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The importance of mechanical and biological cues of tympanic membrane grafts to ensure optimal regeneration

材料科学 明胶 生物医学工程 生物相容性 生物材料 复合材料 纳米技术 化学 医学 生物化学 冶金
作者
Oriana Nobus,Laurens Parmentier,Pieter Livens,Pieter G.G. Muyshondt,Krystyna Szewcyk,Christel Jacobs,Dorien Verdoodt,Leen Pieters,Quinten Thijssen,Bo Van Durme,Anne Vral,Joris Dirckx,Vincent Van Rompaey,Sandra Van Vlierberghe
出处
期刊:Biomaterials advances [Elsevier BV]
卷期号:159: 213827-213827 被引量:3
标识
DOI:10.1016/j.bioadv.2024.213827
摘要

Chronic suppurative otitis media (CSOM) is often associated with permanent tympanic membrane (TM) perforation and conductive hearing loss. The current clinical gold standard, using autografts and allografts, suffers from several drawbacks. Artificial replacement materials can help to overcome these drawbacks. Therefore, scaffolds fabricated through digital light processing (DLP) were herein created to support TM regeneration. Various UV-curable printing inks, including gelatin methacryloyl (GelMA), gelatin-norbornene-norbornene (GelNBNB) (crosslinked with thiolated gelatin (GelSH)) and alkene-functionalized poly-ε-caprolactone (E-PCL) (crosslinked with pentaerythritol tetrakis(3-mercaptopropionate) (PETA4SH)) were optimized regarding photo-initiator (PI) and photo-absorber (PA) concentrations through viscosity characterization, photo-rheology and the establishment of working curves for DLP. Our material platform enabled the development of constructs with a range of mechanical properties (plateau storage modulus varying between 15 and 119 kPa). Excellent network connectivity for the GelNBNB and E-PCL constructs was demonstrated (gel fractions >95 %) whereas a post-crosslinking step was required for the GelMA constructs. All samples showed excellent biocompatibility (viability >93 % and metabolic activity >88 %). Finally, in vivo and ex vivo assessments, including histology, vibration and deformation responses measured through laser doppler vibrometry and digital image correlation respectively, were performed to investigate the effects of the scaffolds on the anatomical and physiological regeneration of acute TM perforations in rabbits. The data showed that the most efficient healing with the best functional quality was obtained when both mechanical (obtained with the PCL-based resin) and biological (obtained with the gelatin-based resins) material properties were taken into account.
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