Next-Generation Strategies for Enamel Repair and Regeneration: Advances in Biomaterials and Translational Challenges.

IF 4.4 4区 医学 Q2 CELL & TISSUE ENGINEERING
Eman M Sedek, Ahmed A Holiel
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引用次数: 0

Abstract

Background: Enamel regeneration and remineralization are critical for restoring enamel integrity, as natural enamel lacks the ability to regenerate due to the absence of ameloblasts. The increasing prevalence of dental caries and the irreversible nature of enamel damage highlight the need for advanced repair strategies.

Methods: This review examines the latest advancements in enamel regeneration and remineralization, focusing on biomaterials, nanotechnology-based approaches, and bioengineering strategies. Google Scholar, Scopus (Elsevier), and PubMed databases were used for the selection of literature. The search included key terms such as "enamel regeneration," "biomimetic enamel repair," "stem cell-based enamel regeneration," "nanotechnology in enamel repair," "hydroxyapatite enamel remineralization," and "biomaterials for enamel remineralization."

Results: Various strategies have been explored for enamel remineralization, including self-assembling peptides, dendrimers, hydrogels, and electrospun mats, each demonstrating varying success in laboratory and preclinical studies. While casein-phosphopeptide-stabilized amorphous calcium phosphate (CPP-ACP) combined with fluoride remains a widely used clinical remineralization agent, integrating CPP-ACP with nanotechnology is an emerging area requiring further research. Enamel bioengineering approaches utilizing stem/progenitor cells offer potential, though challenges remain in achieving clinical translation.

Conclusion: Despite advancements, replicating the hierarchical structure and mechanical properties of natural enamel remains challenging. Nanotechnology-driven approaches, bioengineered scaffolds, and interdisciplinary collaboration hold promise for optimizing enamel regeneration techniques. Further research is necessary to enhance clinical applicability and develop scalable, effective treatments for enamel restoration.

下一代牙釉质修复和再生策略:生物材料的进展和转化挑战。
背景:牙釉质再生和再矿化是恢复牙釉质完整性的关键,因为天然牙釉质由于缺乏成釉细胞而缺乏再生能力。龋齿的日益流行和牙釉质损伤的不可逆性突出了对先进修复策略的需求。方法:本文综述了牙釉质再生和再矿化的最新进展,重点介绍了生物材料、纳米技术和生物工程策略。使用谷歌Scholar、Scopus (Elsevier)和PubMed数据库进行文献选择。搜索的关键词包括“牙釉质再生”、“仿生牙釉质修复”、“干细胞牙釉质再生”、“牙釉质修复中的纳米技术”、“羟基磷灰石牙釉质再矿化”和“牙釉质再矿化的生物材料”。结果:已经探索了各种牙釉质再矿化策略,包括自组装肽,树突,水凝胶和电纺丝垫,每种策略在实验室和临床前研究中都取得了不同的成功。酪蛋白-磷酸肽稳定的无定形磷酸钙(CPP-ACP)与氟化物联合是临床广泛使用的再矿化剂,但将CPP-ACP与纳米技术结合是一个需要进一步研究的新兴领域。利用干细胞/祖细胞的牙釉质生物工程方法提供了潜力,尽管在实现临床转化方面仍然存在挑战。结论:尽管取得了进步,但复制天然牙釉质的层次结构和力学性能仍然具有挑战性。纳米技术驱动的方法、生物工程支架和跨学科合作有望优化牙釉质再生技术。需要进一步的研究来提高临床适用性和开发可扩展的、有效的牙釉质修复方法。
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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来源期刊
Tissue engineering and regenerative medicine
Tissue engineering and regenerative medicine CELL & TISSUE ENGINEERING-ENGINEERING, BIOMEDICAL
CiteScore
6.80
自引率
5.60%
发文量
83
审稿时长
6-12 weeks
期刊介绍: Tissue Engineering and Regenerative Medicine (Tissue Eng Regen Med, TERM), the official journal of the Korean Tissue Engineering and Regenerative Medicine Society, is a publication dedicated to providing research- based solutions to issues related to human diseases. This journal publishes articles that report substantial information and original findings on tissue engineering, medical biomaterials, cells therapy, stem cell biology and regenerative medicine.
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