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

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          Abstract

          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, peri-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 peri-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 peri-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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          Highlights

          • The mechanical properties and deformation mechanisms of Ti–35Nb–2Ta–3Zr alloys were studied.

          • The cell biocompatibility , a layer-by-layer correlation of the finite element and X-ray Microscopy analysis were evaluated.

          • Ti–35Nb–2Ta–3Zr implant improves load transduction and enhances bone remodeling in tilted implantation models.

          • Mechanobiologically optimized Ti–35Nb–2Ta–3Zr alloy meets the clinical application requirements of tilted implant therapy.

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          Most cited references66

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          Ti based biomaterials, the ultimate choice for orthopaedic implants – A review

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            Review on titanium and titanium based alloys as biomaterials for orthopaedic applications

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              Development of new metallic alloys for biomedical applications.

              New low modulus β-type titanium alloys for biomedical applications are still currently being developed. Strong and enduring β-type titanium alloy with a low Young's modulus are being investigated. A low modulus has been proved to be effective in inhibiting bone atrophy, leading to good bone remodeling in a bone fracture model in the rabbit tibia. Very recently β-type titanium alloys with a self-tunable modulus have been proposed for the construction of removable implants. Nickel-free low modulus β-type titanium alloys showing shape memory and super elastic behavior are also currently being developed. Nickel-free stainless steel and cobalt-chromium alloys for biomedical applications are receiving attention as well. Newly developed zirconium-based alloys for biomedical applications are proving very interesting. Magnesium-based or iron-based biodegradable biomaterials are under development. Further, tantalum, and niobium and its alloys are being investigated for biomedical applications. The development of new metallic alloys for biomedical applications is described in this paper.
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                Author and article information

                Contributors
                Journal
                Bioact Mater
                Bioact Mater
                Bioactive Materials
                KeAi Publishing
                2452-199X
                16 March 2022
                October 2022
                16 March 2022
                : 16
                : 15-26
                Affiliations
                [a ]Department of Stomatology, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai, 200127, China
                [b ]State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Materials Genome Initiative Centre, Shanghai Jiao Tong University, Shanghai, 200240, China
                [c ]National Engineering Research Center of Light Alloy Net Forming, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai, 200240, China
                Author notes
                []Corresponding author. lueryi222@ 123456outlook.com
                [∗∗ ]Corresponding author. wang_liqiang@ 123456sjtu.edu.cn
                [∗∗∗ ]Corresponding author. xqzeng@ 123456sjtu.edu.cn
                [1]

                Equal contributors.

                Article
                S2452-199X(22)00120-7
                10.1016/j.bioactmat.2022.03.005
                8958422
                35386333
                d846abd8-3d9f-446b-b43c-de149f10e2c4
                © 2022 The Authors

                This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 16 December 2021
                : 4 March 2022
                : 4 March 2022
                Categories
                Article

                ti-35nb–2ta–3zr,tilted implant,low elastic modulus,bone remodeling,mechanobiologically optimization

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