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口腔细菌和机械疲劳能在体外降解氧化锆种植牙吗?

Can Oral Bacteria and Mechanical Fatigue Degrade Zirconia Dental Implants in Vitro?

作者信息

Siddiqui Danyal A, Sridhar Sathyanarayanan, Wang Frederick, Jacob Joel J, Rodrigues Danieli C

机构信息

Department of Bioengineering, The University of Texas at Dallas, 800 W. Campbell Road, Richardson, Texas 75080, United States.

Department of Biological Sciences, The University of Texas at Dallas, 800 W. Campbell Road, Richardson, Texas 75080, United States.

出版信息

ACS Biomater Sci Eng. 2019 Jun 10;5(6):2821-2833. doi: 10.1021/acsbiomaterials.9b00223. Epub 2019 May 29.

Abstract

Zirconia (ZrO) is an emerging alternative to titanium for dental implant systems due to its material properties including high mechanical strength and chemical stability. However, oral environmental factors such as bacterial adhesion and mechanical fatigue may trigger low-temperature degradation of ZrO, leading to reduced mechanical strength and potential implant fracture. Although failure modes of ZrO in orthopedic applications have been studied, they have yet to be thoroughly investigated in the context of dental implant systems. Thus, the goal of the present study was to assess the surface of ZrO dental implants for signs of degradation after exposure to oral bacteria and oral bacteria in combination with mechanical fatigue. ZrO dental implants were subjected to 30-day immersion in (i) early or (ii) late colonizing oral bacteria or (iii) were mechanically loaded for 2 × 10 cycles with oral bacteria in circulation. Optical microscopy, Raman microscopy, and X-ray photoelectron spectroscopy (XPS) were used to evaluate the surface morphology, phase composition, and chemical composition, respectively. Post-immersion, all implants exhibited minimal changes in surface features, and all loaded implants survived cyclic fatigue tests. All implants had <1% monoclinic phase at the collar, junction, and screw regions, excluding the screw threads, for which monoclinic phase was significantly higher but <10%. XPS revealed an increase in carbon- and nitrogen-based organic debris on the implants exposed to early colonizers as compared to those immersed in late colonizers or synergistically with mechanical loading. Within the limitations of the present study, ZrO is a suitable alternative material for dental implant systems based on its ability to resist both physical and chemical degradation imposed by oral bacteria and applied cyclic loads.

摘要

氧化锆(ZrO)因其具有高机械强度和化学稳定性等材料特性,正成为牙科种植系统中钛的一种新兴替代材料。然而,诸如细菌黏附与机械疲劳等口腔环境因素可能引发氧化锆的低温降解,导致机械强度降低以及种植体潜在断裂。尽管已对氧化锆在骨科应用中的失效模式进行了研究,但在牙科种植系统背景下尚未得到充分研究。因此,本研究的目的是评估氧化锆牙科种植体在暴露于口腔细菌以及口腔细菌与机械疲劳共同作用后的表面降解迹象。将氧化锆牙科种植体分别进行如下处理:(i)在早期或(ii)晚期定植口腔细菌中浸泡30天,或(iii)在有口腔细菌循环的情况下进行2×10⁶次循环的机械加载。分别使用光学显微镜、拉曼显微镜和X射线光电子能谱(XPS)来评估表面形态、相组成和化学成分。浸泡后,所有种植体的表面特征变化极小,并且所有加载的种植体均通过了循环疲劳测试。除螺纹处单斜相显著较高但<10%外,所有种植体在颈部、连接处和螺杆区域(不包括螺纹)的单斜相均<1%。XPS显示,与浸泡在晚期定植菌中的种植体或与机械加载协同作用的种植体相比,暴露于早期定植菌的种植体上基于碳和氮的有机碎片有所增加。在本研究的局限性范围内,基于氧化锆能够抵抗口腔细菌施加的物理和化学降解以及施加的循环载荷的能力,它是牙科种植系统的一种合适替代材料。

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