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Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs

Protein tyrosine kinases (PTKs) are the most potential therapeutic targets for cancer. Herein, we present a sound rationale for synthesis of a series of novel 2-(methylthio), 2-(substituted alkylamino), 2-(heterocyclic substituted), 2-amino, 2,4-dioxo and 2-deoxo-5-deazaalloxazine derivatives by app...

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Autores principales: Mahmoud, Sawsan, Samaha, Doaa, Mohamed, Mosaad S., Abou Taleb, Nageh A., Elsawy, Mohamed A., Nagamatsu, Tomohisa, Ali, Hamed I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321323/
https://www.ncbi.nlm.nih.gov/pubmed/32481639
http://dx.doi.org/10.3390/molecules25112518
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author Mahmoud, Sawsan
Samaha, Doaa
Mohamed, Mosaad S.
Abou Taleb, Nageh A.
Elsawy, Mohamed A.
Nagamatsu, Tomohisa
Ali, Hamed I.
author_facet Mahmoud, Sawsan
Samaha, Doaa
Mohamed, Mosaad S.
Abou Taleb, Nageh A.
Elsawy, Mohamed A.
Nagamatsu, Tomohisa
Ali, Hamed I.
author_sort Mahmoud, Sawsan
collection PubMed
description Protein tyrosine kinases (PTKs) are the most potential therapeutic targets for cancer. Herein, we present a sound rationale for synthesis of a series of novel 2-(methylthio), 2-(substituted alkylamino), 2-(heterocyclic substituted), 2-amino, 2,4-dioxo and 2-deoxo-5-deazaalloxazine derivatives by applying structure-based drug design (SBDD) using AutoDock 4.2. Their antitumor activities against human CCRF-HSB-2, KB, MCF-7 and HeLa have been investigated in vitro. Many 5-deazaalloxazine analogs revealed high selective activities against MCF-7 tumor cell lines (IC(50): 0.17–2.17 µM) over HeLa tumor cell lines (IC(50) > 100 µM). Protein kinase profiling revealed that compound 3h induced multi- targets kinase inhibition including −43% against (FAK), −40% against (CDKI) and −36% against (SCR). Moreover, the Annexin-V/PI apoptotic assay elucidate that compound 3h showed 33% and potentially 140% increase in early and late apoptosis to MCF-7 cells respectively, compared to the control. The structure-activity relationship (SAR) and molecular docking study using PTK as a target enzyme for the synthesized 7-deazaalloaxazine derivatives were investigated as potential antitumor agents. The AutoDock binding affinities of the 5-deazaalloxazine analogs into c-kit PTK (PDB code: 1t46) revealed reasonable correlations between their AutoDock binding free energy and IC(50).
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spelling pubmed-73213232020-06-29 Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs Mahmoud, Sawsan Samaha, Doaa Mohamed, Mosaad S. Abou Taleb, Nageh A. Elsawy, Mohamed A. Nagamatsu, Tomohisa Ali, Hamed I. Molecules Article Protein tyrosine kinases (PTKs) are the most potential therapeutic targets for cancer. Herein, we present a sound rationale for synthesis of a series of novel 2-(methylthio), 2-(substituted alkylamino), 2-(heterocyclic substituted), 2-amino, 2,4-dioxo and 2-deoxo-5-deazaalloxazine derivatives by applying structure-based drug design (SBDD) using AutoDock 4.2. Their antitumor activities against human CCRF-HSB-2, KB, MCF-7 and HeLa have been investigated in vitro. Many 5-deazaalloxazine analogs revealed high selective activities against MCF-7 tumor cell lines (IC(50): 0.17–2.17 µM) over HeLa tumor cell lines (IC(50) > 100 µM). Protein kinase profiling revealed that compound 3h induced multi- targets kinase inhibition including −43% against (FAK), −40% against (CDKI) and −36% against (SCR). Moreover, the Annexin-V/PI apoptotic assay elucidate that compound 3h showed 33% and potentially 140% increase in early and late apoptosis to MCF-7 cells respectively, compared to the control. The structure-activity relationship (SAR) and molecular docking study using PTK as a target enzyme for the synthesized 7-deazaalloaxazine derivatives were investigated as potential antitumor agents. The AutoDock binding affinities of the 5-deazaalloxazine analogs into c-kit PTK (PDB code: 1t46) revealed reasonable correlations between their AutoDock binding free energy and IC(50). MDPI 2020-05-28 /pmc/articles/PMC7321323/ /pubmed/32481639 http://dx.doi.org/10.3390/molecules25112518 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mahmoud, Sawsan
Samaha, Doaa
Mohamed, Mosaad S.
Abou Taleb, Nageh A.
Elsawy, Mohamed A.
Nagamatsu, Tomohisa
Ali, Hamed I.
Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs
title Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs
title_full Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs
title_fullStr Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs
title_full_unstemmed Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs
title_short Design, Synthesis, Antitumor Activity and Molecular Docking Study of Novel 5-Deazaalloxazine Analogs
title_sort design, synthesis, antitumor activity and molecular docking study of novel 5-deazaalloxazine analogs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321323/
https://www.ncbi.nlm.nih.gov/pubmed/32481639
http://dx.doi.org/10.3390/molecules25112518
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