利用硫代巴比妥酸支架探索双希夫碱:体外尿素酶抑制、抗氧化特性和硅学研究

IF 1.1 4区 化学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Russian Journal of Bioorganic Chemistry Pub Date : 2024-10-09 DOI:10.1134/S1068162024050030
Saba Gul, Safia Maab, Huma Rafiq, Aftab Alam, Munir Ur Rehman, Mohammad Assad, Abdullah F. AlAsmari, Fawaz Alasmari, Muhammad Ibrahim, Momin Khan
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引用次数: 0

摘要

目的:本研究的主要目的是合成硫代巴比妥酸双希夫碱衍生物,并评估其抑制脲酶的能力和清除 DPPH 自由基的潜力。研究方法将 2,4-二羟基苯甲醛和起始分子 1,3-二乙基-2-硫代巴比妥酸在乙醇中回流处理,然后在 DMF 溶剂中处理氯乙酸乙酯,合成硫代巴比妥酸衍生双席夫碱 (IIIa-III)。然后,在乙酸催化下,在乙醇中通过回流与苯甲醛进一步反应,得到化合物 (IIIa-IIIi),收率极高。结果:对所得化合物进行了抑制脲酶和清除 DPPH 自由基活性的测试。在这一系列化合物中,化合物 (IIId) (IC50 = 16.11 ± 0.92 µM)、(IIIc) (IC50 = 19.11 ± 0.55 µM)和 (IIIf) (IC50 = 21.01 ± 1.42 µM)被认为是很有前景的脲酶抑制剂,比标准硫脲(IC50 = 21.15 ± 0.32 µM)更强。此外,与标准抗坏血酸相比,化合物 (IIIa) (IC50 = 40.21 ± 0.12 µM)是一种出色的抗氧化剂。分子对接研究分析了对脲酶最有效的化合物。研究结果还表明,所有化合物都具有良好的 ADME 特性,在化合物范围内未发现任何违规现象,均符合药物易用性标准。结合体内、毒理学和计算分析进行更多的研究,可以深入了解这些潜在有益抗氧化物质的有效性、安全性和基本作用机制。结论:这些化合物显示出作为 DPPH 自由基清除剂和脲酶抑制剂的巨大潜力。化合物(IIId)对脲酶活性的抑制作用最强,但化合物(IIIa)的抗氧化效果更优。要彻底评估这些令人感兴趣的抗氧化分子的有效性、安全性和基本作用机制,还需要进行更多的研究,包括体内研究、毒理学研究和计算研究。
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Exploring bis-Schiff Bases with Thiobarbiturate Scaffold: In Vitro Urease Inhibition, Antioxidant Properties, and In Silico Studies

Objective: The main objective of this work is to synthesize thiobarbituric acid based bis-Schiff base derivatives and to evaluate their ability to inhibit urease enzyme and DPPH free radical scavenging potential. Methods: Thiobarbituric acid derived bis-Schiff bases (IIIa–IIIi) were synthesized by treating 2,4-dihydroxybenzaldehyde and the starting moiety 1,3-diethyl-2-thiobarbituric acid in ethanol through refluxed followed by treating chloro ethyl acetate in DMF solvent. Subsequently, hydrazine hydrate was added to compound (II), yielding bis-hydrazide in better yield, which was further reacted via refluxed with benzaldehydes in ethanol, catalyzed by acetic acid to yield compounds (IIIa–IIIi) in excellent yields. Results: The resulting compounds were tested to inhibit urease enzyme and DPPH free radical scavenging activity. Among the series, compound (IIId) (IC50 = 16.11 ± 0.92 µM), (IIIc) (IC50 = 19.11 ± 0.55 µM), and (IIIf) (IC50 = 21.01 ± 1.42 µM) were found as promising lead urease inhibitors, stronger than the standard thiourea (IC50 = 21.15 ± 0.32 µM). Moreover, compound (IIIa) (IC50 = 40.21 ± 0.12 µM) was found as the excellent antioxidant agent comparing it with the standard ascorbic acid. Molecular docking study was performed to analyze the most potent compounds against urease enzyme. The results also shows that all compounds had good ADME properties there was no violation found in compounds ranges all are under druglikness criteria. Additional research combining in vivo, toxicological, and computational analyses can offer thorough understandings of the effectiveness, safety, and fundamental mechanisms of action of these potentially beneficial antioxidant substances. Conclusions: These compounds showed tremendous potential as DPPH free radical scavengers and urease enzyme inhibitors. Compound (IIId) demonstrated the greatest suppression of urease enzyme activity, however compound (IIIa) displayed superior antioxidant effects. Additional research, incorporating in vivo, toxicological, and computational examinations, is necessary to thoroughly assess the effectiveness, safety, and fundamental mechanisms of action of these intriguing antioxidant molecules.

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来源期刊
Russian Journal of Bioorganic Chemistry
Russian Journal of Bioorganic Chemistry 生物-生化与分子生物学
CiteScore
1.80
自引率
10.00%
发文量
118
审稿时长
3 months
期刊介绍: Russian Journal of Bioorganic Chemistry publishes reviews and original experimental and theoretical studies on the structure, function, structure–activity relationships, and synthesis of biopolymers, such as proteins, nucleic acids, polysaccharides, mixed biopolymers, and their complexes, and low-molecular-weight biologically active compounds (peptides, sugars, lipids, antibiotics, etc.). The journal also covers selected aspects of neuro- and immunochemistry, biotechnology, and ecology.
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