水溶性紫草素纳米颗粒的合成与分子动力学研究

IF 2.2 4区 化学 Q3 CHEMISTRY, PHYSICAL
Mohd Amir Asyraf Mohd Hamzah, Noor Adyanti Rusdi, Mohamad Ainuddin Wahidin, Claira Arul Aruldass, Hasmerya Maarof, Wan Azlina Ahmad, Siti Aminah Setu
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Violacein nanoparticles were successfully produced at optimized parameters, surfactant concentration of 1 mM, concentration of violacein of 50 µg/mL and sonication time of 10 min. The smallest violacein nanoparticles were 131.5 ± 2.001 nm, with PDI of 0.180 ± 0.018, which indicated a monodispersed violacein nanoparticle distribution. The violacein nanoparticles were stable upon dispersion in water, with a zeta potential of − 49.8 ± 3.49 mV. Violacein was located in the hydrophobic tail region of SDS surfactant micelle after 92 ns. The violet colour of the nanoparticles was maintained at pH from 3 to 11, temperature up to 60 °C and under dark condition, despite its nanoscale size. Higher degradation rate was observed at high temperature and upon light illumination, with <i>k</i> = 6.51 × 10<sup>−3</sup> h<sup>−1</sup>, <i>t</i><sub>1/2</sub> = 106 h and <i>k</i> = 6.75 × 10<sup>−4</sup> h<sup>−1</sup>, <i>t</i><sub>1/2</sub> = 1027 h, respectively, following the first-order kinetics. 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引用次数: 0

摘要

天然色素紫草素具有多种药用特性,包括抗菌、抗癌和抗氧化活性。然而,由于紫草素在水中的溶解度有限,限制了它的应用。因此,本研究采用超声技术,并借助表面活性剂作为分散剂和稳定剂,合成了紫草素纳米粒子。实验研究了表面活性剂和紫草素浓度对紫草素纳米粒子的生成、尺寸和稳定性的影响。通过计算研究了紫草素在表面活性剂胶束中的位置。在优化参数(表面活性剂浓度为 1 mM,紫草素浓度为 50 µg/mL,超声时间为 10 分钟)下,成功制得了紫草素纳米粒子。最小的紫草素纳米粒子为 131.5 ± 2.001 nm,PDI 为 0.180 ± 0.018,表明紫草素纳米粒子呈单分散分布。紫草素纳米粒子在水中分散稳定,zeta电位为- 49.8 ± 3.49 mV。92 ns后,紫草素位于SDS表面活性剂胶束的疏水尾部区域。尽管纳米颗粒的尺寸很小,但在 pH 值为 3 至 11、温度高达 60 ℃ 和黑暗条件下,它仍能保持紫色。在高温和光照条件下,降解率更高,分别为 k = 6.51 × 10-3 h-1, t1/2 = 106 h 和 k = 6.75 × 10-4 h-1, t1/2 = 1027 h,遵循一阶动力学。综上所述,以水为介质的绿色制备方法能够制备出紫草素纳米粒子,而且纳米粒子的颜色在不同条件下保持稳定。这项研究有助于深入了解紫草素与表面活性剂相互作用的分子机制,从而了解紫草素在水中的溶解性和稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synthesis of water-soluble violacein nanoparticles and molecular dynamic study

Synthesis of water-soluble violacein nanoparticles and molecular dynamic study

Natural pigment violacein exhibits many pharmaceutical properties which include antimicrobial, anticancer and antioxidant activities. However, limited solubility of violacein in water has restricted its application. Hence, in this study, the violacein nanoparticles were synthesised via sonication technique with the aid of surfactants as dispersing and stabilising agent. Experimentally, the effect of surfactant and violacein concentrations on the production, size and stability of violacein nanoparticles was studied. The location of the violacein in the surfactant micelle was studied using computational study. Violacein nanoparticles were successfully produced at optimized parameters, surfactant concentration of 1 mM, concentration of violacein of 50 µg/mL and sonication time of 10 min. The smallest violacein nanoparticles were 131.5 ± 2.001 nm, with PDI of 0.180 ± 0.018, which indicated a monodispersed violacein nanoparticle distribution. The violacein nanoparticles were stable upon dispersion in water, with a zeta potential of − 49.8 ± 3.49 mV. Violacein was located in the hydrophobic tail region of SDS surfactant micelle after 92 ns. The violet colour of the nanoparticles was maintained at pH from 3 to 11, temperature up to 60 °C and under dark condition, despite its nanoscale size. Higher degradation rate was observed at high temperature and upon light illumination, with k = 6.51 × 10−3 h−1, t1/2 = 106 h and k = 6.75 × 10−4 h−1, t1/2 = 1027 h, respectively, following the first-order kinetics. As conclusion, the violacein nanoparticles were able to be produced using water as a medium for green approach, and the nanoparticle colour remained stable at various conditions. This study provides an insight into the molecular mechanism of violacein-surfactant interaction for its solubility and stability in water.

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来源期刊
Colloid and Polymer Science
Colloid and Polymer Science 化学-高分子科学
CiteScore
4.60
自引率
4.20%
发文量
111
审稿时长
2.2 months
期刊介绍: Colloid and Polymer Science - a leading international journal of longstanding tradition - is devoted to colloid and polymer science and its interdisciplinary interactions. As such, it responds to a demand which has lost none of its actuality as revealed in the trends of contemporary materials science.
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