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DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach

[Image: see text] A new quercetin-based iron(III) cationic complex [Fe(Qr)Cl(H(2)O)(MeO)] (complex 1) is created in the current study by condensation of quercetin with ferric chloride in the presence of Et(3)N. Comprehensive spectroscopic analysis and conductometric measurement are used to pinpoint...

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Autores principales: Bera, Manjushree, Das, Manik, Dolai, Malay, Laha, Soumik, Islam, Md Maidul, Samanta, Bidhan Chandra, Das, Arindam, Choudhuri, Indranil, Bhattacharyya, Nandan, Maity, Tithi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835804/
https://www.ncbi.nlm.nih.gov/pubmed/36643564
http://dx.doi.org/10.1021/acsomega.2c05790
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author Bera, Manjushree
Das, Manik
Dolai, Malay
Laha, Soumik
Islam, Md Maidul
Samanta, Bidhan Chandra
Das, Arindam
Choudhuri, Indranil
Bhattacharyya, Nandan
Maity, Tithi
author_facet Bera, Manjushree
Das, Manik
Dolai, Malay
Laha, Soumik
Islam, Md Maidul
Samanta, Bidhan Chandra
Das, Arindam
Choudhuri, Indranil
Bhattacharyya, Nandan
Maity, Tithi
author_sort Bera, Manjushree
collection PubMed
description [Image: see text] A new quercetin-based iron(III) cationic complex [Fe(Qr)Cl(H(2)O)(MeO)] (complex 1) is created in the current study by condensation of quercetin with ferric chloride in the presence of Et(3)N. Comprehensive spectroscopic analysis and conductometric measurement are used to pinpoint complex 1. The generated complex’s +3-oxidation state has been verified by electron paramagnetic resonance (EPR) research. Density functional theory analysis was used to structurally optimize the structure of complex 1. Before biomedical use, a variety of biophysical studies are implemented to evaluate the binding capacity of complex 1 with DNA and human serum albumin (HSA) protein. The findings of the electronic titration between complex 1 and DNA, as well as the stunning fall in the fluorescence intensities of the HSA and EtBr-DNA/DAPI-DNA domain after complex 1 is gradually added, give us confidence that complex 1 has a strong affinity for both macromolecules. It is interesting to note that the displacement experiment confirms partial intercalation as well as the groove binding mechanism of the title complex with DNA. The time-dependent fluorescence analysis indicates that after interaction with complex 1, HSA will exhibit static quenching. The thermodynamic parameter values in the HSA–complex 1 interaction provide evidence for the hydrophobicity-induced pathway leading to spontaneous protein–complex 1 interaction. The two macromolecules’ configurations are verified to be preserved when they are associated with complex 1, and this is done via circular dichroism spectral titration. The molecular docking investigation, which is a theoretical experiment, provides complete support for the experimental findings. The potential of the investigated complex to be an anticancer drug has been examined by employing the MTT assay technique, which is carried out on HeLa cancer cell lines and HEK-293 normal cell lines. The MTT assay results validate the ability of complex 1 to display significant anticancer properties. Finally, by using the AO/PI staining approach, the apoptotic-induced cell-killing mechanism as well as the detection of cell morphological changes has been confirmed.
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spelling pubmed-98358042023-01-13 DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach Bera, Manjushree Das, Manik Dolai, Malay Laha, Soumik Islam, Md Maidul Samanta, Bidhan Chandra Das, Arindam Choudhuri, Indranil Bhattacharyya, Nandan Maity, Tithi ACS Omega [Image: see text] A new quercetin-based iron(III) cationic complex [Fe(Qr)Cl(H(2)O)(MeO)] (complex 1) is created in the current study by condensation of quercetin with ferric chloride in the presence of Et(3)N. Comprehensive spectroscopic analysis and conductometric measurement are used to pinpoint complex 1. The generated complex’s +3-oxidation state has been verified by electron paramagnetic resonance (EPR) research. Density functional theory analysis was used to structurally optimize the structure of complex 1. Before biomedical use, a variety of biophysical studies are implemented to evaluate the binding capacity of complex 1 with DNA and human serum albumin (HSA) protein. The findings of the electronic titration between complex 1 and DNA, as well as the stunning fall in the fluorescence intensities of the HSA and EtBr-DNA/DAPI-DNA domain after complex 1 is gradually added, give us confidence that complex 1 has a strong affinity for both macromolecules. It is interesting to note that the displacement experiment confirms partial intercalation as well as the groove binding mechanism of the title complex with DNA. The time-dependent fluorescence analysis indicates that after interaction with complex 1, HSA will exhibit static quenching. The thermodynamic parameter values in the HSA–complex 1 interaction provide evidence for the hydrophobicity-induced pathway leading to spontaneous protein–complex 1 interaction. The two macromolecules’ configurations are verified to be preserved when they are associated with complex 1, and this is done via circular dichroism spectral titration. The molecular docking investigation, which is a theoretical experiment, provides complete support for the experimental findings. The potential of the investigated complex to be an anticancer drug has been examined by employing the MTT assay technique, which is carried out on HeLa cancer cell lines and HEK-293 normal cell lines. The MTT assay results validate the ability of complex 1 to display significant anticancer properties. Finally, by using the AO/PI staining approach, the apoptotic-induced cell-killing mechanism as well as the detection of cell morphological changes has been confirmed. American Chemical Society 2022-12-20 /pmc/articles/PMC9835804/ /pubmed/36643564 http://dx.doi.org/10.1021/acsomega.2c05790 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Bera, Manjushree
Das, Manik
Dolai, Malay
Laha, Soumik
Islam, Md Maidul
Samanta, Bidhan Chandra
Das, Arindam
Choudhuri, Indranil
Bhattacharyya, Nandan
Maity, Tithi
DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach
title DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach
title_full DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach
title_fullStr DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach
title_full_unstemmed DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach
title_short DNA/Protein Binding and Apoptotic-Induced Anticancer Property of a First Time Reported Quercetin–Iron(III) Complex Having a Secondary Anionic Residue: A Combined Experimental and Theoretical Approach
title_sort dna/protein binding and apoptotic-induced anticancer property of a first time reported quercetin–iron(iii) complex having a secondary anionic residue: a combined experimental and theoretical approach
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835804/
https://www.ncbi.nlm.nih.gov/pubmed/36643564
http://dx.doi.org/10.1021/acsomega.2c05790
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