Biomaterial coatings and films can prevent premature failure and enhance the performance of chronically implanted medical devices. However, current hydrophilic polymer coatings and films have significant drawbacks, including swelling and delamination. To address these issues, hydroxyethyl cellulose is modified with thioether groups to generate an oxidation-responsive polymer, HEC(MTP). HEC(MTP) readily dissolves in green solvents and can be fabricated as coatings or films with tunable thicknesses. HEC(MTP) coatings effectively scavenge hydrogen peroxide, resulting in the conversion of thioether groups to sulfoxide groups on the polymer chain. Oxidation-driven, hydrophobic-to-hydrophilic transitions that are isolated to the surface of HEC(MTP) coatings under physiologically relevant conditions increase wettability, decrease stiffness, and reduce protein adsorption to generate a non-fouling interface with minimal coating delamination or swelling. HEC(MTP) can be used in diverse optical applications and permits oxidation-responsive, controlled drug release. HEC(MTP) films are non-resorbable in vivo and evoke minimal foreign body responses. These results highlight the versatility of HEC(MTP) and support its incorporation into chronically implanted medical devices.
Thioether-Functionalized Cellulose for the Fabrication of Oxidation-Responsive Biomaterial Coatings and Films.
硫醚功能化纤维素用于制备氧化响应生物材料涂层和薄膜
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作者:DuBois Eric M, Herrema Kate E, Simkulet Matthew G, Hassan Laboni F, O'Connor Payton R, Sen Riya, O'Shea Timothy M
| 期刊: | Advanced Healthcare Materials | 影响因子: | 9.600 |
| 时间: | 2025 | 起止号: | 2025 Apr;14(11):e2403021 |
| doi: | 10.1002/adhm.202403021 | 研究方向: | 其它 |
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