新型 1,2,3,4-四嗪、1,2,3-三唑和香豆素衍生物及其纳米封装的设计、合成和抗氧化活性

Oznur Eyilcim, Burcu Belmen, Irem Coksu, Serap Acar, C. Yolacan, Omer Tahir Gunkara
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摘要

含氮杂环化合物具有抗菌、抗病毒、抗结核、抗癌、镇痛、抗氧化、抗炎和抗抑郁等生物活性,因此目前被广泛应用于医药和农业领域。1,2,3,4-四嗪和 1,2,3-三唑就是高氮杂环化合物的例子。香豆素则是内酯类化合物,是植物中的一类含氧杂环化合物。本文设计并合成了两种 1,2,3,4-四嗪类似物、两种 1,2,3-三唑类似物和五种香豆素类似物。通过检测它们的傅立叶变换红外光谱、1H-核磁共振和 13C-NMR (APT) 光谱,确定了它们的化学结构。使用 1,1-二苯基-2-苦基肼(DPPH)法比较了所有合成分子在固定浓度(0.25 mg/mL)下的抗氧化活性。作为示范研究,采用水包油(o/w)单乳液溶剂蒸发法将抗氧化活性最高的分子 9c 和 9e 装入 PLGA(聚乳酸-共聚乙醇酸)纳米颗粒中。合成的纳米粒子具有粒度、zeta 电位、官能团、形态和释放特性。经测定,9c/NP 的粒径和 zeta 电位分别为 216.1±8.944 nm 和 -14.1±2.40 mV。9e/NP 的粒度和 zeta 电位分别为 222.0±12.490 nm 和 -12.4±1.42 mV。在模型纳米粒子系统上获得的研究结果阐明了其理化性质,可能为未来氧化应激相关疾病的治疗提供了有前景的依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design, synthesis and anti-oxidant activities of novel 1,2,3,4-tetrazine, 1,2,3-triazoles and coumarin derivatives and their nanoparticular encapsulation
Nitrogen-containing heterocyclic compounds are currently used for a number of pharmaceutical and agricultural applications because they have biological activities such as antimicrobial, antiviral, antituberculosis, anticancer, analgesic, antioxidant, anti-inflammatory and antidepressant. 1,2,3,4-Tetrazines and 1,2,3-triazoles are examples of high-nitrogen heterocyclic compounds. Coumarins, on the other hand, are lactones that form a group of oxygenated heterocyclic compounds found in plants. In this article, two analogs of 1,2,3,4-tetrazine, two analogs of 1,2,3-triazole and five analogs of coumarin were designed and synthesized. Their chemical structures were characterized by detecting their FTIR, 1H-NMR, and 13C-NMR (APT) spectra. The antioxidant activities of all synthesized molecules were compared at a fixed concentration (0.25 mg/mL) using the 1,1-diphenyl-2-picrylhydrazyl (DPPH) method. Molecules 9c and 9e, which showed the highest antioxidant activity, were loaded into PLGA (poly(lactic-co-glycolic) acid) nanoparticles using the oil in water (o/w) single emulsion solvent evaporation method as a model study. Synthesized nanoparticles characterized for particle size, zeta potential, functional groups, morphology, and release properties. Particle size and zeta potential of 9c/NP were determined as 216.1±8.944 nm and -14.1±2.40 mV, respectively. The particle size and zeta potential for 9e/NP were measured as 222.0±12.490 nm and -12.4±1.42 mV respectively. The study results obtained on model nanoparticle systems with elucidated physicochemical properties may have the potential to provide a promising basis for oxidative stress-related diseases in the future.
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