| Literature DB >> 26306638 |
Kui Cheng1, Yi Hong1, Mengfei Yu2,3, Jun Lin3, Wenjian Weng1,4, Huiming Wang2,3.
Abstract
In this work, the behavior of protein molecules adsorbed on TiO2 nanodots films are modulated through the light responses of the nanodots. TiO2 nanodots films are first prepared through phase separation induced self assembly. Then, bovine serum albumin (BSA) is adsorbed on TiO2 nanodots films and exposed to ultraviolet (365 nm) illumination. It is found the conformation of surface-bound BSA molecules changes with ultraviolet illumination. Moreover, the BSA molecules conjugate to the surface-bound molecules, which are in the overlayer, are released. The reason is ascribed to that TiO2 nanodots absorb ultraviolet and result in the increase of surface hydroxyl groups on nanodots. Such increase further leads to intensified attraction of -NH3 groups in the surface-bound BSA molecules. That not only changes the conformation of the surface-bound BSA molecules, but also weaken the conjugation between surface-bound molecules and other BSA molecules in the overlayer. Eventually, the overlayer of BSA molecules is released. It is believed that such protein conformation variation and release behavior induced through light responses of TiO2 nanodots are crucial in understanding the biomedical performance of TiO2 nanostructures. Also, it could be widely utilized in tailoring of the materials-protein interactions.Entities:
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Year: 2015 PMID: 26306638 PMCID: PMC4549798 DOI: 10.1038/srep13354
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) TEM, EDS analyses of BSA adsorption on a typical individual TiO2 nanodot; (b) Amount of exposed -NH3 groups against different time of UV365 illumination; (c) Zeta potential of TiO2 nanodots against different time of UV365 illumination; (d) XPS results of TiO2 nanodots before and after UV365 illumination; (e) Capillary electrophoresis analyses of remained molecules after different time of UV365 illumination.
Figure 2(a) TEM micrographs of BSA adsorption thickness evolution against different time of UV365 illumination; (b) Fluorescence intensity variations of CLSM photos against different time of UV365 illumination; (c) QCM quantitative results on BSA desorption against different time of UV365 illumination.
Figure 3Diagram of UV365 illumination on the behaviors of BSA adsorbed on TiO2 nanodots film.