Temporal Control in Shell-core Structured Nanofilm for Tracheal Cartilage Regeneration: Synergistic Optimization of Anti-Inflammation and Chondrogenesis

IF 5.6 1区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Regenerative Biomaterials Pub Date : 2024-04-11 DOI:10.1093/rb/rbae040
Wen Zhao, Fanglan Xu, Yumei Shen, Qifeng Ding, Yifei Wang, Leilei Liang, Wufei Dai, Yongbing Chen
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Abstract

Cartilage tissue engineering offers hope for tracheal cartilage defect repair. Establishing an anti-inflammatory microenvironment stands as a prerequisite for successful tracheal cartilage restoration, especially in immunocompetent animals. Hence, scaffolds inducing an anti-inflammatory response before chondrogenesis are crucial for effectively addressing tracheal cartilage defects. Herein, we develop a shell-core structured PLGA@ICA-GT@KGN nanofilm using poly(lactic-co-glycolic acid) (PLGA) and icariin (ICA, an anti-inflammatory drug) as the shell layer and gelatin (GT) and Kartogenin (KGN, a chondrogenic factor) as the core via coaxial electrospinning technology. The resultant PLGA@ICA-GT@KGN nanofilm exhibited a characteristic fibrous structure and demonstrated high biocompatibility. Notably, it showcased sustained release characteristics, releasing ICA within the initial 0 to 15 days and gradually releasing KGN between 11 to 29 days. Subsequent in vitro analysis revealed the potent anti-inflammatory capabilities of the released ICA from the shell layer, while the KGN released from the core layer effectively induced chondrogenic differentiation of bone marrow stem cells (BMSCs). Following this, the synthesized PLGA@ICA-GT@KGN nanofilms were loaded with BMSCs and stacked layer by layer, adhering to a "sandwich model" to form a composite sandwich construct. This construct was then utilized to repair circular tracheal defects in a rabbit model. The sequential release of ICA and KGN facilitated by the PLGA@ICA-GT@KGN nanofilm established an anti-inflammatory microenvironment before initiating chondrogenic induction, leading to effective tracheal cartilage restoration. This study underscores the significance of shell-core structured nanofilms in temporally regulating anti-inflammation and chondrogenesis. This approach offers a novel perspective for addressing tracheal cartilage defects, potentially revolutionizing their treatment methodologies.
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用于气管软骨再生的壳核结构纳米薄膜的时间控制:抗炎与软骨生成的协同优化
软骨组织工程为气管软骨缺损修复带来了希望。建立抗炎微环境是成功修复气管软骨的先决条件,尤其是在免疫功能正常的动物中。因此,在软骨生成之前诱导抗炎反应的支架对于有效解决气管软骨缺损问题至关重要。在此,我们通过同轴电纺技术,以聚乳甘酸(PLGA)和冰片霉素(ICA,一种抗炎药物)为壳层,明胶(GT)和Kartogenin(KGN,一种软骨生成因子)为核心,开发了一种壳核结构的PLGA@ICA-GT@KGN纳米薄膜。最终制成的 PLGA@ICA-GT@KGN 纳米薄膜呈现出特有的纤维状结构,具有很高的生物相容性。值得注意的是,它具有持续释放的特性,在最初的 0 至 15 天内释放出 ICA,并在 11 至 29 天内逐渐释放出 KGN。随后的体外分析表明,从外壳层释放的伊卡具有强大的抗炎能力,而从核心层释放的 KGN 则能有效诱导骨髓干细胞(BMSCs)的软骨分化。随后,将合成的 PLGA@ICA-GT@KGN 纳米薄膜装入骨髓干细胞,逐层堆叠,粘附成 "三明治模型",形成复合三明治结构。然后利用这种构建物在兔子模型中修复环形气管缺损。PLGA@ICA-GT@KGN纳米薄膜促进了ICA和KGN的依次释放,在启动软骨诱导之前建立了抗炎微环境,从而有效地修复了气管软骨。这项研究强调了壳核结构纳米薄膜在时间上调节抗炎和软骨生成的重要性。这种方法为解决气管软骨缺损问题提供了一个新的视角,有可能彻底改变气管软骨缺损的治疗方法。
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来源期刊
Regenerative Biomaterials
Regenerative Biomaterials Materials Science-Biomaterials
CiteScore
7.90
自引率
16.40%
发文量
92
审稿时长
10 weeks
期刊介绍: Regenerative Biomaterials is an international, interdisciplinary, peer-reviewed journal publishing the latest advances in biomaterials and regenerative medicine. The journal provides a forum for the publication of original research papers, reviews, clinical case reports, and commentaries on the topics relevant to the development of advanced regenerative biomaterials concerning novel regenerative technologies and therapeutic approaches for the regeneration and repair of damaged tissues and organs. The interactions of biomaterials with cells and tissue, especially with stem cells, will be of particular focus.
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