胶原蛋白3D打印静电纺丝仿生贴片用于腹壁缺损再生

IF 21.3 1区 工程技术 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yinghua Tao, Peiyu Luo, Fengya Jing, Tao Liu, Xin Tan, Zhiyang Lyu, Katrien VeerleBernaerts, Tianzhu Zhang, Ruipeng Jia
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引用次数: 0

摘要

由于感染风险高、生物相容性差、合成材料机械强度不足等原因,修复腹壁缺损面临着巨大的挑战。为了克服这些限制,我们通过集成3D打印和静电纺丝技术开发了一种生物启发的多功能3DPF贴片。该贴片的核心材料为4arm-PLGA-GPO (4A-GPO),由GPO肽序列与4arm-PLGA(4A)偶联合成,显著提高了生物活性和力学性能。此外,该贴片包被碱性成纤维细胞生长因子(bFGF)以刺激细胞增殖和迁移,而抗菌层由大黄素(EMO)和妥布霉素组成,以防止感染。体内研究表明,3DPF贴片通过减少纤维化和粘连,促进血管生成和胶原沉积,调节免疫反应,有效加速组织修复。转录组学分析显示,该贴片下调IL-17介导的炎症途径,同时上调细胞粘附分子相关途径,协同促进微环境重建。此外,分子对接研究表明,该贴片与VEGF和COL3等关键分子相互作用,促进血管生成和基质重塑。总之,这种仿生贴片由具有明确化学成分的生物活性材料组成,集机械支持、免疫调节和抗菌保护于一体。通过提供腹壁修复的综合解决方案,它在复杂的组织工程应用中具有重要的临床转化潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Collagen-Inspired 3D Printing Electrospinning Biomimetic Patch for Abdominal Wall Defect Regeneration

Repairing abdominal wall defects presents significant challenges, due to the high infection risk, poor biocompatibility, and insufficient mechanical strength associated with synthetic materials. To overcome these limitations, we developed a bioinspired multifunctional 3DPF patch by integrating 3D printing and electrospinning technologies. The core material of the patch is 4arm-PLGA-GPO (4A-GPO), synthesized by conjugating the Gly-Pro-Hyp (GPO) peptide sequence with 4arm-PLGA(4A), which significantly enhances bioactivity and mechanical properties. Additionally, the patch encapsulates basic fibroblast growth factor (bFGF) to stimulate cell proliferation and migration, while an antibacterial layer composes of emodin (EMO) and tobramycin to prevent infection. In vivo studies demonstrate the 3DPF patch effectively accelerates tissue repair by reducing fibrosis and adhesions, promoting angiogenesis and collagen deposition, and modulating the immune response. Transcriptomic analysis reveals that the patch downregulates IL-17 mediated inflammatory pathways while upregulating cell adhesion molecule-related pathways, synergistically facilitating microenvironment reconstruction. Furthermore, molecular docking studies suggest the patch interacts with key molecules such as VEGF and COL3, enhancing angiogenesis and matrix remodeling. In summary, this biomimetic patch, composed of bioactive materials with well-defined chemical compositions, integrates mechanical support, immune modulation, and antibacterial protection. by offering a comprehensive solution for abdominal wall repair, it holds significant potential for clinical translation in complex tissue engineering applications.

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来源期刊
CiteScore
18.70
自引率
11.20%
发文量
109
期刊介绍: Advanced Fiber Materials is a hybrid, peer-reviewed, international and interdisciplinary research journal which aims to publish the most important papers in fibers and fiber-related devices as well as their applications.Indexed by SCIE, EI, Scopus et al. Publishing on fiber or fiber-related materials, technology, engineering and application.
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