Yousefi Alireza, Sarrafzadeh-Rezaei Farshid, Asri-Rezaei Siamak, Farshid Amir-Abbas, Behfar Mehdi
Department of Surgery and Diagnostic Imaging, Faculty of Veterinary Medicine, Urmia University, Urmia, Iran.
Department of Internal Medicine and Clinical Pathology, Faculty of Veterinary Medicine, Urmia University, Urmia, Iran.
Vet Res Forum. 2018 Spring;9(2):105-111. doi: 10.30466/VRF.2018.29979. Epub 2018 Jun 15.
Chitosan bears numerous properties, such as biocompatibility, biodegradability and non-toxicity making it suitable for use in different biomedical fields. Zinc (Zn) is required for fibroblasts proliferation and collagen synthesis as essential elements of wound healing. Its nanoparticles are well known for their capability to enhance wound healing by cell adhesion and migration improvement through growth factors-mediated mechanisms. Poor blood supply and unique histological characteristics of tendon make its regeneration always slow. Also, adhesion formation between tendon and its surrounding tissues is another problem for neotendon to return to its normal structure and functional activities. In this study, a novel tubular scaffold of zinc oxide (ZnO) nanoparticles loaded chitosan has been fabricated for tendon repair. Experimental complete tenotomy of deep digital flexor tendon in a rabbit model was done and scaffolds were placed in the transected area after two ends suturing. After four and eight weeks, adhesion formation around the tendons and tissue reaction to the scaffolds were evaluated macroscopically. Inflammation, angiogenesis and collagen fibers arrangement were also analyzed in histopathological evaluations. After eight weeks, the scaffolds were absorbed completely, adhesions around the tendon were decreased and there was no sign of significant tissue reaction and/or infection in histopathological analyses. The reduced adhesion formation, improved gliding function and better histopathological characteristics suggest this scaffold application as a potential therapy in treatment of tendon acute injuries.
壳聚糖具有多种特性,如生物相容性、生物降解性和无毒性,使其适用于不同的生物医学领域。锌(Zn)作为伤口愈合的必需元素,对成纤维细胞增殖和胶原蛋白合成是必不可少的。其纳米颗粒以通过生长因子介导的机制改善细胞黏附和迁移来促进伤口愈合的能力而闻名。肌腱的血液供应不足和独特的组织学特征使其再生一直缓慢。此外,肌腱与其周围组织之间形成粘连是新肌腱恢复其正常结构和功能活动的另一个问题。在本研究中,制备了一种新型的负载氧化锌(ZnO)纳米颗粒的壳聚糖管状支架用于肌腱修复。在兔模型中对指深屈肌腱进行实验性完全切断,两端缝合后将支架置于横断区域。四周和八周后,宏观评估肌腱周围的粘连形成和组织对支架的反应。在组织病理学评估中还分析了炎症、血管生成和胶原纤维排列情况。八周后,支架完全吸收,肌腱周围的粘连减少,组织病理学分析中未出现明显的组织反应和/或感染迹象。粘连形成减少、滑动功能改善以及更好的组织病理学特征表明这种支架可作为治疗肌腱急性损伤的潜在疗法。