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Development of Two-Step Temperature Process to Modulate the Physicochemical Properties of β-lactoglobulin Nanoparticles

机译:两步法调节β-乳球蛋白纳米粒子理化性质的研究进展

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摘要

The development of a new manufacturing process, a two-step temperature treatment, to modulate the physicochemical properties of nanoparticles including the size is critical. This is because its physicochemical properties can be key factors affecting the cellular uptake and the bioavailability of bioactive compounds encapsulated in nanoparticles. The aims of this study were to produce (beta-lactoglobulin) β-lg nanoparticles and to understand how two-step temperature treatment could affect the formation and physicochemical properties of β-lg nanoparticles. The morphological and physicochemical properties of β-lg nanoparticles were determined using atomic force microscopy and a particle size analyzer, respectively. Circular dichroism spectroscopy was used to investigate the secondary structure of β-lg. The surface hydrophobicity and free thiol groups of β-lg were increased with a decrease in sub-ambient temperature and an increase in mild heat temperature. As sub-ambient temperature was decreased, a decrease in α-helical content and an increase in β-sheet content were observed. The two-step temperature treatment firstly involved a sub-ambient temperature treatment from 5 to 20°C for 30 min, followed secondly by a mild heat temperature treatment from 55 to 75°C for 10 min. This resulted in the production of spherically-shaped particles with a size ranging from 61 to 214 nm. Two-way ANOVA exhibited the finding that both sub-ambient and mild heat temperature significantly (p<0.0001) affected the size of nanoparticles. Zeta-potential values of β-lg nanoparticles were reduced with increasing mild heat temperature. In conclusion, two-step temperature treatment was shown to play an important role in the manufacturing process – both due to its inducement of the conformational changes of β-lg during nanoparticle formation, and due to its modulation of the physicochemical properties of β-lg nanoparticles.
机译:开发新的制造工艺(两步温度处理)以调节纳米粒子的物理化学特性(包括尺寸)至关重要。这是因为其物理化学性质可能是影响细胞摄取和封装在纳米颗粒中的生物活性化合物的生物利用度的关键因素。这项研究的目的是生产(β-乳球蛋白)β-lg纳米颗粒,并了解两步温度处理如何影响β-lg纳米颗粒的形成和理化性质。分别使用原子力显微镜和粒度分析仪确定β-lg纳米颗粒的形态和理化性质。圆二色光谱用于研究β-Ig的二级结构。 β-Ig的表面疏水性和游离硫醇基团随着环境温度的降低和温和加热温度的升高而增加。随着环境温度降低,观察到α-螺旋含量降低和β-片层含量增加。两步温度处理首先涉及从5到20°C的亚环境温度处理30分钟,其次是从55到75°C的温和热处理10分钟。这导致产生尺寸在61至214nm范围内的球形颗粒。双向方差分析显示以下发现:环境温度和温和加热温度均显着(p <0.0001)影响纳米颗粒的尺寸。 β-lg纳米粒子的Zeta电位值随温和加热温度的升高而降低。总之,两步温度处理在制造过程中起着重要作用-既由于其诱导了纳米颗粒形成过程中β-lg的构象变化,又由于其对β-lg的理化性质的调节纳米粒子。

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