4.8 Article

Mechanobiologically optimized Ti-35Nb-2Ta-3Zr improves load transduction and enhances bone remodeling in tilted dental implant therapy

期刊

BIOACTIVE MATERIALS
卷 16, 期 -, 页码 15-26

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.bioactmat.2022.03.005

关键词

Ti-35Nb-2Ta-3Zr; Tilted implant; Low elastic modulus; Bone remodeling; Mechanobiologically optimization

资金

  1. National Natural Science Foundation of China [52171075, 51831011, U2032124]
  2. Medical Engineering Cross Key Research Foundation of the Shanghai Jiao Tong University [YG2017ZD06]
  3. Science and Technology Commission of Shanghai Municipality [201409006300]
  4. Opening Project of Shanghai Key Laboratory of Orthopaedic Implant [KFKT2021001]

向作者/读者索取更多资源

This study developed a novel TNTZ implant with low elastic modulus, high strength, and favorable biocompatibility for tilted implantation. The results showed that the TNTZ implant exhibited better mechanobiological characteristics, including improved load transduction and increased bone area, in the tilted implantation model compared to the commonly used TC4 implant, especially in the lower stress upper 1/3 region of the pen-implant bone.
The tilted implant with immediate function is increasingly used in clinical dental therapy for edentulous and partially edentulous patients with excessive bone resorption and the anatomic limitations in the alveolar ridge. However, pen-implant cervical bone loss can be caused by the stress shielding effect. Herein, inspired by the concept of materiobiology, the mechanical characteristics of materials were considered along with bone biology for tilted implant design. In this study, a novel Ti-35Nb-2Ta-3Zr alloy (TNTZ) implant with low elastic modulus, high strength and favorable biocompatibility was developed. Then the human alveolar bone environment was mimicked in goat and finite element (FE) models to investigate the mechanical property and the related pen-implant bone remodeling of TNTZ compared to commonly used Ti-6Al-4V (TC4) in tilted implantation under loading condition. Next, a layer-by-layer quantitative correlation of the FE and X-ray Microscopy (XRM) analysis suggested that the TNTZ implant present better mechanobiological characteristics including improved load transduction and increased bone area in the tilted implantation model compared to TC4 implant, especially in the upper 1/3 region of pen-implant bone that is lower stress. Finally, combining the static and dynamic parameters of bone, it was further verified that TNTZ enhanced bone remodeling in lower stress upper 1/3 region. This study demonstrates that TNTZ is a mechanobiological optimized tilted implant material that enhances load transduction and bone remodeling.

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