三甲胺n -氧化物衍生两性离子涂层用于聚氨酯输尿管支架防止结痂的形成。

Kaiguo Xia, Guang Chen, Bingbing Hou, Zhe Wang, Yaqi Zhu, Yuexian Xu, Shanfu Zhang, Qiang Xuan, Yezi You, Zongyao Hao
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引用次数: 0

摘要

输尿管支架对蛋白质、细菌和多价离子具有较强的抵抗力,对泌尿系统疾病的安全治疗至关重要。通常,尿中存在的蛋白质、细菌和多价离子倾向于与支架表面结合,导致聚集、成核和随后的支架结壳。支架结痂可诱发或加重尿路感染和梗阻,从而严重损害肾功能。尽管输尿管支架上的亲水涂层可以减少蛋白质、细菌和多价离子的结合,但仍会发生结痂。迄今为止,防止支架结壳的形成仍然是一个重大挑战。在这里,我们通过支链扩增策略将致密的三甲胺氧化物(TMAO)衍生的两性离子聚合物接枝到支架表面。这些两性离子能强烈结合水分子,形成稳定的水合壳,排斥蛋白质、细菌和多价离子粘附在聚氨酯输尿管支架表面,从而使支架具有抗结壳性。结果表明,tmao衍生两性离子涂层支架的结痂重量明显减轻(为原聚氨酯支架的13.8%),安全性良好。这种方法为增强支架抗结壳性提供了一种很有前途的方法。意义声明:本研究成功地在聚氨酯支架表面开发了一种由tmao衍生的两性离子涂层,创造了一个最小接触角为5.2的超亲水性表面。该表面有效地屏蔽了支架与尿液中的蛋白质、细菌和多价离子的相互作用,表现出良好的抗蛋白质吸附和抗菌粘附性能。由tmao衍生的两性离子涂层在支架上形成的超亲水性表面(PTMAO-s)具有很强的抗污性和增强的抗结壳性能。在相同条件下,PTMAO-s的耐结壳性比原始聚氨酯支架(PU)高约7.2倍,比巴德商用支架高3.6倍,比甜菜碱涂层支架(PSBG-s)高2.1倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Trimethylamine N-oxide-derived zwitterion coating for polyurethane ureteral stents prevents encrustation formation.

A ureteral stent with strong resistance to proteins, bacteria, and multivalent ions is crucial for the safe treatment of urologic diseases. Generally, the proteins, bacteria, and multivalent ions present in urine tend to bind to the stent surface, leading to aggregation, nucleation, and subsequent stent encrustation. Stent encrustation can induce or exacerbate urinary tract infections and obstructions, thereby seriously harming kidney function. Although hydrophilic coatings on ureteral stents can reduce the binding of proteins, bacteria, and multivalent ions, encrustation still occurs. To date, preventing stent encrustation formation remains a significant challenge. Here, we grafted dense trimethylamine oxide (TMAO)-derived zwitterionic polymers onto the stent surface via a branched amplification strategy. These zwitterions can strongly bind water molecules, forming a stable hydration layer that repels proteins, bacteria, and multivalent ions from adhering to the surface of the polyurethane ureteral stent, thus rendering the stent anti-encrustation. The results showed that the TMAO-derived zwitterion-coated stents exhibited a significantly reduced encrustation weight (13.8% of the original polyurethane stent) and demonstrated good safety. This approach offers a promising method for enhancing stent encrustation resistance. STATEMENT OF SIGNIFICANCE: This study successfully developed a TMAO-derived zwitterionic coating on the surface of a polyurethane stent, creating a superhydrophilic surface with a minimal contact angle of 5.2o. This surface effectively shields the stent from interactions with proteins, bacteria, and multivalent ions in urine, demonstrating favorable anti-protein adsorption and antibacterial adhesion properties. The superhydrophilic surface formed by the TMAO-derived zwitterionic coating on the stents (PTMAO-s) provides strong anti-fouling resistance and enhanced anti-encrustation properties. Under identical conditions, the encrustation resistance of PTMAO-s is approximately 7.2-fold greater than that of original polyurethane stents (PU), 3.6-fold greater than Bard commercial stents, and 2.1-fold greater than betaine-coated stents (PSBG-s).

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