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Multi-Target Cinnamic Acids for Oxidative Stress and Inflammation: Design Synthesis Biological Evaluation and Modeling Studies

机译:用于氧化应激和炎症的多目标肉桂酸:设计合成生物学评估和模型研究

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摘要

Inflammation is a complex phenomenon that results as a healing response of organisms to different factors, exerting immune signaling, excessive free radical activity and tissue destruction. Lipoxygenases and their metabolites e.g., LTB4, are associated with allergy, cell differentiation and carcinogenesis. Lipoxygenase 12/15 has been characterized as a mucosal-specific inhibitor of IgA and a contributor to the development of allergic sensitization and airway inflammation. Development of drugs that interfere with the formation or effects of these metabolites would be important for the treatment of various diseases like asthma, psoriasis, ulcerative colitis, rheumatoid arthritis, atherosclerosis, cancer and blood vessel disorders. In this study we extended our previous research synthesizing a series of multi-target cinnamic acids from the corresponding aldehydes with suitable 4-OH/Br substituted phenyl acetic acid by Knoevenagel condensation. The final products >1i, >3i, >3ii, >4i, >6i, >6ii, and >7i were obtained in high yields (52–98%) Their structures were verified spectrometrically, while their experimentally lipophilicity was determined as RM values. The novel derivatives were evaluated for their antioxidant activity using DPPH, hydroxyl radical, superoxide anion and ABTS+•, anti-lipid peroxidation and soybean lipoxygenase inhibition assays. The compounds presented medium interaction with DPPH (30–48% at 100 µM). In contrast all the synthesized derivatives strongly scavenge OH radicals (72–100% at 100 µM), ABTS+• (24–83% at 100 µM) and presented remarkable inhibition (87–100% at 100 µM) in linoleic acid peroxidation (AAPH). The topological polar surface of the compounds seems to govern the superoxide anion scavenging activity. Molecular docking studies were carried out on cinnamic acid derivative >3i and found to be in accordance with experimental biological results. All acids presented interesting lipoxygenase inhibition (IC50 = 7.4–100 µM) with compound >3i being the most potent LOX inhibitor with IC50 = 7.4 µM combining antioxidant activities. The antioxidant results support the LOX inhibitory activities. The recorded in vitro results highlight compound >3i as a lead compound for the design of new potent lipoxygenase inhibitors for the treatment of asthma, psoriasis, ulcerative colitis, rheumatoid arthritis, atherosclerosis, cancer and blood vessel disorders.
机译:炎症是一种复杂的现象,导致生物体对不同因素的愈合反应,产生免疫信号,过度的自由基活性和组织破坏。脂氧合酶及其代谢产物,例如LTB4,与过敏,细胞分化和致癌作用有关。脂氧合酶12/15已被表征为IgA的粘膜特异性抑制剂,并且是过敏性致敏和气道炎症发展的原因。干扰这些代谢物形成或作用的药物的开发对于治疗各种疾病如哮喘,牛皮癣,溃疡性结肠炎,类风湿性关节炎,动脉粥样硬化,癌症和血管疾病非常重要。在这项研究中,我们扩展了先前的研究,通过Knoevenagel缩合反应,从相应的醛与合适的4-OH / Br取代的苯基乙酸合成了一系列多目标肉桂酸。最终产品> 1i ,> 3i ,> 3ii ,> 4i ,> 6i , > 6ii 和> 7i 以高收率(52–98%)获得。通过光谱法验证了其结构,而将其亲脂性实验确定为RM值。使用DPPH,羟基自由基,超氧阴离子和ABTS +•,抗脂质过氧化和大豆脂加氧酶抑制试验评估了这些新型衍生物的抗氧化活性。这些化合物与DPPH具有中等相互作用(100 µM时为30–48%)。相反,所有合成的衍生物都强烈清除OH自由基(在100 µM时为72–100%),ABTS +•(在100 µM时为24–83%)并表现出显着的抑制作用(在100 µM时为87–100%亚油酸过氧化(AAPH)中的浓度(μM)。化合物的拓扑极性表面似乎决定了超氧阴离子的清除活性。对肉桂酸衍生物> 3i 进行了分子对接研究,发现与实验生物学结果相符。所有酸都表现出有趣的脂氧合酶抑制作用(IC50 = 7.4–100 µM),化合物> 3i 是最有效的LOX抑制剂,IC50 = 7.4 µM,具有抗氧化活性。抗氧化剂结果支持LOX抑制活性。记录的体外结果突出了化合物> 3i 作为设计新型有效脂氧合酶抑制剂的主要化合物,该抑制剂可用于治疗哮喘,牛皮癣,溃疡性结肠炎,类风湿性关节炎,动脉粥样硬化,癌症和血管疾病。

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