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Chemical Release from Single PMMA Microparticles Monitored by CARS microscopy

机译:由汽车显微镜监测的单个PMMA微粒的化学释放

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Microparticles loaded with antigens, proteins, DNA, fungicides, and other functional agents emerge as ideal vehicles for vaccine, drug delivery, genetic therapy, surface- and crop protection. The microscopic size of the particles and their collective large specific surface area enables highly active and localized release of the functional substance. In order to develop designs with release profiles optimized for the specific application, it is desirable to map the distribution of the active substance within the particle and how parameters such as size, material and morphology affect release rates at single particle level. Current imaging techniques are limited in resolution, sensitivity, image acquisition time, or sample treatment, excluding dynamic studies of active agents in microparticles. Here, we demonstrate that the combination of CARS and THG microscopy can successfully be used, by mapping the spatial distribution and release rates of the fungicide and food preservative IPBC from different designs of PMMA microparticles at single-particle level. By fitting a radial diffusion model to the experimental data, single particle diffusion coefficients can be determined. We show that release rates are highly dependent on the size and morphology of the particles. Hence, CARS and THG microscopy provides adequate sensitivity and spatial resolution for quantitative studies on how single-particle properties affect the diffusion of active agents at microscopic level. This will aid the design of innovative microencapsulating systems for controlled release
机译:用抗原,蛋白质,DNA,杀真菌剂和其他功能药物负载的微粒作为疫苗,药物递送,遗传疗法,表面和作物保护的理想载体。颗粒的显微尺寸及其集体大的比表面积使功能性物质的高活性和局部释放能够。为了开发针对特定应用优化的释放型材的设计,期望映射颗粒内活性物质的分布以及诸如尺寸,材料和形态的参数如何影响单粒子水平的释放速率。目前的成像技术在分辨率,敏感性,图像采集时间或样品处理中受到限制,除外,不包括在微粒中的活性剂的动态研究。在这里,我们证明了通过在单粒子水平的不同设计PMMA微粒的不同设计中绘制杀菌剂和食品防腐剂IPBC的空间分布和释放速率来成功地使用汽车和THG显微镜的组合。通过将径向扩散模型拟合到实验数据,可以确定单个粒子扩散系数。我们表明释放率高度依赖于颗粒的大小和形态。因此,汽车和THG显微镜提供了足够的灵敏度和空间分辨率,用于定量研究单颗粒性能如何影响活性剂在微观水平下的扩散。这将有助于设计用于控制释放的创新微胶囊系统

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