Nanofiber scaffolds have gained significant attention in the field of bone tissue engineering. Electrospinning, a straightforward and efficient technique for producing nanofibers, has been extensively researched. When used in bone tissue engineering scaffolds, electrospun nanofibers with suitable surface properties promote new bone tissue growth and enhance cell adhesion. Recent advancements in electrospinning technology have provided innovative approaches for scaffold fabrication in bone tissue engineering. This review comprehensively examines the utilization of electrospun nanofibers in bone tissue engineering scaffolds and evaluates the relevant literature. The review begins by presenting the fundamental principles and methodologies of electrospinning. It then discusses various materials used in the production of electrospun nanofiber scaffolds for bone tissue engineering, including natural and synthetic polymers, as well as certain inorganic materials. The challenges associated with these materials are also described. The review focuses on novel electrospinning techniques for scaffold construction in bone tissue engineering, such as multilayer nanofibers, multifluid electrospinning, and the integration of electrospinning with other methods. Recent advancements in electrospinning technology have enabled the fabrication of precisely aligned nanofiber scaffolds with nanoscale architectures. These innovative methods also facilitate the fabrication of biomimetic structures, wherein bioactive substances can be incorporated and released in a controlled manner for drug delivery purposes. Moreover, they address issues encountered with traditional electrospun nanofibers, such as mechanical characteristics and biocompatibility. Consequently, the development and implementation of novel electrospinning technologies have revolutionized scaffold fabrication for bone tissue engineering.
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Department of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del PortilloDepartment of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del Portillo
Di Martino A.
Liverani L.
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CIR - Tissue Engineering Laboratory, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del PortilloDepartment of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del Portillo
Liverani L.
Rainer A.
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CIR - Tissue Engineering Laboratory, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del PortilloDepartment of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del Portillo
Rainer A.
Salvatore G.
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Department of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del PortilloDepartment of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del Portillo
Salvatore G.
Trombetta M.
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CIR - Tissue Engineering Laboratory, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del PortilloDepartment of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del Portillo
Trombetta M.
Denaro V.
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Department of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del PortilloDepartment of Orthopaedics and Trauma Surgery, University Campus Bio-Medico of Rome, 00128 Rome, Via A ́ lvaro del Portillo
机构:
Virginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Blacksburg, VA 24061 USAVirginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Blacksburg, VA 24061 USA
Andric, Tea
Wright, Lee D.
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Virginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Blacksburg, VA 24061 USAVirginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Blacksburg, VA 24061 USA
Wright, Lee D.
Freeman, Joseph W.
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Virginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Blacksburg, VA 24061 USAVirginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Blacksburg, VA 24061 USA