和神经结构方面表现出了良好的潜力,从而增强了我们对DPSC-Od-Exos在再生牙髓治疗中的治疗意义的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Odontogenic exosomes simulating the developmental microenvironment promote complete regeneration of pulp-dentin complex in vivo

Introduction

Establishing an optimized regenerative microenvironment for pulp-dentin complex engineering has become increasingly critical. Recently, exosomes have emerged as favorable biomimetic nanotherapeutic tools to simulate the developmental microenvironment and facilitate tissue regeneration.

Objectives

This study aimed to elucidate the multifaceted roles of exosomes from human dental pulp stem cells (DPSCs) that initiated odontogenic differentiation while sustaining mesenchymal stem cell (MSC) characteristics in odontogenesis, angiogenesis, and neurogenesis during pulp-dentin complex regeneration.

Methods

Differential centrifugation was performed to isolate exosomes from normal DPSCs (DPSC-Exos) and DPSCs that initially triggered odontogenic differentiation (DPSC-Od-Exos). The impact of these exosomes on the biological behavior of DPSCs and human umbilical vein endothelial cells (HUVECs) was examined in vitro through CCK-8 assay and Transwell migration assay, as well as assays dedicated to assessing odontogenic, angiogenic, and neurogenic capabilities. In vivo, Matrigel plugs and human tooth root fragments incorporating either DPSC-Exos or DPSC-Od-Exos were subcutaneously transplanted into mouse models. Subsequent histological, immunohistochemical, and immunofluorescent analyses were conducted to determine the regenerative outcomes.

Results

DPSC-Exos and DPSC-Od-Exos revealed no remarkable difference in their characteristics. In vitro analyses indicated that DPSC-Od-Exos significantly facilitated the proliferation, migration, and multilineage differentiation of DPSCs compared with DPSC-Exos. Furthermore, DPSC-Od-Exos elicited a more pronounced effect on the tubular structure formation of HUVECs. Consistently, Matrigel plug assays confirmed that DPSC-Od-Exos exhibited superior performance in promoting endothelial differentiation of DPSCs and stimulating angiogenesis in HUVECs. Notably, DPSC-Od-Exos contributed to complete pulp-dentin complex regeneration in human tooth root fragments, characterized by enriched neurovascular structures and a continuous layer of odontoblast-like cells, which extended cytoplasmic projections into the newly formed dentinal tubules.

Conclusion

By simulating the developmental microenvironment, multifunctional DPSC-Od-Exos demonstrated promising potential for reconstructing dentin-like tissue, vascular networks, and neural architectures, thereby enhancing our understanding of the therapeutic implications of DPSC-Od-Exos in regenerative endodontic treatment.
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来源期刊
Journal of Advanced Research
Journal of Advanced Research Multidisciplinary-Multidisciplinary
CiteScore
21.60
自引率
0.90%
发文量
280
审稿时长
12 weeks
期刊介绍: Journal of Advanced Research (J. Adv. Res.) is an applied/natural sciences, peer-reviewed journal that focuses on interdisciplinary research. The journal aims to contribute to applied research and knowledge worldwide through the publication of original and high-quality research articles in the fields of Medicine, Pharmaceutical Sciences, Dentistry, Physical Therapy, Veterinary Medicine, and Basic and Biological Sciences. The following abstracting and indexing services cover the Journal of Advanced Research: PubMed/Medline, Essential Science Indicators, Web of Science, Scopus, PubMed Central, PubMed, Science Citation Index Expanded, Directory of Open Access Journals (DOAJ), and INSPEC.
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