Design, Hemisynthesis, Characterization, Molecular Docking, and Dynamics Evaluation of Novel Totarol-1,2,3-Triazole Derivatives as Leishmaniasis and Toxoplasmosis Agents

IF 3.2 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ayoub Boualli, Yassine Laamari, Abdoullah Bimoussa, Syeda Abida Ejaz, Hafiz Muhammad Attaullah, Abdelkhalek Riahi, Anthony Robert, Jean-Claude Daran, Ibrahim S. Al Nasr, Waleed S. Koko, Tariq A. Khan, Bernhard Biersack, Aziz Auhmani, My Youssef Ait Itto
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引用次数: 0

Abstract

Tropical parasitic diseases like leishmaniasis pose significant public health challenges, impacting millions of individuals globally. Current drug treatments for these diseases have notable drawbacks and side effects, underscoring the pressing need for new medications with improved selectivity and reduced toxicity. Through structural modifications of both natural and synthetic compounds using click chemistry, researchers have been able to produce derivatives showing promising activity against these parasites. In this study, 21 novel 1,2,3-triazole analogues of totarol were synthesized using O-propargylated totarol derivatives and substituted arylazide. These compounds were characterized through various analytical techniques, including 1H NMR, 13C NMR, and HRMS. An x-ray crystallographic study of compounds 4 and 6 was carried out to fully establish the structure of the newly prepared totarol derivatives. All synthesized compounds were then screened in vitro for their antileishmanial activities against Leishmania major promastigotes, amastigotes, and Toxoplasma gondii tachyzoites Out of the tested analogues, six compounds (7c, 8b–e, and 9 g) displayed antileishmanial activity against L. major amastigotes with IC50 17.3, 14.2, 13.1 18.2 13.2 and 17.3 μg mL−1 respectively, while only 8e gave antileishmanial activity against both promastigotes and amastigotes with IC50 11.7 and 13.2 μg mL−1 respectively. Additionally, the presence of a nitro group was correlated with enhanced antileishmanial activity. Moreover, a molecular docking study was conducted, focusing on 8e, the most active antileishmanial compound, to elucidate its putative binding pattern at the active site of the selected leishmanial trypanothione reductase target.

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来源期刊
Chemical Biology & Drug Design
Chemical Biology & Drug Design 医学-生化与分子生物学
CiteScore
5.10
自引率
3.30%
发文量
164
审稿时长
4.4 months
期刊介绍: Chemical Biology & Drug Design is a peer-reviewed scientific journal that is dedicated to the advancement of innovative science, technology and medicine with a focus on the multidisciplinary fields of chemical biology and drug design. It is the aim of Chemical Biology & Drug Design to capture significant research and drug discovery that highlights new concepts, insight and new findings within the scope of chemical biology and drug design.
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