Effect of Acyl Chain Length on Hydrophobized Cashew Gum Self-Assembling Nanoparticles: Colloidal Properties and Amphotericin B Delivery

IF 3.2 Q3 CHEMISTRY, PHYSICAL Colloids and Interfaces Pub Date : 2022-11-04 DOI:10.3390/colloids6040065
A. R. Richter, José G. Veras-Neto, J. S. Sousa, J. F. S. Mendes, Raquel O. S. Fontenelle, Stéphanie A. N. M. Silva, J. D. B. Marinho-Filho, A. J. Araujo, J. Feitosa, H. C. Paula, F. Goycoolea, R. C. Paula
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引用次数: 2

Abstract

Given its many potential applications, cashew gum hydrophobic derivatives have gained increasing attraction in recent years. We report here the effect of acyl chain length on hydrophobized cashew gum derivatives, using acetic, propionic, and butyric anhydrides on self-assembly nanoparticle properties and amphotericin B delivery. Nanoparticles with unimodal particle size distribution, highly negative zeta potential, and low PDI were produced. Butyrate cashew gum nanoparticles presented smaller size (<~100 nm) than acetylated and propionate cashew gum nanoparticles and no cytotoxicity in murine fibroblast cells was observed up to 100 µg/mL for loaded and unloaded nanoparticles. As a proof of concept of the potential use of the developed nanoparticle as a drug carrier formulation, amphotericin B (AmB) was encapsulated and fully characterized in their physicochemical, AmB association and release, stability, and biological aspects. They exhibited average hydrodynamic diameter lower than ~200 nm, high AmB efficiency encapsulations (up to 94.9%), and controlled release. A decrease in AmB release with the increasing of the anhydride chain length was observed, which explains the differences in antifungal activity against Candida albicans strains. An excellent storage colloidal stability was observed for unloaded and loaded AmB without use of surfactant. Considering the AmB delivery, the acyl derivative with low chain length is shown to be the best one, as it has high drug loading and AmB release, as well as low minimum inhibitory concentration against Candida albicans strains.
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酰基链长度对疏水腰果胶自组装纳米粒子的影响:胶体性质和两性霉素B的传递
鉴于其许多潜在的应用,腰果胶疏水衍生物近年来受到越来越多的关注。我们在这里报道了酰基链长度对疏水腰果胶衍生物的影响,使用醋酸酐、丙酸酐和丁酸酐对自组装纳米粒子性质和两性霉素B递送。制备的纳米颗粒具有单峰型粒径分布、高负zeta电位和低PDI。与乙酰化和丙酸腰果胶纳米颗粒相比,丁酸腰果胶纳米颗粒的尺寸更小(<~100 nm),负载和未负载的纳米颗粒在100µg/mL时对小鼠成纤维细胞没有细胞毒性。为了证明所开发的纳米颗粒作为药物载体制剂的潜在用途,两性霉素B (AmB)被封装并在其物理化学,AmB的结合和释放,稳定性和生物学方面进行了充分的表征。它们的水动力平均直径小于~200 nm,包封效率高达94.9%,缓释可控。随着酸酐链长度的增加,AmB的释放量减少,这解释了对白色念珠菌菌株的抗真菌活性差异。在不使用表面活性剂的情况下,空载和载载AmB均具有良好的储存胶体稳定性。考虑到AmB的传递,低链长的酰基衍生物表现出较高的载药量和AmB释放量,并且对白色念珠菌的最低抑制浓度较低,是最好的一种。
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来源期刊
Colloids and Interfaces
Colloids and Interfaces CHEMISTRY, PHYSICAL-
CiteScore
3.90
自引率
4.20%
发文量
64
审稿时长
10 weeks
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