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用于内固定骨折的生物可吸收高强度HA/PLLA复合材料

Bioresorbable High-Strength HA/PLLA Composites for Internal Fracture Fixation.

作者信息

Liu Jie, Sun Mingtao, He Yipeng, Yan Weixia, Yu Muhuo, Han Keqing

机构信息

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.

Analysis and Testing Center, Donghua University, Shanghai 201620, China.

出版信息

Molecules. 2025 Apr 23;30(9):1889. doi: 10.3390/molecules30091889.

Abstract

In modern surgery, the internal fixation plates fabricated from hydroxyapatite/poly(L-lactide) (HA/PLLA) composites encounter clinical limitations in fracture treatment due to their inadequate mechanical properties. In this work, pressure-induced flow (PIF) technique is employed to address this limitation. Under optimal processing conditions (140 °C and 250 MPa), the HA/PLLA composites exhibit an impressive flexural strength of 199.2 MPa, which is comparable to that of human cortical bone, the strongest bone tissue in the body. The tensile strength and the notched Izod impact strength are close to 84.2 MPa and 16.7 kJ/m, respectively. Meanwhile, the HA/PLLA composites develop multi-level stacked crystal layers during PIF processing, accompanied by increases in crystallinity (53.1%), crystal orientation (81.6%) and glass transition temperature (78.8 °C). After 2 months of in vitro degradation, the HA/PLLA composites processed by the PIF technique still maintain considerable flexural strength (135.3 MPa). The excellent mechanical properties of HA/PLLA composites processed by PIF technique expand their potential as an internal fixation plate.

摘要

在现代外科手术中,由羟基磷灰石/聚(L-丙交酯)(HA/PLLA)复合材料制成的内固定板,由于其机械性能不足,在骨折治疗中面临临床局限性。在这项工作中,采用压力诱导流动(PIF)技术来解决这一局限性。在最佳加工条件(140°C和250MPa)下,HA/PLLA复合材料表现出令人印象深刻的199.2MPa的弯曲强度,这与人体皮质骨(体内最强的骨组织)的弯曲强度相当。拉伸强度和缺口悬臂梁冲击强度分别接近84.2MPa和16.7kJ/m。同时,HA/PLLA复合材料在PIF加工过程中形成多级堆叠晶体层,伴随着结晶度(53.1%)、晶体取向(81.6%)和玻璃化转变温度(78.8°C)的增加。经过2个月的体外降解后,通过PIF技术加工的HA/PLLA复合材料仍保持相当大的弯曲强度(135.3MPa)。通过PIF技术加工的HA/PLLA复合材料的优异机械性能扩展了其作为内固定板的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ade/12073095/4ad003b84c98/molecules-30-01889-g001.jpg

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