Antifouling surface for biomedical devices: Modification of COC surface by quaternary ammonium moieties via diazonium chemistry / K. A. Nikiforova, A. Gorbunova, E. V. Plotnikov [et al.]

Уровень набора: Applied Surface ScienceАльтернативный автор-лицо: Nikiforova, K. A., Chemical engineer, Engineer of Tomsk Polytechnic University, 1988-, Ksenia Alekseevna;Gorbunova, A., chemical engineer, engineer of Tomsk Polytechnic University, 1998-, Alina;Plotnikov, E. V., chemist, Associate Professor of Tomsk Polytechnic University, Candidate of Chemical Sciences, 1983-, Evgeny Vladimirovich;Postnikov, P. S., organic chemist, Associate Professor of Tomsk Polytechnic University, Candidate of chemical sciences, 1984-, Pavel Sergeevich;Guselnikova, O. A., chemist, Researcher at Tomsk Polytechnic University, Candidate of Chemical Sciences, 1992-, Olga AndreevnaКоллективный автор (вторичный): Национальный исследовательский Томский политехнический университет, Исследовательская школа химических и биомедицинских технологий, Международная научно-исследовательская лаборатория "Невалентные взаимодействия в химии материалов";Национальный исследовательский Томский политехнический университет, Исследовательская школа химических и биомедицинских технологий, (2017- )Язык: английский.Страна: .Резюме или реферат: Prefilled biomedical devices (PFD) are growing in the pharmaceutical market due to the ease of delivering a precise dose of protein drugs. As an appealing alternative to the fragile glass, cyclic olefin copolymer (COC) was suggested. However, in the case of COC, the stability of the drug may be negatively impacted by protein aggregation. To potentially improve the surface properties of COC for PFDs, we performed functionalization of COC with quaternary ammonium moieties (QAS) using the advantages of diazonium surface chemistry. The successful functionalization of COC using QAS-diazonium salts (QAS-DS) with different alkyl chain lengths (C4, C8, C9, C10, C12) was confirmed by Raman spectroscopy and XPS measurements. Optical and fluorescence measurements revealed the optimal length of the alkyl chain-COC-C4 for improved antibiofouling performance towards bovine serum albumin (BSA). Moreover, in contrast to glass, polypropylene (PP), and pristine COC, COC-C4 allows storing the insulin for at least 2 weeks without the changes in protein structure according to dynamic light scattering and TEM images. Additionally, diazonium functionalization allows for conserving the high permeability resistance, transparency, and mechanical stiffness. The improved stability of insulin in a COC-C4 container is explained by the formation of an additional hydration layer serving as a barrier to undesired interaction with biomolecules..Примечания о наличии в документе библиографии/указателя: [References: 48 tit.].Аудитория: .Тематика: электронный ресурс | труды учёных ТПУ | cyclic olefin copolymer | quaternary ammonium salts | prefilled biomedical devices | functionalization | сополимеры | циклические олефины | четвертичные соли | аммониевые соли | биомедицинские устройства | функционализация Ресурсы он-лайн:Щелкните здесь для доступа в онлайн
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[References: 48 tit.]

Prefilled biomedical devices (PFD) are growing in the pharmaceutical market due to the ease of delivering a precise dose of protein drugs. As an appealing alternative to the fragile glass, cyclic olefin copolymer (COC) was suggested. However, in the case of COC, the stability of the drug may be negatively impacted by protein aggregation. To potentially improve the surface properties of COC for PFDs, we performed functionalization of COC with quaternary ammonium moieties (QAS) using the advantages of diazonium surface chemistry. The successful functionalization of COC using QAS-diazonium salts (QAS-DS) with different alkyl chain lengths (C4, C8, C9, C10, C12) was confirmed by Raman spectroscopy and XPS measurements. Optical and fluorescence measurements revealed the optimal length of the alkyl chain-COC-C4 for improved antibiofouling performance towards bovine serum albumin (BSA). Moreover, in contrast to glass, polypropylene (PP), and pristine COC, COC-C4 allows storing the insulin for at least 2 weeks without the changes in protein structure according to dynamic light scattering and TEM images. Additionally, diazonium functionalization allows for conserving the high permeability resistance, transparency, and mechanical stiffness. The improved stability of insulin in a COC-C4 container is explained by the formation of an additional hydration layer serving as a barrier to undesired interaction with biomolecules.

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