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受果冻启发的可注射引导组织再生策略,具有形状自动匹配和双光定义的抗菌/成骨模式转换特性。

Jelly-Inspired Injectable Guided Tissue Regeneration Strategy with Shape Auto-Matched and Dual-Light-Defined Antibacterial/Osteogenic Pattern Switch Properties.

机构信息

Affiliated Stomatological Hospital, Nanchang University, Nanchang, Jiangxi 330006, P. R. China.

National Engineering Research Center for Bioengineering Drugs and the Technologies, Institute of Translational Medicine, Nanchang University, Nanchang, Jiangxi 330088, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 9;12(49):54497-54506. doi: 10.1021/acsami.0c18070. Epub 2020 Nov 23.

Abstract

Periodontitis is a bacterial infectious disease leading to the loss of periodontal supporting tissues and teeth. The current guided tissue regeneration (GTR) membranes for periodontitis treatments cannot effectively promote tissue regeneration for the limited antibacterial properties and the excessively fast degradation rate. Besides, they need extra tailoring according to variform defects before implantation, leading to imprecise match. This study proposed an injectable sodium alginate hydrogel composite (CTP-SA) doped with cubic cuprous oxide (CuO) and polydopamine-coated titanium dioxide (TiO@PDA) nanoparticles for GTR. Inspired by the gelation process of the jelly, the phase change (liquid to solid) of CTP-SA after injection could automatch variform bone defects. Meanwhile, CTP-SA exhibited broad-spectrum antibacterial capabilities under blue light (BL) irradiation, including (one of the most abundant bacteria in oral biofilms). Moreover, the reactive oxygen species released under BL excitation could accelerate the oxidation of Cu to Cu. Afterward, osteogenesis could be enhanced through two factors simultaneously: the stimulation of newly formed Cu and the photothermal effect of CTP-SA under near-infrared (NIR) irradiation. Collectively, through this dual-light (blue and NIR) noninvasive regulation, CTP-SA could switch antibacterial and osteogenic modes to address requirements of patients at different healing stages, thereby realizing the customized GTR procedures.

摘要

牙周炎是一种细菌性传染病,可导致牙周支持组织和牙齿丧失。目前用于牙周炎治疗的引导组织再生(GTR)膜由于抗菌性能有限和降解速度过快,不能有效促进组织再生。此外,在植入前需要根据各种不同的缺损进行额外的定制,导致匹配不精确。本研究提出了一种可注射的海藻酸钠水凝胶复合材料(CTP-SA),其中掺杂了立方氧化亚铜(CuO)和聚多巴胺包覆的二氧化钛(TiO@PDA)纳米粒子,用于 GTR。受果冻胶凝过程的启发,CTP-SA 在注射后的相转变(液体到固体)可以自动匹配各种不同形状的骨缺损。同时,CTP-SA 在蓝光(BL)照射下表现出广谱抗菌能力,包括(口腔生物膜中最丰富的细菌之一)。此外,BL 激发下释放的活性氧可以加速 Cu 氧化为 Cu+。之后,通过两种因素同时作用可以增强成骨作用:新形成的 Cu 的刺激和 CTP-SA 在近红外(NIR)照射下的光热效应。总的来说,通过双光(蓝和近红外)非侵入性调节,CTP-SA 可以切换抗菌和促骨生成模式,以满足不同愈合阶段患者的需求,从而实现定制的 GTR 程序。

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