Biomineralized tetramethylpyrazine-loaded PCL/Gelatin nanofibrous membrane promotes vascularization and bone regeneration of rat cranium defects

Author:

Wu Xiaoyu1,Ni Su1,Dai Ting1,Li Jingyan1,Shao Fang1,Liu Chun1,Wang Jiafeng1,Fan Shijie1,Tan Yadong1,Zhang Linxiang1,Jiang Qiting2,Zhao Hongbin1

Affiliation:

1. The Affiliated Changzhou Second People's Hospital of Nanjing Medical University

2. Orthopedic Center of Nanjing Jiangbei Hospital

Abstract

Abstract Conventional electrospinning produces nanofibers with smooth surfaces that limit biomineralization ability. To overcome this disadvantage, we fabricated a tetramethylpyrazine (TMP)-loaded matrix-mimicking biomineralization in PCL/Gelatin composite electrospun membranes with bubble-shaped nanofibrous structures. PCL/Gelatin membranes (PG), PCL/Gelatin membranes containing biomineralized hydroxyapatite (HA) (PGH), and PCL/Gelatin membranes containing biomineralized HA and loaded TMP (PGHT) were tested. In vitro results indicated that the bubble-shaped nanofibrous surface increased the surface roughness of the nanofibers and promoted mineralization. Furthermore, sustained-release TMP had an excellent drug release efficiency. All membranes displayed favorable cell compatibility and increased cell attachment and viability. In PGHT membranes, the osteogenic and vascularized gene expression of BMSCs and human vascular endothelial cells was significantly upregulated compared with that in other groups, indicating the PGHT membranes exhibited an effective vascularization role. Subsequently, the membranes were implanted in a rat cranium defect model for 4 and 8 weeks. Micro-CT and histological analysis results showed that the PGHT membranes had better bone regenerative patterns. Additionally, the levels of CD31 and VEGF significantly increased in the PGHT membrane compared with those in other membranes. Thus, PGHT membranes could accelerate the repair of cranium defects in vivo via HA and TMP synergistic effects.

Publisher

Research Square Platform LLC

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