Literature DB >> 29578306

A cytotoxicity, optical spectroscopy and computational binding analysis of 4-[3-acetyl-5-(acetylamino)-2-methyl-2,3-dihydro-1,3,4-thiadiazole-2-yl]phenyl benzoate in calf thymus DNA.

Subramani Karthikeyan1, Ganesan Bharanidharan1, Rajendiran Mangaiyarkarasi1, Shanmugavel Chinnathambi2, Ragavan Sriram3, Krishnaswamy Gunasekaran3, Kandasamy Saravanan4, Mani Gopikrishnan5, Prakasarao Aruna1, Singaravelu Ganesan1.   

Abstract

In this study the interaction mechanism between newly synthesized 4-(3-acetyl-5-(acetylamino)-2-methyl-2, 3-dihydro-1,3,4-thiadiazole-2-yl) phenyl benzoate (thiadiazole derivative) anticancer active drug with calf thymus DNA was investigated by using various optical spectroscopy techniques along with computational technique. The absorption spectrum shows a clear shift in the lower wavelength region, which may be due to strong hypochromic effect in the ctDNA and the drug. The results of steady state fluorescence spectroscopy show that there is static quenching occurring while increasing the thiadiazole drug concentration in the ethidium bromide-ctDNA system. Also the binding constant (K), thermo dynamical parameters of enthalpy change (ΔH°), entropy change (ΔS°) Gibbs free energy change (ΔG°) were calculated at different temperature (293 K, 298 K) and the results are in good agreement with theoretically calculated MMGBSA binding analysis. Time resolved emission spectroscopy analysis clearly explains the thiadiazole derivative competitive intercalation in the ethidium bromide-ctDNA system. Further, molecular docking studies was carried out to understand the hydrogen bonding and hydrophobic interaction between ctDNA and thiadiazole derivative molecule. In addition the docking and molecular dynamics charge distribution analysis was done to understand the internal stability of thiadiazole derivative drug binding sites of ctDNA. The global reactivity of thiadiazole derivative such as electronegativity, electrophilicity and chemical hardness has been calculated.
Copyright © 2018 John Wiley & Sons, Ltd.

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Keywords:  FRET; fluorescence spectroscopy; molecular docking; molecular dynamics; time resolved emission spectroscopy

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Year:  2018        PMID: 29578306     DOI: 10.1002/bio.3470

Source DB:  PubMed          Journal:  Luminescence        ISSN: 1522-7235            Impact factor:   2.464


  1 in total

1.  Design and synthesis of heterocyclic azole based bioactive compounds: Molecular structures, quantum simulation, and mechanistic studies through docking as multi-target inhibitors of SARS-CoV-2 and cytotoxicity.

Authors:  Jebiti Haribabu; Vasavi Garisetti; Rahime Eshaghi Malekshah; Swaminathan Srividya; Dasararaju Gayathri; Nattamai Bhuvanesh; Ramalinga Viswanathan Mangalaraja; Cesar Echeverria; Ramasamy Karvembu
Journal:  J Mol Struct       Date:  2021-10-21       Impact factor: 3.196

  1 in total

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