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为改善机械转导和临床结果而对骨-植入界面进行的再工程化。

Reengineering Bone-Implant Interfaces for Improved Mechanotransduction and Clinical Outcomes.

机构信息

Center for MicroElectroMechanical Systems (CMEMS-UMinho), University of Minho, Campus de Azurém, Guimarães, Portugal.

International Iberian Nanotechnology Laboratory (INL), Braga, Portugal.

出版信息

Stem Cell Rev Rep. 2020 Dec;16(6):1121-1138. doi: 10.1007/s12015-020-10022-9.

Abstract

The number of patients undergoing joint replacement surgery has progressively increased worldwide due to world population ageing. In the Unites States, for example, the prevalence of hip and knee replacements has increased more than 6 and 10 times, respectively, since 1980. Despite advances in orthopaedic implant research, including the development of novel implantable biomaterials, failures are still observed due to inadequate biomechanical compliance at the bone-implant interface. This comprises static and dynamic mechanical mismatch between the bone and the implant surface. The importance and robustness of biomechanical cues for controlling osteogenic differentiation of mesenchymal stem cells (MSC) have been highlighted in recent studies. However, in the context of bone regenerative medicine, it remains elusive how mechanobiological signals controlling MSC osteogenic differentiation dynamics are modulated in their interaction with the bone and with implants. In this review, we highlight recent technological advances aiming to improve host bone-implant interactions based on the osteogenic and mechanoresponsive potential of MSC, in the context of joint replacement surgery. First, we discuss the extracellular and intracellular mechanical forces underlying proper receptivity and stimulation of physiological MSC differentiation and linked osteogenic activity. Second, we provide a critical overview on how this knowledge can be integrated towards the development of biomaterials for improved bone-implant interfaces. Third, we discuss cross-disciplinarily which contributes to the next generation design of novel pro-active orthopaedic implants and their implantation success. Graphical Abstract.

摘要

由于世界人口老龄化,全球接受关节置换手术的患者人数不断增加。例如,在美国,自 1980 年以来,髋关节和膝关节置换的患病率分别增加了超过 6 倍和 10 倍。尽管在骨科植入物研究方面取得了进展,包括新型可植入生物材料的开发,但由于骨-植入物界面的生物力学适应性不足,仍会出现失败。这包括骨骼和植入物表面之间的静态和动态机械不匹配。在最近的研究中,生物力学线索对控制间充质干细胞(MSC)成骨分化的重要性和稳健性得到了强调。然而,在骨再生医学的背景下,控制 MSC 成骨分化动力学的机械生物学信号如何在与骨骼和植入物相互作用时被调节仍然难以捉摸。在这篇综述中,我们强调了最近的技术进展,这些进展旨在基于 MSC 的成骨和成机械响应潜力,改善关节置换手术中宿主骨-植入物的相互作用。首先,我们讨论了细胞外和细胞内机械力,这些力是 MSC 适当接受和刺激生理分化以及相关成骨活性的基础。其次,我们提供了一个批判性的概述,说明如何将这些知识整合到改善骨-植入界面的生物材料的开发中。第三,我们讨论了跨学科的知识,这些知识有助于下一代新型主动骨科植入物的设计及其植入的成功。图表摘要。

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