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基于聚(3,4-乙撑二氧噻吩)-富勒烯C聚合物二元体系的光活性抗菌涂层。

Photoactive antimicrobial coating based on a PEDOT-fullerene C polymeric dyad.

作者信息

Reynoso Eugenia, Durantini Andrés M, Solis Claudia A, Macor Lorena P, Otero Luis A, Gervaldo Miguel A, Durantini Edgardo N, Heredia Daniel A

机构信息

IDAS-CONICET, Departamento de Química, Facultad de Ciencias Exactas Físico-Químicas y Naturales, Universidad Nacional de Río Cuarto Agencia Postal Nro. 3 X5804BYA Río Cuarto Córdoba Argentina

IITEMA-CONICET, Departamento de Química, Facultad de Ciencias Exactas Físico-Químicas y Naturales, Universidad Nacional de Río Cuarto Agencia Postal Nro. 3 X5804BYA Río Cuarto Córdoba Argentina.

出版信息

RSC Adv. 2021 Jul 5;11(38):23519-23532. doi: 10.1039/d1ra03417k. eCollection 2021 Jul 1.

Abstract

A photostable and photodynamic antimicrobial surface was successfully obtained and applied to photoinactivate microorganisms. This approach was based on the synthesis of a fullerene C derivative (EDOT-C) where fullerene C is covalently linked to 3,4-ethylenedioxythiophene (EDOT) through a 1,3-dipolar cycloaddition reaction. This dual-functional monomer bears an EDOT center connected an alkyl chain to a fullerene C moiety. In this structure, EDOT acts as an electropolymerizable unit that allows the film formation over conducting substrates, while fullerene C performs the photodynamic antimicrobial activity. Electrochemical polymerization of EDOT was used to obtain stable and photodynamic polymeric films (PEDOT-C) in a controllable procedure. Cyclic voltammetry and UV-visible spectroscopy studies showed that the fullerene C units were not altered during the electropolymerization process, obtaining surfaces with high fullerene content. Photobleaching measurements demonstrated that the electropolymerized films were highly photostable. Moreover, photodynamic properties of PEDOT-C were compared with fullerene C and showed that electrodeposited films were able to generate reactive oxygen species (ROS) through the two photomechanisms, producing singlet molecular oxygen (type II) and superoxide radical anion (type I). All studies demonstrated that fullerene C moieties covalently attached to the polymeric matrix mainly conserve the photodynamic characteristics. Hence, photodynamic action sensitized by PEDOT-C was assessed against . The photosensitized inactivation by the electropolymerized films on bacteria suspensions produced >99.9% reduction in survival. Fluorescence microscopy experiments with adhered to the PEDOT-C surface showed a complete microbe annihilation. Also, the eradication of biofilms formed on PEDOT-C surfaces resulted in a photokilling >99.9% after visible light irradiation. Our results demonstrated that these antimicrobial photodynamic polymeric films are a promising and versatile platform to photoinactivate microorganisms and to obtain photostable self-sterilizing surfaces.

摘要

成功获得了一种光稳定且具有光动力抗菌性能的表面,并将其应用于光灭活微生物。该方法基于富勒烯C衍生物(EDOT-C)的合成,其中富勒烯C通过1,3-偶极环加成反应与3,4-乙撑二氧噻吩(EDOT)共价连接。这种双功能单体具有一个EDOT中心,通过烷基链连接到富勒烯C部分。在这种结构中,EDOT作为可电聚合单元,使薄膜能够在导电基底上形成,而富勒烯C则发挥光动力抗菌活性。通过EDOT的电化学聚合,以可控的方式获得了稳定且具有光动力的聚合物薄膜(PEDOT-C)。循环伏安法和紫外-可见光谱研究表明,富勒烯C单元在电聚合过程中未发生改变,从而获得了具有高富勒烯含量的表面。光漂白测量表明,电聚合薄膜具有高度的光稳定性。此外,将PEDOT-C的光动力性能与富勒烯C进行比较,结果表明电沉积薄膜能够通过两种光机制产生活性氧(ROS),产生单线态分子氧(II型)和超氧自由基阴离子(I型)。所有研究表明,共价连接到聚合物基质上的富勒烯C部分主要保留了光动力特性。因此,评估了PEDOT-C敏化的光动力作用对……的效果。电聚合薄膜对细菌悬液的光敏灭活作用使细菌存活率降低了>99.9%。对附着在PEDOT-C表面的细菌进行荧光显微镜实验,结果显示微生物被完全消灭。此外,对PEDOT-C表面形成的生物膜进行根除,在可见光照射后光杀灭率>99.9%。我们的结果表明,这些抗菌光动力聚合物薄膜是一种有前途的通用平台,可用于光灭活微生物并获得光稳定的自消毒表面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12f4/9036534/ef4618d19c89/d1ra03417k-s1.jpg

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