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含不同孔径和粒径纳米多孔二氧化硅颗粒的玻璃离子水门汀的离子捕获与释放能力

Ion Capture and Release Ability of Glass Ionomer Cement Containing Nanoporous Silica Particles with Different Pore and Particle Size.

作者信息

Endo Ryoshun, Nakanishi Ko, Bando Yosuke, Abe Shigeaki, Maruoka Haruhi, Nakamura Mariko, Akasaka Tsukasa, Yoshida Yasuhiro, Sato Yoshiaki

机构信息

Department of Orthodontics, Faculty of Dental Medicine, Hokkaido University, Kita13, Nishi7, Kita-ku, Sapporo 060-8586, Japan.

Department of Biomaterials and Bioengineering, Faculty of Dental Medicine, Hokkaido University, Kita13, Nishi7, Kita-ku, Sapporo 060-8586, Japan.

出版信息

Materials (Basel). 2021 Oct 1;14(19):5742. doi: 10.3390/ma14195742.

Abstract

This study prepared glass ionomer cement (GIC) containing nanoporous silica (NPS) (GIC-NPS) at 5 wt% concentrations using 3 types of NPS with different pore and particle sizes and evaluated the differences in their cationic ion capture/release abilities and mechanical properties. The cationic water-soluble dye was used as cationic ion. The test GIC-NPS complexes captured dyes by immersion in 1 wt% dye solutions. All the GIC-NPS complexes released dyes for 28 d, and the amount of dye released from the complexes increased with decreasing pore size; however, the particle size of NPS did not affect the amount of dye released. Additionally, GIC-NPS was able to recharge the dye, and the amount of released the dye by the complexes after recharge was almost identical to the amount released on the first charge. Although not significantly different, the compressive strength of GIC-NPS was slightly greater than that of GIC without NPS regardless of the type of NPS. These results suggest that the degree of capture and release of cationic molecules, such as drugs, can be controlled by optimizing the pore size of NPS without sacrificing its mechanical strength when its content is 5 wt%.

摘要

本研究使用3种具有不同孔径和粒径的纳米多孔二氧化硅(NPS),以5 wt%的浓度制备了含纳米多孔二氧化硅的玻璃离子水门汀(GIC-NPS),并评估了它们在阳离子捕获/释放能力和机械性能方面的差异。使用阳离子水溶性染料作为阳离子。通过将测试的GIC-NPS复合物浸入1 wt%的染料溶液中来捕获染料。所有GIC-NPS复合物在28天内都释放染料,并且从复合物中释放的染料量随着孔径减小而增加;然而,NPS的粒径不影响染料释放量。此外,GIC-NPS能够对染料进行再充电,再充电后复合物释放的染料量几乎与首次充电时释放的量相同。尽管差异不显著,但无论NPS的类型如何,GIC-NPS的抗压强度均略高于不含NPS的GIC。这些结果表明,当NPS含量为5 wt%时,通过优化NPS的孔径,可以在不牺牲其机械强度的情况下控制阳离子分子(如药物)的捕获和释放程度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2579/8510112/bffad6db4da2/materials-14-05742-g001.jpg

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