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新型环己烯酮衍生物抑制伤害感受和炎症的作用机制评估:一种体外、体内和计算机模拟方法。

Mechanistic evaluation of a novel cyclohexenone derivative's functionality against nociception and inflammation: An in-vitro, in-vivo and in-silico approach.

机构信息

Department of Pharmacy, University of Peshawar, Peshawar, 25120, Pakistan.

Department of Pharmacy, University of Peshawar, Peshawar, 25120, Pakistan.

出版信息

Eur J Pharmacol. 2021 Jul 5;902:174091. doi: 10.1016/j.ejphar.2021.174091. Epub 2021 Apr 16.

Abstract

The synthesis of a novel cyclohexanone derivative (CHD; Ethyl 6-(4-metohxyphenyl)-2-oxo-4-phenylcyclohexe-3-enecarboxylate) was described and the subsequent aim was to perform an in vitro, in vivo and in silico pharmacological evaluation as a putative anti-nociceptive and anti-inflammatory agent in mice. Initial in vitro studies revealed that CHD inhibited both cyclooxygenase-2 (COX-2) and 5-lipoxygenase (5-LOX) enzymes and it also reduced mRNA expression of COX-2 and the pro-inflammatory cytokines TNF-α and IL-1β. It was then shown that CHD dose dependently inhibited chemically induced tonic nociception in the abdominal constriction assay and also phasic thermal nociception (i.e. anti-nociception) in the hot plate and tail immersion tests in comparison with aspirin and tramadol respectively. The thermal test outcomes indicated a possible moderate centrally mediated anti-nociception which, in the case of the hot plate test, was pentylenetetrazole (PTZ) and naloxone reversible, implicating GABAergic and opioidergic mechanisms. CHD was also effective against both the neurogenic and inflammatory mediator phases induced in the formalin test and it also disclosed anti-inflammatory activity against the phlogistic agents, carrageenan, serotonin, histamine and xylene compared with standard drugs in edema volume tests. In silico studies indicated that CHD possessed preferential affinity for GABA, opioid and COX-2 target sites and this was supported by molecular dynamic simulations where computation of free energy of binding also favored the formation of stable complexes with these sites. These findings suggest that CHD has prospective anti-nociceptive and anti-inflammatory properties, probably mediated through GABAergic and opioidergic interactions supplemented by COX-2 and 5-LOX enzyme inhibition in addition to reducing pro-inflammatory cytokine expression. CHD may therefore possess potentially beneficial therapeutic effectiveness in the management of inflammation and pain.

摘要

描述了一种新型环己酮衍生物(CHD;乙基 6-(4-甲氧基苯基)-2-氧代-4-苯基环己烯-3-烯羧酸酯)的合成,随后的目的是在体外、体内和计算机模拟中评估其作为潜在的抗伤害感受和抗炎药物在小鼠中的作用。初步的体外研究表明,CHD 抑制环氧化酶-2(COX-2)和 5-脂氧合酶(5-LOX)两种酶,还降低 COX-2 和促炎细胞因子 TNF-α 和 IL-1β的 mRNA 表达。随后表明,CHD 剂量依赖性地抑制了化学诱导的腹部收缩试验中的强直伤害感受,并且与阿司匹林和曲马多相比,还抑制了热板和尾部浸浴试验中的相敏热伤害感受(即抗伤害感受)。热试验结果表明,可能存在中度的中枢介导的抗伤害感受,在热板试验中,戊四氮(PTZ)和纳洛酮可逆转,涉及 GABA 能和阿片能机制。CHD 还对福尔马林试验中诱导的神经源性和炎症介质相有效,并且与肿胀体积试验中的标准药物相比,它还对卡拉胶、血清素、组胺和二甲苯等炎症剂显示出抗炎活性。计算机模拟研究表明,CHD 对 GABA、阿片和 COX-2 靶位具有优先亲和力,分子动力学模拟也支持了这一点,其中结合自由能的计算也有利于与这些靶位形成稳定的复合物。这些发现表明,CHD 具有潜在的抗伤害感受和抗炎特性,可能通过 GABA 能和阿片能相互作用介导,此外还通过抑制 COX-2 和 5-LOX 酶以及减少促炎细胞因子的表达。因此,CHD 可能在炎症和疼痛的管理中具有潜在的治疗效果。

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