Natural Science Department, Federal University of São João del-Rei, Brazil.
Chemistry Department, Federal University of Minas Gerais, Brazil.
Int J Biol Macromol. 2021 Jan 1;166:902-912. doi: 10.1016/j.ijbiomac.2020.10.247. Epub 2020 Nov 2.
Chemical modifications in the chitosan structure may result in obtaining a new material with improved chemical properties, such as an ability to encapsulate lipophilic compounds. This study aimed to synthesize cinnamic acid grafted chitosan nanogel to encapsulate the essential oils of Syzygium aromaticum and Cinnamomum ssp., in order to develop a material to be applied in the control of dermatophytosis caused by the fungus Microsporum canis. The cinnamic acid graft in chitosan was verified by the Attenuated Total Reflectance Fourier Transform Infrared Spectroscopy (ATR-FTIR), Solid State Nuclear Magnetic Resonance of the C Nucleus (C SSNMR) and Thermal analysis coupled to mass spectrometry (TG-MS) techniques. The nanogel obtained showed affinity for the essential oils of S. aromaticum and Cinnamomum, with encapsulation efficiencies equal to 74% and 89%, respectively. When in an aqueous medium the nanogel with the encapsulated essential oils was able to form stable nanoparticles with average sizes of 176.0 ± 54.3 nm and 263.0 ± 81.4 nm. The cinnamic acid grafted chitosan nanogel showed antifungal activity in vitro against M. canis, inhibiting up to 53.96% of its mycelial growth. Complete inhibition of mycelial growth was achieved by the nanogel with encapsulated essential oils. The results found in this work demonstrated the development of a material with potential application in the control of dermatophytosis caused by the fungus M. canis.
壳聚糖结构的化学修饰可能导致获得具有改进的化学性质的新材料,例如包封亲脂性化合物的能力。本研究旨在合成肉桂酸接枝壳聚糖纳米凝胶以包封丁香和肉桂精油,以开发一种可用于控制由真菌犬小孢子菌引起的皮肤癣病的材料。壳聚糖中的肉桂酸接枝通过衰减全反射傅里叶变换红外光谱(ATR-FTIR)、核 C 的固态核磁共振(C SSNMR)和热分析与质谱联用(TG-MS)技术进行了验证。所获得的纳米凝胶对丁香和肉桂精油具有亲和力,包封效率分别为 74%和 89%。当在水介质中时,包封有精油的纳米凝胶能够形成平均粒径为 176.0±54.3nm 和 263.0±81.4nm 的稳定纳米颗粒。肉桂酸接枝壳聚糖纳米凝胶在体外对犬小孢子菌表现出抗真菌活性,抑制其菌丝生长高达 53.96%。包封有精油的纳米凝胶可完全抑制菌丝生长。本工作中的结果表明,开发了一种具有控制由真菌犬小孢子菌引起的皮肤癣病的潜在应用的材料。