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口腔种植体表面特性:综述。

Surface characteristics of dental implants: A review.

机构信息

University Hospital Tübingen, Section Medical Materials Science & Technology, Osianderstr. 2-8, 72076 Tübingen, Germany.

University Hospital Tübingen, Section Medical Materials Science & Technology, Osianderstr. 2-8, 72076 Tübingen, Germany.

出版信息

Dent Mater. 2018 Jan;34(1):40-57. doi: 10.1016/j.dental.2017.09.007. Epub 2017 Oct 10.

Abstract

OBJECTIVES

During the last decades, several changes of paradigm have modified our view on how biomaterials' surface characteristics influence the bioresponse. After becoming aware of the role of a certain microroughness for improved cellular contact and osseointegration of dental titanium implants, the likewise important role of surface energy and wettability was increasingly strengthened. Very recently, synergistic effects of nanoscaled topographical features and hydrophilicity at the implant/bone interface have been reported.

METHODS

Questions arise about which surface roughness and wetting data are capable to predict the bioresponse and, ultimately, the clinical performance. Current methods and approaches applied for topographical, wetting and surface energetic analyses are highlighted. Current knowledge of possible mechanisms explaining the influence of roughness and hydrophilicity at the biological interface is presented.

RESULTS

Most marketed and experimental surfaces are based on commonly available additive or subtractive surface modifying methods such as blasting, etching or anodizing. Different height, spatial, hybrid and functional roughness parameters have been identified as possible candidates able to predict the outcome at hard and soft tissue interfaces. Likewise, hydrophilic implants have been proven to improve the initial blood contact, to support the wound healing and thereby accelerating the osseointegration.

SIGNIFICANCE

There is clear relevance for the influence of topographical and wetting characteristics on a macromolecular and cellular level at endosseous implant/biosystem interfaces. However, we are still far away from designing sophisticated implant surfaces with the best possible, selective functionality for each specific tissue or cavity interface. Firstly, because our knowledge of the respective surface related reactions is at best fragmentary. Secondly, because manufacturing of multi-scaled complex surfaces including distinct nanotopographies, wetting properties, and stable cleanliness is still a technical challenge and far away from being reproducibly transferred to implant surfaces.

摘要

目的

在过去的几十年中,范式的几次转变改变了我们对生物材料表面特性如何影响生物反应的看法。在意识到一定的微观粗糙度对改善牙科钛植入物的细胞接触和骨整合的作用之后,表面能和润湿性的同样重要作用也得到了越来越多的加强。最近,有报道称纳米级形貌特征和植入物/骨界面润湿性的协同作用。

方法

人们开始质疑哪些表面粗糙度和润湿性数据能够预测生物反应,最终预测临床效果。突出强调了当前用于形貌、润湿性和表面能分析的方法和方法。介绍了目前关于解释生物界面粗糙度和润湿性影响的可能机制的知识。

结果

大多数市售和实验表面都是基于常见的添加或减法表面改性方法,如喷砂、蚀刻或阳极氧化。已经确定了不同的高度、空间、混合和功能粗糙度参数作为可能的候选参数,能够预测硬组织和软组织界面的结果。同样,亲水植入物已被证明可以改善初始血液接触,支持伤口愈合,从而加速骨整合。

意义

在骨内植入物/生物系统界面的宏观和细胞水平上,表面形貌和润湿性特征的影响是明确的。然而,我们在设计具有最佳、选择性功能的复杂植入物表面方面还有很长的路要走,以适应每种特定的组织或腔界面。首先,因为我们对各自表面相关反应的知识最多只是零碎的。其次,因为制造包括独特纳米形貌、润湿性和稳定清洁度的多尺度复杂表面仍然是一个技术挑战,并且远未能够可重复地转移到植入物表面。

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