From the microspheres to scaffolds: advances in polymer microsphere scaffolds for bone regeneration applications.

Biomaterials Translational Pub Date : 2024-09-28 eCollection Date: 2024-01-01 DOI:10.12336/biomatertransl.2024.03.005
Shuhao Yang, Haoming Wu, Chao Peng, Jian He, Zhengguang Pu, Zhidong Lin, Jun Wang, Yingkun Hu, Qiao Su, Bingnan Zhou, Xin Yong, Hai Lan, Ning Hu, Xulin Hu
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Abstract

The treatment and repair of bone tissue damage and loss due to infection, tumours, and trauma are major challenges in clinical practice. Artificial bone scaffolds offer a safer, simpler, and more feasible alternative to bone transplantation, serving to fill bone defects and promote bone tissue regeneration. Ideally, these scaffolds should possess osteoconductive, osteoinductive, and osseointegrative properties. However, the current first-generation implants, represented by titanium alloys, have shown poor bone-implant integration performance and cannot meet the requirements for bone tissue repair. This has led to increased research on second and third generation artificial bone scaffolds, which focus on loading bioactive molecules and cells. Polymer microspheres, known for their high specific surface areas at the micro- and nanoscale, exhibit excellent cell and drug delivery behaviours. Additionally, with their unique rigid structure, microsphere scaffolds can be constructed using methods such as thermal sintering, injection, and microsphere encapsulation. These scaffolds not only ensure the excellent cell drug loading performance of microspheres but also exhibit spatial modulation behaviour, aiding in bone repair within a three-dimensional network structure. This article provides a summary and discussion of the use of polymer microsphere scaffolds for bone repair, focusing on the mechanisms of bone tissue repair and the current status of clinical bone grafts, aimed at advancing research in bone repair.

从微球到支架:聚合物微球支架在骨再生应用方面的进展。
由于感染、肿瘤和创伤引起的骨组织损伤和丢失的治疗和修复是临床实践中的主要挑战。人工骨支架是一种比骨移植更安全、更简单、更可行的替代材料,可以填补骨缺损,促进骨组织再生。理想情况下,这些支架应该具有骨导电性、骨诱导性和骨整合性。但目前以钛合金为代表的第一代种植体骨与种植体的融合性能较差,不能满足骨组织修复的要求。这导致了第二代和第三代人工骨支架的研究增加,其重点是装载生物活性分子和细胞。聚合物微球以其在微纳米尺度上的高比表面积而闻名,表现出优异的细胞和药物传递行为。此外,微球支架具有独特的刚性结构,可以采用热烧结、注射、微球封装等方法构建。这些支架不仅保证了微球良好的细胞药物负载性能,而且还表现出空间调节行为,有助于在三维网络结构内进行骨修复。本文对聚合物微球支架在骨修复中的应用进行了综述和讨论,重点介绍了骨组织修复的机制和临床骨移植的现状,旨在推动骨修复的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.70
自引率
0.00%
发文量
9
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