Back to Search Start Over

DFT investigations on arylsulphonyl pyrazole derivatives as potential ligands of selected kinases

Authors :
Czaja Kornelia
Kujawski Jacek
Kujawski Radosław
Bernard Marek K.
Source :
Open Chemistry, Vol 18, Iss 1, Pp 857-873 (2020)
Publication Year :
2020
Publisher :
De Gruyter, 2020.

Abstract

Using the density functional theory (DFT) formalism, we have investigated the properties of some arylsulphonyl indazole derivatives that we studied previously for their biological activity and susceptibility to interactions of azoles. This study includes the following physicochemical properties of these derivatives: electronegativity and polarisability (Mulliken charges, adjusted charge partitioning, and iterative-adjusted charge partitioning approaches); free energy of solvation (solvation model based on density model and M062X functional); highest occupied molecular orbital (HOMO)–lowest occupied molecular orbital (LUMO) gap together with the corresponding condensed Fukui functions, time-dependent DFT along with the UV spectra simulations using B3LYP, CAM-B3LYP, MPW1PW91, and WB97XD functionals, as well as linear response polarisable continuum model; and estimation of global chemical reactivity descriptors, particularly the chemical hardness factor. The charges on pyrrolic and pyridinic nitrogen (the latter one in the quinolone ring of compound 8, as well as condensed Fukui functions) reveal a significant role of these atoms in potential interactions of azole ligand–protein binding pocket. The lowest negative value of free energy of solvation can be attributed to carbazole 6, whereas pyrazole 7 has the least negative value of this energy. Moreover, the HOMO–LUMO gap and chemical hardness show that carbazole 6 and indole 5 exist as soft molecules, while fused pyrazole 7 has hard character.

Details

Language :
English
ISSN :
23915420
Volume :
18
Issue :
1
Database :
Directory of Open Access Journals
Journal :
Open Chemistry
Publication Type :
Academic Journal
Accession number :
edsdoj.7e14ba0e02784e07aa11e2d8cf4fed18
Document Type :
article
Full Text :
https://doi.org/10.1515/chem-2020-0135