Targeting Matrix Metalloproteinase-3 for Dental Caries Prevention Using Herbal Isolates: MMP3 Inhibition by Cinnamic Acids.

IF 1.9 Q2 DENTISTRY, ORAL SURGERY & MEDICINE
International Journal of Dentistry Pub Date : 2024-10-08 eCollection Date: 2024-01-01 DOI:10.1155/2024/9970824
Mahdieh Salman, Bahareh Asgartooran, Amir Taherkhani
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Abstract

Objectives: Dental caries, a prevalent infectious disease affecting teeth, ranks highest among 328 diseases, according to a 2017 Lancet study. In demineralized human dentin, matrix metalloproteinase-3 (MMP3) functions as a proteoglycanase, contributing to the degradation of proteoglycan components. This process exposes collagen fibrils, thereby facilitating the demineralization of the dentin matrix. Inhibiting MMP3 shows potential for preventing dental caries. Methods: The binding affinity of 20 cinnamic acid derivatives, namely cynarin, chlorogenic acid, rosmarinic acid, cinnamyl caffeate, phenethyl caffeate, N-p-coumaroyltyramine, caffeic acid 3-glucoside, caffeic acid phenethyl ester, roscovitine, benzyl caffeate, o-coumaric acid, artepillin C, caffeic acid, methyl caffeate, 2-methylcinnamic acid, ferulic acid, drupanin, p-coumaric acid, cinnamic acid, and sinapinic acid, to the MMP3 catalytic cleft, was assessed utilizing AutoDock 4.0. Molecular dynamics simulation was then employed to analyze the stability of backbone atoms in free MMP3, MMP3-positive control inhibitor, and MMP3 complexed with the top-ranked cinnamic acid over a 100 ns computer simulation. Results: Four cinnamic acids demonstrated ΔG binding scores below -10 kcal/mol, with cynarin emerging as the most potent MMP3 inhibitor, featuring a ΔG binding score and inhibition constant value of -15.57 kcal/mol and 3.83 pM, respectively. The MMP3-cynarin complex exhibited stability after a 50 ns computer simulation, showing a root-mean-square deviation of 8 Å. Conclusions: The inhibition of MMP3 by cynarin, chlorogenic acid, rosmarinic acid, and cinnamyl caffeate holds promise as a potential preventive strategy for dental caries.

利用草本分离物靶向基质金属蛋白酶-3预防龋齿:肉桂酸对 MMP3 的抑制作用。
目的:根据 2017 年《柳叶刀》杂志的一项研究,龋齿是一种影响牙齿的流行性传染病,在 328 种疾病中排名最高。在脱矿的人类牙本质中,基质金属蛋白酶-3(MMP3)发挥着蛋白多糖酶的作用,促进蛋白多糖成分的降解。这一过程暴露了胶原纤维,从而促进了牙本质基质的脱矿化。抑制 MMP3 有助于预防龋齿。方法:20种肉桂酸衍生物的结合亲和力,这些衍生物分别是肉桂醛、绿原酸、迷迭香酸、咖啡酸肉桂酯、咖啡酸苯乙酯、N-对香豆酰酪胺、咖啡酸 3-葡萄糖苷、咖啡酸苯乙酯、迷迭香碱、利用 AutoDock 4 评估了 MMP3 催化裂隙中的咖啡酸、邻香豆酸、青蒿素 C、咖啡酸、咖啡酸甲酯、2-甲基肉桂酸、阿魏酸、drupanin、对香豆酸、肉桂酸和山奈酸的含量。0.然后利用分子动力学模拟分析了游离 MMP3、MMP3 阳性对照抑制剂以及与排名第一的肉桂酸复配的 MMP3 在 100 ns 计算机模拟中骨架原子的稳定性。结果显示四种肉桂酸的ΔG结合分数低于-10 kcal/mol,其中肉桂醛是最有效的MMP3抑制剂,其ΔG结合分数和抑制常数值分别为-15.57 kcal/mol和3.83 pM。经过 50 毫微秒的计算机模拟,MMP3-柚皮苷复合物表现出稳定性,均方根偏差为 8 Å。结论姜花素、绿原酸、迷迭香酸和咖啡酸肉桂酯对 MMP3 的抑制作用有望成为一种潜在的龋齿预防策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Dentistry
International Journal of Dentistry DENTISTRY, ORAL SURGERY & MEDICINE-
CiteScore
3.30
自引率
4.80%
发文量
219
审稿时长
20 weeks
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