MENG Haotian,LI Pengcheng,WEI Jiajia,WANG Wenxuan,LI Tianyu,HUANG Nan,TU Qiufen,XIONG Kaiqin,YANG Zhilu.Mussel Mimicking Polyamine-Phenol Surface with Efficient Antibacterial Properties and Good Hemocompatibility[J],53(8):173-183
Mussel Mimicking Polyamine-Phenol Surface with Efficient Antibacterial Properties and Good Hemocompatibility
Received:April 01, 2023  Revised:May 09, 2023
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DOI:10.16490/j.cnki.issn.1001-3660.2024.08.016
KeyWord:mussel mimicking  dopamine(DA)  ε-poly-L-lysine(ε-PL)  surface modification  antibacterial function
                          
AuthorInstitution
MENG Haotian Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China
LI Pengcheng Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China
WEI Jiajia Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China
WANG Wenxuan Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China
LI Tianyu Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China
HUANG Nan Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China
TU Qiufen Key Laboratory of Advanced Technology of Materials of Education Ministry, School of Materials Science and Engineering,Chengdu , China;Institute of Biomedical Engineering, College of Medicine, Southwest Jiaotong University, Chengdu , China
XIONG Kaiqin Institute of Biomedical Engineering, College of Medicine, Southwest Jiaotong University, Chengdu , China
YANG Zhilu Dongguan People's Hospital, Affiliated Dongguan Hospital, Southern Medical University, Guangdong Dongguan , China
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Abstract:
      In recent years, blood contact devices have brought great convenience to clinical treatments, but they are severely restricted due to bacterial-related infections. Bacteria-related infections not only lead to partial dysfunction of the devices, but also cause a series of complications such as bacteremia and inflammations, which may threaten the patient's life. For purpose of enhancing the antibacterial properties of the blood-contact materials, a simple and rapid polyamine-phenol coating (ε-PL@PDA) was constructed by dopamine (Dopamine, DA), ε-Poly-L-lysine (ε-PL), and sodium periodate (Sodium period, NaIO4) on the basis of the natural mussel adhesion phenomenon and mechanism in this study. At the same time, the ε-PL@PDA coating utilized the cations formed by the protonation of abundant amino groups of ε-PL to realize the purpose of high-efficiency antibacterial properties. DA and ε-PL formed phenolic amine polymers through covalent crosslinking, and then jointly mediated the adhesion of substrate materials to form the coating. Firstly, the base material (316L SS) was soaked in ammonia water, hydrogen peroxide, and hot water for 1 hour according to the volume ratio of 1∶1∶3, and then washed by RO, UP, and absolute ethyl alcohol respectively. DA (3 mg/mL), NaIO4 (3 mg/mL) were prepared with UP, and ε-PL was configured in proportions of 0.3, 3, and 30 mg/mL. They were mixed uniformly according to the volume ratio of 1∶1∶1, then immersed in the surface of the 316L SS, and reacted for 3 hours at room temperature to obtain the ε-PL@PDA coating. According to the different feeding ratios of ε-PL, they were named as ε-PL/0.3@PDA, ε-PL/3@PDA, ε-PL/30@PDA coatings respectively. The physical and chemical properties of ε-PL@PDA coatings were evaluated by material characterizations such as FTIR, XPS, SEM, ellipsometry, amino group quantification, and WCA. The antibacterial properties were evaluated by the colony counting method, liquid method and fluorescent staining of live/dead bacteria. The adhesion and proliferation of endothelial cells were used for evaluating the cytocompatibility. The adhesion and activation of platelets, as well as the semi-in vivo blood circulation assay were used to confirm the hemocompatibility. The material characterization results of FTIR, XPS, WCA and amino group quantification demonstrated the successful construction of the ε-PL@PDA coatings, and they contained richer amino groups than the PDA coating. The results of ellipsometry test indicated that the concentration of ε-PL could affect the efficiency of reaction, and the high concentration might interfere with the deposition of the coating. Relevant bacterial experiments certified that different concentrations of ε-PL@PDA coatings exhibited excellent antibacterial properties. When the concentration of ε-PL was 3 mg/mL, the antibacterial rates on E.coli and S.epidermidis exceeded 91%, which could beneficially reduce the incidence rate of bacterial infections. The results of the adhesion and proliferation experiments of endothelial cells demonstrated that with the increase of the concentration of ε-PL, the coatings displayed no significant toxic and side effects, possessing great cytocompatibility. The adhesion and activation of platelets and semi-in vivo blood circulation experiment results indicated that the coatings could not aggravate coagulation and formation of thrombus at the concentrations of 3 and 30 mg/mL, compared to 316L SS. The ε-PL@PDA coating can significantly improve the antibacterial ability without affecting the cytocompatibility and hemocompatibility. Therefore, this effective, practical, and applicable surface antibacterial strategy may assist in resolving the issues of bacterial infections of clinical blood contact devices.
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