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本文引用的文献

1
Innovations in Craniofacial Bone and Periodontal Tissue Engineering - From Electrospinning to Converged Biofabrication.颅面骨与牙周组织工程的创新——从静电纺丝到融合生物制造
Int Mater Rev. 2022;67(4):347-384. doi: 10.1080/09506608.2021.1946236. Epub 2021 Jul 5.
2
Colloidal Crystals Delay Formation of Early Stage Bacterial Biofilms.胶体晶体延缓早期细菌生物膜的形成。
ACS Biomater Sci Eng. 2016 Jun 13;2(6):1039-1048. doi: 10.1021/acsbiomaterials.6b00163. Epub 2016 May 18.
3
Fabrication Aspects of Porous Biomaterials in Orthopedic Applications: A Review.骨科应用中多孔生物材料的制备方面:综述
ACS Biomater Sci Eng. 2018 Jan 8;4(1):1-39. doi: 10.1021/acsbiomaterials.7b00615. Epub 2017 Dec 12.
4
Effects of Gradient and Offset Architectures on the Mechanical and Biological Properties of 3-D Melt Electrowritten (MEW) Scaffolds.梯度和偏移结构对三维熔体电写(MEW)支架的力学和生物学性能的影响
ACS Biomater Sci Eng. 2019 Jul 8;5(7):3448-3461. doi: 10.1021/acsbiomaterials.8b01456. Epub 2019 Jun 18.
5
In vivo bone regeneration assessment of offset and gradient melt electrowritten (MEW) PCL scaffolds.偏移和梯度熔体电写(MEW)聚己内酯(PCL)支架的体内骨再生评估
Biomater Res. 2020 Oct 1;24:17. doi: 10.1186/s40824-020-00196-1. eCollection 2020.
6
Highly tunable bioactive fiber-reinforced hydrogel for guided bone regeneration.用于引导骨再生的高可调生物活性纤维增强水凝胶。
Acta Biomater. 2020 Sep 1;113:164-176. doi: 10.1016/j.actbio.2020.06.011. Epub 2020 Jun 12.
7
Electrospinning of dexamethasone/cyclodextrin inclusion complex polymer fibers for dental pulp therapy.静电纺丝法制备用于牙髓治疗的地塞米松/环糊精包合物聚合物纤维。
Colloids Surf B Biointerfaces. 2020 Jul;191:111011. doi: 10.1016/j.colsurfb.2020.111011. Epub 2020 Apr 7.
8
Bioenergetic-active materials enhance tissue regeneration by modulating cellular metabolic state.生物能量活性材料通过调节细胞代谢状态来促进组织再生。
Sci Adv. 2020 Mar 25;6(13):eaay7608. doi: 10.1126/sciadv.aay7608. eCollection 2020 Mar.
9
Role of offset and gradient architectures of 3-D melt electrowritten scaffold on differentiation and mineralization of osteoblasts.三维熔体电写支架的偏移和梯度结构对成骨细胞分化和矿化的作用。
Biomater Res. 2020 Jan 3;24:2. doi: 10.1186/s40824-019-0180-z. eCollection 2020.
10
Sustained Release of Two Bioactive Factors from Supramolecular Hydrogel Promotes Periodontal Bone Regeneration.超分子水凝胶持续释放两种生物活性因子促进牙周骨再生。
ACS Nano. 2019 May 28;13(5):5616-5622. doi: 10.1021/acsnano.9b00788. Epub 2019 May 8.

高度有序的、纳米结构的氟掺杂 CaP 涂层熔融静电纺丝支架用于牙周组织再生。

A Highly Ordered, Nanostructured Fluorinated CaP-Coated Melt Electrowritten Scaffold for Periodontal Tissue Regeneration.

机构信息

Department of Cariology, Restorative Sciences and Endodontics, School of Dentistry, University of Michigan, Ann Arbor, MI, 48109, USA.

Department of Restorative Dental Sciences, School of Dentistry, Jazan University, Jazan, 45142, Kingdom of Saudi Arabia.

出版信息

Adv Healthc Mater. 2021 Nov;10(21):e2101152. doi: 10.1002/adhm.202101152. Epub 2021 Aug 3.

DOI:10.1002/adhm.202101152
PMID:34342173
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8568633/
Abstract

Periodontitis is a chronic inflammatory, bacteria-triggered disorder affecting nearly half of American adults. Although some level of tissue regeneration is realized, its low success in complex cases demands superior strategies to amplify regenerative capacity. Herein, highly ordered scaffolds are engineered via Melt ElectroWriting (MEW), and the effects of strand spacing, as well as the presence of a nanostructured fluorinated calcium phosphate (F/CaP) coating on the adhesion/proliferation, and osteogenic differentiation of human-derived periodontal ligament stem cells, are investigated. Upon initial cell-scaffold interaction screening aimed at defining the most suitable design, MEW poly(ε-caprolactone) scaffolds with 500 µm strand spacing are chosen. Following an alkali treatment, scaffolds are immersed in a pre-established solution to allow for coating formation. The presence of a nanostructured F/CaP coating leads to a marked upregulation of osteogenic genes and attenuated bacterial growth. In vivo findings confirm that the F/CaP-coated scaffolds are biocompatible and lead to periodontal regeneration when implanted in a rat mandibular periodontal fenestration defect model. In aggregate, it is considered that this work can contribute to the development of personalized scaffolds capable of enabling tissue-specific differentiation of progenitor cells, and thus guide simultaneous and coordinated regeneration of soft and hard periodontal tissues, while providing antimicrobial protection.

摘要

牙周炎是一种慢性炎症性、细菌触发的疾病,影响近一半的美国成年人。尽管实现了一定程度的组织再生,但在复杂病例中成功率较低,需要更高级的策略来放大再生能力。本文通过熔融静电纺丝(MEW)工程设计高度有序的支架,并研究了链间距以及纳米结构氟化钙磷(F/CaP)涂层的存在对人牙周韧带干细胞的黏附/增殖和成骨分化的影响。在最初旨在确定最合适设计的细胞-支架相互作用筛选中,选择了具有 500 µm 链间距的 MEW 聚(ε-己内酯)支架。碱处理后,将支架浸入预先建立的溶液中以允许涂层形成。纳米结构 F/CaP 涂层的存在导致成骨基因的显著上调和细菌生长的减弱。体内研究结果证实,F/CaP 涂层支架具有生物相容性,并在植入大鼠下颌牙周开窗缺损模型后可促进牙周再生。总的来说,这项工作可以为开发能够实现祖细胞组织特异性分化的个性化支架做出贡献,从而指导牙周软组织和硬组织的同步和协调再生,同时提供抗菌保护。