Department of Pharmacy, Uppsala University , 751 23 Uppsala, Sweden.
Department of Chemistry, Umeå University , 907 36 Umeå, Sweden.
Langmuir. 2016 Dec 13;32(49):13214-13225. doi: 10.1021/acs.langmuir.6b01967. Epub 2016 Nov 29.
This study aims at investigating the molecular level organization and molecular mobility in montmorillonite nanocomposites with the uncharged organic low-molecular-weight compound lactose commonly used in pharmaceutical drug delivery, food technology, and flavoring. Nanocomposites were prepared under slow and fast drying conditions, attained by drying at ambient conditions and by spray-drying, respectively. A detailed structural investigation was performed with modulated differential scanning calorimetry, powder X-ray diffraction, solid-state nuclear magnetic resonance spectroscopy, scanning electron microscopy, microcalorimetry, and molecular dynamics simulations. The lactose was intercalated in the sodium montmorillonite interlayer space regardless of the clay content, drying rate, or humidity exposure. Although, the spray-drying resulted in higher proportion of intercalated lactose compared with the drying under ambient conditions, nonintercalated lactose was present at 20 wt % lactose content and above. This indicates limitations in maximum loading capacity of nonionic organic substances into the montmorillonite interlayer space. Furthermore, a fraction of the intercalated lactose in the co-spray-dried nanocomposites diffused out from the clay interlayer space upon humidity exposure. Also, the lactose in the nanocomposites demonstrated higher molecular mobility than that of neat amorphous lactose. This study provides a foundation for understanding functional properties of lactose/Na-MMT nanocomposites, such as loading capacity and physical stability.
本研究旨在研究无电荷有机低分子量化合物乳糖(常用于药物输送、食品技术和调味)的蒙脱土纳米复合材料的分子水平组织和分子迁移率。纳米复合材料通过在环境条件下干燥和喷雾干燥分别达到缓慢和快速干燥条件下制备。通过调制差示扫描量热法、粉末 X 射线衍射、固态核磁共振波谱、扫描电子显微镜、微量热法和分子动力学模拟进行了详细的结构研究。乳糖被插入钠蒙脱石的层间空间中,而与粘土含量、干燥速率或湿度暴露无关。尽管喷雾干燥导致与在环境条件下干燥相比,更多比例的乳糖被插入,但在 20wt%乳糖含量及以上时存在非插入乳糖。这表明非离子有机物质在蒙脱石层间空间中的最大负载能力存在限制。此外,在湿度暴露下,共喷雾干燥纳米复合材料中部分插入的乳糖从粘土层间空间扩散出来。此外,纳米复合材料中的乳糖比纯非晶乳糖具有更高的分子迁移率。本研究为理解乳糖/Na-MMT 纳米复合材料的功能特性(如负载能力和物理稳定性)提供了基础。