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Control Release Coating for Urinary Catheters with Enhanced Released Profile for Sustained Antimicrobial Protection

抗菌剂 聚己内酯 材料科学 涂层 PEG比率 乙二醇 无水的 生物医学工程 甘露醇 聚合物 色谱法 纳米技术 化学 有机化学 医学 复合材料 财务 经济
作者
Esther Marie Jierong Lin,Chee Leng Lay,Gomathy Sandhya Subramanian,Wui Siew Tan,Susanna Su Jan Leong,Lionel C. H. Moh,Kaiyang Lim
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:13 (49): 59263-59274 被引量:15
标识
DOI:10.1021/acsami.1c17697
摘要

Catheter-associated urinary tract infections (CAUTIs) are common and pose significant costs to healthcare systems. To date, this problem is largely unsolved as commercially available antimicrobial catheters are still lacking in functionality and performance. A prior study by Lim et al. ( Biotechnol. Bioeng. 2018, 115 (8), 2000-2012) reported the development of a novel anhydrous polycaprolactone (PCL) polymer formulation with controlled-release functionality for antimicrobial peptides. In this follow-up study, we developed an improved antimicrobial peptide (AMP)-impregnated poly(ethylene glycol) (PEG)-polycaprolactone (PCL) anhydrous polymer coating for enhanced sustained controlled-release functionality to provide catheters with effective antimicrobial properties. Varying the ratio of PEG and PEG-PCL copolymers resulted in polymers with different morphologies, consequently affecting the AMP release profiles. The optimal coating, formulated with 10% (w/w) PEG-PCL in PCL, achieved a controlled AMP release rate of 31.65 ± 6.85 μg/mL daily for up to 19 days, with a moderate initial burst release. Such profile is desired for antimicrobial coating as the initial burst release acts as a sterilizer to kill the bacteria present in the urinary tract upon insertion, and the subsequent linear release functions as a prophylaxis to deter opportunistic microbial infections. As a proof-of-concept application, our optimized coating was then applied to a commercial silicone catheter for further antibacterial tests. Preliminary results revealed that our coated catheters outperformed commercial silver-based antimicrobial catheters in terms of antimicrobial performance and sustainability, lasting for 4 days. Application of the controlled-release coating also aids in retarding biofilm formation, showing a lower extent of biofilm formation at the end of seven inoculation cycles.
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