Department of Complex Tissue Regeneration, MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, Maastricht 6229 ER, the Netherlands.
Interuniversity National Consortiums of Materials Science and Technology (INSTM), 50121 Firenze, Italy; Department of Civil and Industrial Engineering, University of Pisa, 56122 Pisa, Italy.
Carbohydr Polym. 2023 Jun 15;310:120732. doi: 10.1016/j.carbpol.2023.120732. Epub 2023 Feb 23.
The tympanic membrane (TM), is a thin tissue lying at the intersection of the outer and the middle ear. TM perforations caused by traumas and infections often result in a conductive hearing loss. Tissue engineering has emerged as a promising approach for reconstructing the damaged TM by replicating the native material characteristics. In this regard, chitin nanofibrils (CN), a polysaccharide-derived nanomaterial, is known to exhibit excellent biocompatibility, immunomodulation and antimicrobial activity, thereby imparting essential qualities for an optimal TM regeneration. This work investigates the application of CN as a nanofiller for poly(ethylene oxide terephthalate)/poly(butylene terephthalate) (PEOT/PBT) copolymer to manufacture clinically suitable TM scaffolds using electrospinning and fused deposition modelling. The inclusion of CN within the PEOT/PBT matrix showed a three-fold reduction in the corresponding electrospun fiber diameters and demonstrated a significant improvement in the mechanical properties required for TM repair. Furthermore, in vitro biodegradation assay highlighted a favorable influence of CN in accelerating the scaffold degradation over a period of one year. Finally, the oto- and cytocompatibility response of the nanocomposite substrates corroborated their biological relevance for the reconstruction of perforated eardrums.
鼓膜(TM)是一种位于外耳和中耳交界处的薄组织。创伤和感染引起的 TM 穿孔常导致传导性听力损失。组织工程学作为一种有前途的方法,通过复制天然材料特性来重建受损的 TM。在这方面,壳聚糖纳米纤维(CN)是一种多糖衍生的纳米材料,具有优异的生物相容性、免疫调节和抗菌活性,从而为 TM 再生提供了必要的品质。本工作研究了将 CN 用作聚(对苯二甲酸乙二酯)/聚(对苯二甲酸丁二酯)(PEOT/PBT)共聚物的纳米填料,以使用静电纺丝和熔融沉积建模制造临床适用的 TM 支架。CN 包含在 PEOT/PBT 基质中,使相应的电纺纤维直径减小了三倍,并表现出 TM 修复所需的机械性能的显著提高。此外,体外生物降解试验强调了 CN 对加速支架在一年时间内降解的有利影响。最后,纳米复合材料基质的听力和细胞相容性反应证实了它们在重建穿孔鼓膜方面的生物学相关性。