Synthesis And In-Silico Anti-Cancer Potential of N-Aryl-Keto-Nitrone As A Spin Adducts

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Abstract

Introduction: This study explores N-Aryl-Keto-Nitrone synthesis and its impact on spin-trapping chemistry, revealing crucial insights into free radicals' roles in diseases. While aldo-nitrones are well-studied, keto-nitrones, especially linear ones, are underexplored as spin traps. Seven novel keto-nitrones are introduced, and their efficacy in capturing carbon-centered radicals is assessed. Methods: Synthesis involves dissolving N-aryl-nitroso compounds in THF, adding NaOH, and introducing dimethyl or diethyl bromo malonate. Thin-layer chromatography monitors the reaction, yielding crude keto-nitrones purified through extraction, drying, and recrystallization. Spin trapping experiments use various radical sources, analyzed by EPR at room temperature. In silico predictions assess ADME properties, P-glycoprotein substrate potential, and molecular docking explores binding orientations with VEGFR2 and EGFR. Results: Diverse N-aryl-keto-nitrones with unique structures and reactivity towards carbon-centered radicals are successfully synthesized. Enhanced interpretability is observed in penta-deuterated compounds N6 and N7. The compounds exhibit varying lipophilicity and resistance to oxidative or reducing agents, broadening their potential applications. In silico predictions show favorable properties, and the compounds demonstrate potential as VEGFR1 downregulators, suggesting applications in disrupting angiogenic signals in cancers. Conclusion: This research advances spin-trapping chemistry by introducing linear keto-nitrones as effective agents. The synthesized compounds demonstrate versatility and impact, with ongoing research focusing on additional applications and refinement for practical use.
N-Aryl-Keto-Nitrone 自旋加合物的合成及其体内抗癌潜力
导言:本研究探讨了 N-芳基酮的合成及其对自旋捕获化学的影响,揭示了自由基在疾病中的重要作用。虽然醛基硝基化合物已被广泛研究,但酮基硝基化合物,尤其是线性酮基硝基化合物,作为自旋俘获物还未被充分开发。本文介绍了七种新型酮硝基化合物,并评估了它们捕获碳中心自由基的功效。方法:合成过程包括将 N-芳基亚硝基化合物溶解在 THF 中,加入 NaOH,并引入溴丙二酸二甲酯或溴丙二酸二乙酯。薄层色谱法对反应进行监控,通过萃取、干燥和重结晶等步骤提纯出粗略的酮亚硝基化合物。自旋捕获实验使用各种自由基源,在室温下通过 EPR 进行分析。硅学预测评估了 ADME 特性、P-糖蛋白底物潜力,分子对接探讨了与血管内皮生长因子受体 2 和表皮生长因子受体的结合方向。结果:成功合成了具有独特结构和碳中心自由基反应活性的多种 N-芳基酮硝基脲。在五氘代化合物 N6 和 N7 中观察到更强的可解释性。这些化合物表现出不同的亲脂性和抗氧化或还原剂的能力,从而拓宽了其潜在的应用领域。硅学预测显示,这些化合物具有良好的特性,具有作为血管内皮生长因子受体 1 下调剂的潜力,可用于破坏癌症中的血管生成信号。结论这项研究通过引入线性酮硝基化合物作为有效制剂,推动了自旋捕获化学的发展。合成的化合物展示了其多功能性和影响力,目前的研究重点是更多的应用和实际用途的完善。
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