Sri Lanka Institute of Nanotechnology (SLINTEC) , Nanotechnology and Science Park , Mahenwatte, Pitipana, Homagama 10200 , Sri Lanka.
Department of Veterinary Pathobiology, Faculty of Veterinary Medicine , University of Peradeniya , Peradeniya 20400 , Sri Lanka.
ACS Appl Mater Interfaces. 2018 Oct 10;10(40):33913-33922. doi: 10.1021/acsami.8b11013. Epub 2018 Oct 1.
Halloysite nanotube (HNT)-reinforced alginate-based nanofibrous scaffolds were successfully fabricated by electrospinning to mimic the natural extracellular matrix (ECM) structure which is beneficial for tissue regeneration. An antiseptic drug, cephalexin (CEF)-loaded HNT, was incorporated into the alginate-based matrix to obtain sustained antimicrobial protection and robust mechanical properties, the key criteria for tissue engineering applications. Electron microscopic imaging and drug release studies revealed that CEF had penetrated into the lumen space of the HNT and also deposited on the outer walls, with a total loading capacity of 30 wt %. Moreover, the diameter of alginate-based nanofibers of the scaffolds ranged from 40 to 522 nm with well-aligned HNTs, resulting in superior mechanical properties. For instance, the addition of 5% (w/w) HNT improved the tensile strength (σ) and elastic modulus by 3-fold and 2-fold, respectively, compared to those of the alginate-based scaffolds without HNT. The fabricated scaffolds exhibited remarkable antimicrobial properties against both Gram-negative and Gram-positive bacteria, and the cytotoxicity studies confirmed the nontoxicity of the fabricated scaffolds. Drug release kinetics showed that CEF inside HNTs diffuses within 24 h and that the diffusion of the drug is delayed by 7 days once the CEF-loaded HNTs are incorporated into the alginate-based nanofibers. These fabricated alginate-based electrospun scaffolds with enhanced mechanical properties and sustained antimicrobial protection hold great potential to be used as artificial ECM scaffolds for tissue engineering applications.
通过静电纺丝成功制备了海泡石纳米管(HNT)增强的海藻酸钠基纳米纤维支架,以模拟对组织再生有益的天然细胞外基质(ECM)结构。将一种防腐剂头孢氨苄(CEF)负载于 HNT 中,以获得持续的抗菌保护和坚固的机械性能,这是组织工程应用的关键标准。电子显微镜成像和药物释放研究表明,CEF 已经渗透到 HNT 的内腔空间,并沉积在其外壁上,总载药量为 30wt%。此外,支架中海藻酸钠基纳米纤维的直径范围为 40 至 522nm,其中 HNT 排列整齐,从而具有卓越的机械性能。例如,与不含 HNT 的海藻酸钠基支架相比,添加 5%(w/w)的 HNT 可使拉伸强度(σ)和弹性模量分别提高 3 倍和 2 倍。所制备的支架对革兰氏阴性菌和革兰氏阳性菌均表现出显著的抗菌性能,细胞毒性研究证实了所制备支架的非毒性。药物释放动力学表明,HNTs 内的 CEF 在 24 小时内扩散,而一旦将负载 CEF 的 HNTs 掺入海藻酸钠基纳米纤维中,药物的扩散将延迟 7 天。这些机械性能增强且具有持续抗菌保护的海藻酸钠基静电纺丝支架具有很大的潜力,可作为组织工程应用的人工 ECM 支架。