粪肠球菌
离体
纳米纤维
根管
体内
效力
体外
材料科学
牙髓治疗
抗菌剂
生物相容性
生物医学工程
微生物学
牙科
医学
化学
纳米技术
细菌
生物
金黄色葡萄球菌
生物技术
生物化学
遗传学
冶金
作者
Konstantina Chachlioutaki,Christina Karavasili,Elisavet Adamoudi,Anestis Tsitsos,Vangelis Εconomou,Charis Beltes,Nikolaos Bouropoulos,Orestis L. Katsamenis,Regan Doherty,Athina Bakopoulou,Dimitrios G. Fatouros
标识
DOI:10.1021/acsbiomaterials.2c00150
摘要
Treatment failure of endodontic infections and their concurrent inflammations is commonly associated with microbial persistence and reinfection, also stemming from the anatomical restrictions of the root canal system. Aiming to address the shortcomings of current treatment options, a fast-disintegrating nanofibrous film was developed for the intracanal coadministration of an antimicrobial (ZnO nanoparticles) and an anti-inflammatory (ketoprofen) agent. The electrospun films were fabricated based on polymers that dissolve rapidly to constitute the actives readily available at the site of action, aiming to eliminate both microbial infection and inflammation. The anti-inflammatory potency of the nanofiber films was assessed in an in vitro model of lipopolysaccharide (LPS)-stimulated RAW 264.7 cells after confirming their biocompatibility in the same cell line. The nanofiber films were found effective against Enterococcus faecalis, one of the most prominent pathogens inside the root canal space, both in vitro and ex vivo using a human tooth model experimentally infected with E. faecalis. The physical properties and antibacterial and anti-inflammatory potency of the proposed electrospun nanofiber films constitute a promising therapeutic module in the endodontic therapy of nonvital infected teeth. All manuscripts must be accompanied by an abstract. The abstract should briefly state the problem or purpose of the research, indicate the theoretical or experimental plan used, summarize the principal findings, and point out major conclusions.
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