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牙周组织、上颌颌骨和牙齿再生方法:从动物模型分析到临床应用

Periodontal Tissues, Maxillary Jaw Bone, and Tooth Regeneration Approaches: From Animal Models Analyses to Clinical Applications.

作者信息

Batool Fareeha, Strub Marion, Petit Catherine, Bugueno Isaac Maximiliano, Bornert Fabien, Clauss François, Huck Olivier, Kuchler-Bopp Sabine, Benkirane-Jessel Nadia

机构信息

INSERM (French National Institute of Health and Medical Research), UMR 1260, Regenerative NanoMedicine (RNM), FMTS, 67000 Strasbourg, France.

Faculty of Dentistry, University of Strasbourg (UDS), 8 rue Ste Elisabeth, 67000 Strasbourg, France.

出版信息

Nanomaterials (Basel). 2018 May 16;8(5):337. doi: 10.3390/nano8050337.

Abstract

This review encompasses different pre-clinical bioengineering approaches for periodontal tissues, maxillary jaw bone, and the entire tooth. Moreover, it sheds light on their potential clinical therapeutic applications in the field of regenerative medicine. Herein, the electrospinning method for the synthesis of polycaprolactone (PCL) membranes, that are capable of mimicking the extracellular matrix (ECM), has been described. Furthermore, their functionalization with cyclosporine A (CsA), bone morphogenetic protein-2 (BMP-2), or anti-inflammatory drugs' nanoreservoirs has been demonstrated to induce a localized and targeted action of these molecules after implantation in the maxillary jaw bone. Firstly, periodontal wound healing has been studied in an induced periodontal lesion in mice using an ibuprofen-functionalized PCL membrane. Thereafter, the kinetics of maxillary bone regeneration in a pre-clinical mouse model of surgical bone lesion treated with BMP-2 or BMP-2/Ibuprofen functionalized PCL membranes have been analyzed by histology, immunology, and micro-computed tomography (micro-CT). Furthermore, the achievement of innervation in bioengineered teeth has also been demonstrated after the co-implantation of cultured dental cell reassociations with a trigeminal ganglia (TG) and the cyclosporine A (CsA)-loaded poly(lactic-co-glycolic acid) (PLGA) scaffold in the jaw bone. The prospective clinical applications of these different tissue engineering approaches could be instrumental in the treatment of various periodontal diseases, congenital dental or cranio-facial bone anomalies, and post-surgical complications.

摘要

本综述涵盖了针对牙周组织、上颌骨和整个牙齿的不同临床前生物工程方法。此外,还阐述了它们在再生医学领域潜在的临床治疗应用。本文描述了用于合成能够模拟细胞外基质(ECM)的聚己内酯(PCL)膜的静电纺丝方法。此外,已证明用环孢素A(CsA)、骨形态发生蛋白-2(BMP-2)或抗炎药物纳米储库对其进行功能化处理后,这些分子在植入上颌骨后可产生局部靶向作用。首先,使用布洛芬功能化的PCL膜在小鼠诱导性牙周病变中研究了牙周伤口愈合情况。此后,通过组织学、免疫学和微型计算机断层扫描(micro-CT)分析了用BMP-2或BMP-2/布洛芬功能化的PCL膜治疗的手术性骨病变临床前小鼠模型中上颌骨再生的动力学。此外,在颌骨中共同植入培养的牙细胞重聚体与三叉神经节(TG)和负载环孢素A(CsA)的聚乳酸-乙醇酸共聚物(PLGA)支架后,还证明了生物工程牙齿中神经支配的实现。这些不同组织工程方法的潜在临床应用可能有助于治疗各种牙周疾病、先天性牙齿或颅面骨异常以及术后并发症。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a362/5977351/56aa0ec64087/nanomaterials-08-00337-g001.jpg

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