骨组织工程中结构优化和微环境启发的纳米复合生物材料。

IF 6.3 1区 医学 Q1 DERMATOLOGY Burns & Trauma Pub Date : 2024-06-09 eCollection Date: 2024-01-01 DOI:10.1093/burnst/tkae036
Zheng Lv, Ying Ji, Guoliang Wen, Xiayi Liang, Kun Zhang, Wei Zhang
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引用次数: 0

摘要

临界大小的骨缺损是一项重大的临床挑战,因为它们无法自发再生,必须进行移植干预才能有效治疗。组织工程支架和再生医学的发展使骨组织工程成为治疗骨缺损的一种非常可行的方法。纳米复合生物材料具有优化的结构和模拟骨再生微环境的能力,其物理和生物特性有望应用于组织工程领域。与传统材料相比,这些生物材料具有明显的优势,可促进细胞粘附和增殖,保持良好的骨传导性和生物相容性,实现降解率的精确控制,并提高机械性能。重要的是,它们可以模拟骨组织的天然结构,包括对促进骨缺损修复和再生至关重要的特定微环境。本手稿全面综述了结构优化和微环境启发的纳米复合生物材料在骨组织工程中的最新研究进展和应用。这篇综述重点介绍了这些材料在骨修复和组织再生方面的特性和优势,总结了纳米复合生物材料在骨组织工程中应用的最新进展,并强调了该领域的挑战和未来前景。通过分析,本文旨在强调纳米复合生物材料在骨组织工程中的巨大潜力,为下一代再生医学生物材料的知情设计和战略规划做出贡献。
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Structure-optimized and microenvironment-inspired nanocomposite biomaterials in bone tissue engineering.

Critical-sized bone defects represent a significant clinical challenge due to their inability to undergo spontaneous regeneration, necessitating graft interventions for effective treatment. The development of tissue-engineered scaffolds and regenerative medicine has made bone tissue engineering a highly viable treatment for bone defects. The physical and biological properties of nanocomposite biomaterials, which have optimized structures and the ability to simulate the regenerative microenvironment of bone, are promising for application in the field of tissue engineering. These biomaterials offer distinct advantages over traditional materials by facilitating cellular adhesion and proliferation, maintaining excellent osteoconductivity and biocompatibility, enabling precise control of degradation rates, and enhancing mechanical properties. Importantly, they can simulate the natural structure of bone tissue, including the specific microenvironment, which is crucial for promoting the repair and regeneration of bone defects. This manuscript provides a comprehensive review of the recent research developments and applications of structure-optimized and microenvironment-inspired nanocomposite biomaterials in bone tissue engineering. This review focuses on the properties and advantages these materials offer for bone repair and tissue regeneration, summarizing the latest progress in the application of nanocomposite biomaterials for bone tissue engineering and highlighting the challenges and future perspectives in the field. Through this analysis, the paper aims to underscore the promising potential of nanocomposite biomaterials in bone tissue engineering, contributing to the informed design and strategic planning of next-generation biomaterials for regenerative medicine.

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来源期刊
Burns & Trauma
Burns & Trauma 医学-皮肤病学
CiteScore
8.40
自引率
9.40%
发文量
186
审稿时长
6 weeks
期刊介绍: The first open access journal in the field of burns and trauma injury in the Asia-Pacific region, Burns & Trauma publishes the latest developments in basic, clinical and translational research in the field. With a special focus on prevention, clinical treatment and basic research, the journal welcomes submissions in various aspects of biomaterials, tissue engineering, stem cells, critical care, immunobiology, skin transplantation, and the prevention and regeneration of burns and trauma injuries. With an expert Editorial Board and a team of dedicated scientific editors, the journal enjoys a large readership and is supported by Southwest Hospital, which covers authors'' article processing charges.
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