Angiogenic and neurogenic potential of dental‐derived stem cells for functional pulp regeneration: A narrative review

再生(生物学) 牙髓(牙) 牙髓炎 叙述性评论 牙科 牙髓干细胞 神经发生 血管生成 干细胞 医学 神经科学 间充质干细胞 生物 病理 细胞生物学 癌症研究 重症监护医学
作者
Wenpei Su,Chufang Liao,Xiangning Liu
出处
期刊:International Endodontic Journal [Wiley]
卷期号:58 (3): 391-410 被引量:24
标识
DOI:10.1111/iej.14180
摘要

BACKGROUND: Dental pulp tissue engineering is expected to become an ideal treatment for irreversible pulpitis and apical periodontitis. However, angiogenesis and neurogenesis for functional pulp regeneration have not yet met the standard for large-scale clinical application, and need further research. OBJECTIVE: This review focused on the potential mechanisms of angiogenesis and neurogenesis in pulp regeneration, including stem cell types, upstream and downstream regulatory molecules and cascade signalling pathways, thereby providing a theoretical basis and inspiring new ideas to improve the effectiveness of dental pulp tissue engineering. METHODS: An electronic literature search was carried out using the keywords of 'pulp regeneration', 'stem cell transplantation', 'dental pulp stem cells', 'angiogenesis' and 'neurogenesis'. The resulting literature was screened and reviewed. RESULTS: Stem cells used in dental pulp tissue engineering can be classified as dental-derived and non-dental-derived stem cells, amongst which dental pulp stem cells (DPSC) have achieved promising results in animal experiments and clinical trials. Multiple molecules and signalling pathways are involved in the process of DPSC-mediated angiogenic and neurogenetic regeneration. In order to promote angiogenesis and neurogenesis in pulp regeneration, feasible measures include the addition of growth factors, the modulation of transcription factors and signalling pathways, the use of extracellular vesicles and the modification of bioscaffold materials. CONCLUSION: Dental pulp tissue engineering has had breakthroughs in preclinical and clinical studies in vivo. Overcoming difficulties in pulpal angiogenesis and neurogenesis, and achieving functional pulp regeneration will lead to a significant impact in endodontics.
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