关于 COX 抑制和 H2S 释放特征的新异硫氰酸盐衍生物的合成、硅学和生物评估研究。

IF 4.1 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yakup Berkay Yilmaz, Tuğba Güngör, Serhat Dönmez, Hazal Nazlıcan Atalay, Pınar Siyah, Serdar Durdağı, Mehmet Ay, Tugba Boyunegmez Tumer
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引用次数: 0

摘要

开发非甾体抗炎药(NSAIDs)的 H2S 供体衍生物对于减少或克服其胃肠道副作用非常重要。红豆杉是研究最为广泛的异硫氰酸盐(ITC)之一,它能以缓慢的速度有效释放 H2S。因此,我们从天然化合物 sulforaphane 中汲取灵感,合理地设计、合成了新的 ITC 衍生物(I1-3 和 I1a-e),并对其进行了表征。这些化合物对环氧合酶靶标 COX-1 和 COX-2 的抑制活性评估了它们的抗炎特性。此外,还使用 MTT 法测试了这些化合物对 LPS 诱导的 RAW 264.7 细胞的细胞毒性,结果表明低剂量时无细胞毒性作用。值得注意的是,化合物 I1 和含氟酯衍生物 I1c 是最有效和最具选择性的 COX-2 抑制剂,其选择性指数分别为 2611.5 和 2582.4。ITC衍生物的H2S释放能力研究表明,I1-3化合物的H2S释放缓慢且与舒拉萘相似,而I1a-e化合物的释放能力则不如标准化合物明显。此外,还进行了基于物理的分子建模研究,包括分子对接和分子动力学(MD)模拟、结合自由能计算以及吸收、分布、代谢和排泄(ADME)分析。MD 模拟分析强调了 Tyr385、Trp387、Phe518、Val523 和 Ser530 等氨基酸在 I1c 命中化合物与 COX-2 的相互作用中的关键作用。硅学和体外研究的综合结果表明,化合物 I1 和 I1c 是很有前途的非甾体抗炎药候选化合物,可选择性地抑制 COX-2。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis, in silico and bio-evaluation studies of new isothiocyanate derivatives with respect to COX inhibition and H2S release profiles.

The development of H2S-donating derivatives of non-steroidal anti-inflammatory drugs (NSAIDs) is considered important to reduce or overcome their gastrointestinal side effects. Sulforaphane, one of the most extensively studied isothiocyanates (ITCs), effectively releases H2S at a slow rate. Thus, we rationally designed, synthesized, and characterized new ITC derivatives (I1-3 and I1a-e) inspired by the natural compound sulforaphane. The anti-inflammatory properties of these compounds were evaluated by their inhibitory activities against cyclooxygenase targets COX-1 and COX-2. Additionally, the cytotoxicity of the compounds was tested using the MTT assay on LPS-induced RAW 264.7 cells, revealing no cytotoxic effects at low doses. Notably, compounds I1 and fluorine-containing ester derivative I1c emerged as the most potent and selective COX-2 inhibitors, with selectivity indexes of 2611.5 and 2582.4, respectively. The H2S-releasing capacities of ITC derivatives were investigated and compared with that of sulforaphane, showing that while compounds I1-3 exhibit slow and similar H2S release to sulforaphane, the release from compounds I1a-e was not as pronounced as that of the standard. Physics-based molecular modeling studies including molecular docking and molecular dynamics (MD) simulations, binding free energy calculations and absorption, distribution, metabolism, and excretion (ADME) analyses were also conducted. MD simulations analysis underscored the crucial amino acids such as Tyr385, Trp387, Phe518, Val523, and Ser530 in the interactions between I1c hit compound and COX-2. The combined in silico and in vitro findings suggest that compounds I1 and I1c are promising NSAID candidates against selective COX-2 inhibition.

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来源期刊
CiteScore
5.80
自引率
2.40%
发文量
129
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