Puglia Carmelo, Santonocito Debora, Musumeci Teresa, Cardile Venera, Graziano Adriana Carol Eleonora, Salerno Loredana, Raciti Giuseppina, Crascì Lucia, Panico Anna Maria, Puglisi Giovanni
Department of Drug Sciences, University of Catania, Catania, Italy.
Department of Biomedical and Biotechnological Sciences, University of Catania, Catania, Italy.
Planta Med. 2019 Feb;85(3):258-265. doi: 10.1055/a-0732-5757. Epub 2018 Sep 11.
Crocin and crocetin are two interesting constituents of saffron () that possess important biological activities. Their use as therapeutic agents is strongly compromised by a scarce stability, poor absorption, and low bioavailability. Therefore, to improve these unfavorable features, the aim of the present work has been to apply a nanotechnological approach based on the formulation of solid lipid nanoparticles containing crocin and crocetin. Solid lipid nanoparticles were formulated according to crocin and crocetin chemical properties, using a variation of the quasi-emulsion solvent diffusion method to formulate crocin-solid lipid nanoparticles, while crocetin-solid lipid nanoparticles were prepared following the solvent diffusion method. Morphology and dimensional distribution of solid lipid nanoparticles have been characterized by differential scanning calorimetry and photon correlation spectroscopy, respectively, while the effect of drug incorporation versus time has been studied by Turbiscan technology. In order to verify the role of the nanotechnological approach on the biological activities of crocin and crocetin, the antioxidant and antiproliferative effects of these carotenoids once incorporated in lipid nanoparticles have been evaluated. For this aim, the oxygen radical absorbance capacity assay and the MTT test were used, respectively.The results pointed out the formulation of nanometric dispersions endowed with high homogeneity and stability, with an encapsulation efficiency ranging from 80 (crocetin-solid lipid nanoparticles) to 94% (crocin-crocetin). The oxygen radical absorbance capacity assay evidenced an interesting and prolonged antioxidant activity of crocin and crocetin once encapsulated in solid lipid nanoparticles, while the nanoencapsulation strategy showed a different mechanism in ameliorating the cytotoxic effect of these two substances.
藏红花素和藏红花酸是藏红花中两种有趣的成分,具有重要的生物活性。它们作为治疗剂的应用因稳定性差、吸收不良和生物利用度低而受到严重影响。因此,为了改善这些不利特性,本研究的目的是应用一种基于制备含有藏红花素和藏红花酸的固体脂质纳米粒的纳米技术方法。根据藏红花素和藏红花酸的化学性质制备固体脂质纳米粒,采用准乳液溶剂扩散法的变体来制备藏红花素固体脂质纳米粒,而藏红花酸固体脂质纳米粒则按照溶剂扩散法制备。分别通过差示扫描量热法和光子相关光谱法对固体脂质纳米粒的形态和尺寸分布进行了表征,同时利用Turbiscan技术研究了药物包封随时间的变化情况。为了验证纳米技术方法对藏红花素和藏红花酸生物活性的作用,评估了这些类胡萝卜素一旦包封在脂质纳米粒中的抗氧化和抗增殖作用。为此,分别使用了氧自由基吸收能力测定法和MTT试验。结果表明,制备出了具有高均匀性和稳定性的纳米分散体,包封效率在80%(藏红花酸固体脂质纳米粒)至94%(藏红花素 - 藏红花酸)之间。氧自由基吸收能力测定法证明,藏红花素和藏红花酸一旦包封在固体脂质纳米粒中就具有有趣且持久的抗氧化活性,而纳米包封策略在改善这两种物质的细胞毒性作用方面显示出不同的机制。