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载铁(II,III)氧化物的 3D 聚合物基支架作为骨组织工程再生植入物的背景、新颖性和近期进展研究:综述。

Investigation of background, novelty and recent advance of iron (II,III) oxide- loaded on 3D polymer based scaffolds as regenerative implant for bone tissue engineering: A review.

机构信息

Orthopedic Research Center, Department of Orthopedic Surgery, Mashhad University of Medical Science, Mashhad, Iran; Bone and Joint Research Laboratory, Ghaem Hospital, Mashhad University of Medical Science, P.O.Box 91388-13944, Mashhad, Iran.

Orthopedic Research Center, Department of Orthopedic Surgery, Mashhad University of Medical Science, Mashhad, Iran; Bone and Joint Research Laboratory, Ghaem Hospital, Mashhad University of Medical Science, P.O.Box 91388-13944, Mashhad, Iran.

出版信息

Int J Biol Macromol. 2024 Feb;259(Pt 1):128959. doi: 10.1016/j.ijbiomac.2023.128959. Epub 2023 Dec 23.

Abstract

Bone tissue engineering had crucial role in the bone defects regeneration, particularly when allograft and autograft procedures have limitations. In this regard, different types of scaffolds are used in tissue regeneration as fundamental tools. In recent years, magnetic scaffolds show promising applications in different biomedical applications (in vitro and in vivo). As superparamagnetic materials are widely considered to be among the most attractive biomaterials in tissue engineering, due to long-range stability and superior bioactivity, therefore, magnetic implants shows angiogenesis, osteoconduction, and osteoinduction features when they are combined with biomaterials. Furthermore, these scaffolds can be coupled with a magnetic field to enhance their regenerative potential. In addition, magnetic scaffolds can be composed of various combinations of magnetic biomaterials and polymers using different methods to improve the magnetic, biocompatibility, thermal, and mechanical properties of the scaffolds. This review article aims to explain the use of magnetic biomaterials such as iron (II,III) oxide (FeO and FeO) in detail. So it will cover the research background of magnetic scaffolds, the novelty of using these magnetic implants in tissue engineering, and provides a future perspective on regenerative implants.

摘要

骨组织工程在骨缺损再生中起着至关重要的作用,特别是在同种异体和自体移植物手术存在局限性的情况下。在这方面,不同类型的支架被用作组织再生的基本工具。近年来,磁性支架在不同的生物医学应用(体外和体内)中显示出有前景的应用。由于超顺磁材料被广泛认为是组织工程中最具吸引力的生物材料之一,因为其具有远程稳定性和卓越的生物活性,因此,磁性植入物与生物材料结合时具有血管生成、骨传导和骨诱导的特性。此外,这些支架可以与磁场结合使用以增强其再生潜力。此外,磁性支架可以由各种具有不同性能的磁性生物材料和聚合物组合而成,使用不同的方法来提高支架的磁性、生物相容性、热学和力学性能。本文旨在详细解释铁(II,III)氧化物(FeO 和 FeO)等磁性生物材料的用途。因此,它将涵盖磁性支架的研究背景、在组织工程中使用这些磁性植入物的新颖性,并对再生植入物提供未来展望。

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