Polycaprolactone–MXene Nanofibrous Scaffolds for Tissue Engineering

材料科学 聚己内酯 MXenes公司 静电纺丝 纳米纤维 组织工程 复合数 聚合物 生物相容性 纳米技术 多孔性 复合材料 生物医学工程 化学 医学 生物化学 冶金
作者
Kateryna Diedkova,A.D. Pogrebnjak,Sergiy Kyrylenko,Kateryna Smyrnova,Vladimir Buranich,P. Horodek,P. Żukowski,Tomasz N. Kołtunowicz,Piotr Gałaszkiewicz,Kristina Makashina,Vitalii Bondariev,Martin Sahul,Mária Čaplovičová,Yevheniia Husak,Wojciech Simka,Viktoriia Korniienko,Agnieszka Stolarczyk,Agata Blacha‐Grzechnik,Vitalii Balitskyi,Veronika Zahorodna,Ivan Baginskiy,Una Riekstiņa,Oleksiy Gogotsi,Yury Gogotsi,Мaksym Pogorielov
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
被引量:21
标识
DOI:10.1021/acsami.2c22780
摘要

New conductive materials for tissue engineering are needed for the development of regenerative strategies for nervous, muscular, and heart tissues. Polycaprolactone (PCL) is used to obtain biocompatible and biodegradable nanofiber scaffolds by electrospinning. MXenes, a large class of biocompatible 2D nanomaterials, can make polymer scaffolds conductive and hydrophilic. However, an understanding of how their physical properties affect potential biomedical applications is still lacking. We immobilized Ti3C2Tx MXene in several layers on the electrospun PCL membranes and used positron annihilation analysis combined with other techniques to elucidate the defect structure and porosity of nanofiber scaffolds. The polymer base was characterized by the presence of nanopores. The MXene surface layers had abundant vacancies at temperatures of 305-355 K, and a voltage resonance at 8 × 104 Hz with the relaxation time of 6.5 × 106 s was found in the 20-355 K temperature interval. The appearance of a long-lived component of the positron lifetime was observed, which was dependent on the annealing temperature. The study of conductivity of the composite scaffolds in a wide temperature range, including its inductive and capacity components, showed the possibility of the use of MXene-coated PCL membranes as conductive biomaterials. The electronic structure of MXene and the defects formed in its layers were correlated with the biological properties of the scaffolds in vitro and in bacterial adhesion tests. Double and triple MXene coatings formed an appropriate environment for cell attachment and proliferation with mild antibacterial effects. A combination of structural, chemical, electrical, and biological properties of the PCL-MXene composite demonstrated its advantage over the existing conductive scaffolds for tissue engineering.
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