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两性离子聚合物在生物医学中的应用:用于植入式医疗器械和药物输送的抗菌和抗污策略。

Zwitterionic Polymers for Biomedical Applications: Antimicrobial and Antifouling Strategies toward Implantable Medical Devices and Drug Delivery.

机构信息

Department of Chemistry and Biochemistry, University of Missouri-St. Louis, St. Louis, Missouri 63121, United States.

Department of Civil and Environmental Engineering, Temple University, Philadelphia, Pennsylvania 19122, United States.

出版信息

Langmuir. 2024 Nov 5;40(44):23125-23145. doi: 10.1021/acs.langmuir.4c02664. Epub 2024 Oct 25.

Abstract

Poly(ethylene glycol) (PEG) is extensively utilized in biomedical applications due to its biocompatibility; however, its thermal instability and susceptibility to oxidative degradation significantly constrain its long-term effectiveness. Zwitterionic polymers, characterized by their distinctive structure, enhanced stability, and superior biocompatibility, offer a more advantageous alternative. These polymers exhibit super hydrophilicity, resist nonspecific protein adsorption, and maintain stability in biological environments due to their charge-neutral ionic nature. Zwitterionic polymers enhance anticancer drug delivery by precisely targeting tumor cells and facilitating an efficient drug release. Their inherent antifouling properties and prolonged circulation within the bloodstream render them highly suitable for redox-sensitive drug carriers, thereby augmenting the antitumor efficacy. Moreover, zwitterionic polymers markedly mitigate biofouling in implants, biosensors, and wound dressings, thereby improving both their functionality and their therapeutic outcomes. These advantages arise from the formation of robust hydration layers, which significantly enhance the hemocompatibility and inhibit the adhesion of proteins, platelets, and bacteria. Zwitterionic polymers, including sulfobetaine (SB), phosphorylcholine (PC), and carboxybetaine (CB), are increasingly employed in blood-contacting devices and as effective coating materials for implantable devices. This mini-review paper aims to explore the recent diverse biomedical applications of zwitterionic polymers and highlight their advantageous properties compared with unmodified polymers. We will cover their use in drug delivery systems, tumor targeting nanocarriers, antibiofouling and antibacterial activities in implantable devices, tissue engineering, and diagnostic devices, demonstrating how their unique properties can translate into different applications. Through this exploration, this Perspective will display the potential of zwitterionic polymers as innovative polymer materials in the field of biomedical engineering and beyond.

摘要

聚乙二醇(PEG)因其生物相容性而被广泛应用于生物医学领域;然而,其热不稳定性和易氧化降解严重限制了其长期有效性。两性离子聚合物因其独特的结构、增强的稳定性和卓越的生物相容性而成为更有利的选择。这些聚合物表现出超亲水性,抵抗非特异性蛋白质吸附,并由于其电荷中性的离子性质而在生物环境中保持稳定。两性离子聚合物通过精确靶向肿瘤细胞并促进药物有效释放,增强抗癌药物的递送。其固有的抗污性质和在血液中延长的循环使其成为氧化还原敏感药物载体的理想选择,从而增强抗肿瘤疗效。此外,两性离子聚合物可显著减轻植入物、生物传感器和伤口敷料中的生物污垢,从而提高其功能和治疗效果。这些优势源于形成坚固的水化层,这大大增强了血液相容性并抑制了蛋白质、血小板和细菌的粘附。包括磺基甜菜碱(SB)、磷酸胆碱(PC)和羧基甜菜碱(CB)在内的两性离子聚合物越来越多地用于与血液接触的设备以及作为可植入设备的有效涂层材料。这篇小型综述文章旨在探讨两性离子聚合物在生物医学中的最新多样化应用,并强调其与未改性聚合物相比的优势特性。我们将涵盖它们在药物传递系统、肿瘤靶向纳米载体、可植入设备中的抗生物污和抗菌活性、组织工程和诊断设备中的应用,展示其独特特性如何转化为不同的应用。通过这种探索,本观点将展示两性离子聚合物作为生物医学工程领域及其他领域创新聚合物材料的潜力。

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