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用于药物输送装置的光机械聚合物纳米复合材料。

Photomechanical Polymer Nanocomposites for Drug Delivery Devices.

机构信息

Instituto de Investigaciones en Materiales, Universidad Nacional Autónoma de México, Apdo. Postal 70-360, Cd. Universitaria, México 04510, Mexico.

Cátedras CONACyT-Instituto de Física, Universidad Autónoma de San Luis Potosí, San Luis Potosí 78290, Mexico.

出版信息

Molecules. 2021 Sep 4;26(17):5376. doi: 10.3390/molecules26175376.

Abstract

We demonstrate a novel structure based on smart carbon nanocomposites intended for fabricating laser-triggered drug delivery devices (DDDs). The performance of the devices relies on nanocomposites' photothermal effects that are based on polydimethylsiloxane (PDMS) with carbon nanoparticles (CNPs). Upon evaluating the main features of the nanocomposites through physicochemical and photomechanical characterizations, we identified the main photomechanical features to be considered for selecting a nanocomposite for the DDDs. The capabilities of the PDMS/CNPs prototypes for drug delivery were tested using rhodamine-B (Rh-B) as a marker solution, allowing for visualizing and quantifying the release of the marker contained within the device. Our results showed that the DDDs readily expel the Rh-B from the reservoir upon laser irradiation and the amount of released Rh-B depends on the exposure time. Additionally, we identified two main Rh-B release mechanisms, the first one is based on the device elastic deformation and the second one is based on bubble generation and its expansion into the device. Both mechanisms were further elucidated through numerical simulations and compared with the experimental results. These promising results demonstrate that an inexpensive nanocomposite such as PDMS/CNPs can serve as a foundation for novel DDDs with spatial and temporal release control through laser irradiation.

摘要

我们展示了一种基于智能碳纳米复合材料的新型结构,旨在构建激光触发药物输送装置(DDD)。该装置的性能依赖于基于聚二甲基硅氧烷(PDMS)和碳纳米粒子(CNP)的纳米复合材料的光热效应。通过物理化学和光机械特性评估纳米复合材料的主要特征,我们确定了选择用于 DDD 的纳米复合材料时需要考虑的主要光机械特征。使用罗丹明 B(Rh-B)作为标记溶液测试了 PDMS/CNPs 原型的药物输送能力,从而可以可视化和量化装置内标记物的释放。我们的结果表明,DDD 在激光照射下很容易将 Rh-B 从储液器中排出,并且释放的 Rh-B 量取决于暴露时间。此外,我们确定了两种主要的 Rh-B 释放机制,第一种机制基于装置的弹性变形,第二种机制基于气泡的产生及其在装置中的膨胀。这两种机制都通过数值模拟进行了进一步阐明,并与实验结果进行了比较。这些有前途的结果表明,像 PDMS/CNPs 这样的廉价纳米复合材料可以作为通过激光照射实现时空释放控制的新型 DDD 的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b81/8433747/63d826f0034c/molecules-26-05376-g001.jpg

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