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Physicochemical Characterization and Water Vapor Sorption of Organic Solution Advanced Spray-Dried Inhalable Trehalose Microparticles and Nanoparticles for Targeted Dry Powder Pulmonary Inhalation Delivery

机译:靶向喷雾干粉吸入的有机溶液高级喷雾干燥可吸入海藻糖微粒和纳米颗粒的理化特性和水蒸气吸附

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摘要

Novel advanced spray-dried inhalable trehalose microparticulateanoparticulate powders with low water content were successfully produced by organic solution advanced spray drying from dilute solution under various spray-drying conditions. Laser diffraction was used to determine the volumetric particle size and size distribution. Particle morphology and surface morphology was imaged and examined by scanning electron microscopy. Hot-stage microscopy was used to visualize the presence/absence of birefringency before and following particle engineering design pharmaceutical processing, as well as phase transition behavior upon heating. Water content in the solid state was quantified by Karl Fisher (KF) coulometric titration. Solid-state phase transitions and degree of molecular order were examined by differential scanning calorimetry (DSC) and powder X-ray diffraction, respectively. Scanning electron microscopy showed a correlation between particle morphology, surface morphology, and spray drying pump rate. All advanced spray-dried microparticulateanoparticulate trehalose powders were in the respirable size range and exhibited a unimodal distribution. All spray-dried powders had very low water content, as quantified by KF. The absence of crystallinity in spray-dried particles was reflected in the powder X-ray diffractograms and confirmed by thermal analysis. DSC thermal analysis indicated that the novel advanced spray-dried inhalable trehalose microparticles and nanoparticles exhibited a clear glass transition (Tg). This is consistent with the formation of the amorphous glassy state. Spray-dried amorphous glassy trehalose inhalable microparticles and nanoparticles exhibited vapor-induced (lyotropic) phase transitions with varying levels of relative humidity as measured by gravimetric vapor sorption at 25°C and 37°C.
机译:通过在各种喷雾干燥条件下,从稀溶液中进行有机溶液的高级喷雾干燥,成功地生产出了低含水量的新型先进的喷雾干燥的可吸入海藻糖微粒/纳米颗粒粉末。激光衍射用于确定体积粒度和粒度分布。对颗粒形态和表面形态成像并通过扫描电子显微镜检查。使用热台显微镜观察颗粒工程设计药物处理之前和之后的双折射的存在与否,以及加热时的相变行为。固态中的水含量通过卡尔·费舍尔(KF Fisher)库仑滴定法定量。分别通过差示扫描量热法(DSC)和粉末X射线衍射检查了固态相变和分子有序度。扫描电子显微镜显示颗粒形态,表面形态和喷雾干燥泵送速率之间的相关性。所有高级喷雾干燥的微粒/纳米微粒海藻糖粉均在可吸入的尺寸范围内,并表现出单峰分布。如KF所定量,所有喷雾干燥的粉末具有非常低的水含量。粉末X射线衍射图中反映出喷雾干燥的颗粒中没有结晶度,并通过热分析证实。 DSC热分析表明,新型先进的喷雾干燥的可吸入海藻糖微粒和纳米颗粒表现出清晰的玻璃化转变温度(Tg)。这与无定形玻璃态的形成是一致的。喷雾干燥的无定形玻璃状海藻糖可吸入微粒和纳米颗粒表现出由蒸气诱导的(溶致)相变,相对湿度的水平有所变化,这是通过在25°C和37°C下的重量法蒸气吸附法测得的。

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