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Arabian journal of chemistry. 2024 Feb;17(2):105573. doi: 10.1016/j.arabjc.2023.105573

Structure-based design, and development of amidinyl, amidoximyl and hydroxamic acid based organic molecules as novel antimalarial drug candidates

基于结构设计和发展作为新型抗疟疾药物候选者的酰氨甲基、氨基肟基和羟肟酸类有机分子 翻译改进

Glory P Adebayo  1  2, Gbolahan O Oduselu  1, Damilola V Aderohunmu  1, Karel D Klika  3, Grace I Olasehinde  1  2  4, Olayinka O Ajani  1  4  5, Ezekiel Adebiyi  1  4  6  7

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作者单位

  • 1 Covenant University Bioinformatics Research (CUBRe), Covenant University, Ota, Nigeria.
  • 2 Biological Sciences Department, Covenant University, Ota, Nigeria.
  • 3 NMR Structural Analysis, German Cancer Research Center (DKFZ), Heidelberg, Germany.
  • 4 Covenant Applied Informatics and Communication Africa Centre of Excellence (CApIC-ACE), Covenant University, Ota 112233, Nigeria.
  • 5 Department of Chemistry, Covenant University, Covenant University, Km 10 Idiroko Road, P.M.B. 1023 Ota, Ogun State, Nigeria.
  • 6 Department of Computer and Information Sciences, Covenant University, Ota, Nigeria.
  • 7 Division of Applied Bioinformatics, German Cancer Research Center (DKFZ), Heidelberg, Germany.
  • DOI: 10.1016/j.arabjc.2023.105573 PMID: 38283036

    摘要 Ai翻译

    Malaria remains a significant global health concern causing numerous fatalities and the emergence of antimalarial drug resistance highlights the urgent need for novel therapeutic options with innovative mechanisms of action and targets. This study aimed to design potential inhibitors of Plasmodium falciparum 6-pyruvoyltetrahydropterin synthase (PfPTPS), synthesize them, and experimentally validate their efficacy as antimalarial agents. A structure-based approach was employed to design a series of novel derivatives, including amidinyl, amidoximyl and hydroxamic acid analogs (1c, 1d, 2b, and 3b), with a focus on their ability to bind to the Zn2+ present in the active site of PfPTPS. The syntheses of these compounds were accomplished through various multi-step synthetic pathways and their structural identities were confirmed using 1H and 13C NMR spectra, mass spectra, and elemental analysis. The compounds were screened for their antiplasmodial activity against the NF54 strain of P. falciparum and in vitro cytotoxicity testing was performed using L-6 cells. The in vivo acute toxicity of the compounds was evaluated in mice. Docking studies of the compounds with the 3D structure of PfPTPS revealed their strong binding affinities, with compound 3b exhibiting notable metal-acceptor interaction with the Zn2+ in the protein binding pocket thereby positioning it as a lead compound for PfPTPS inhibition. The in vitro antiplasmodial studies revealed moderate efficacies against the Pf NF54 strain, particularly compounds 1d and 3b which displayed IC50 < 0.2 μM. No significant cytotoxicity was noted on the L-6 rat cell line. Moreover, in vivo studies suggested that compound 3b exhibited both safety and efficacy in treating rodent malaria. The identified lead compound in this study represents a possible candidate for antimalarial drug development and can be further explored in the search for alternative antifolate drugs to combat the malaria menace.

    Keywords: Acute toxicity; Cytotoxicity; Hydroxamic acids; Malaria; Suppression.

    Keywords:Structure-based design; amidinyl; amidoximyl; antimalarial drug candidates

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