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Theoretical and experimental investigation of novel quinazoline derivatives: synthesis, photophysical, reactive properties, molecular docking and selective HSA biointeraction

Authors
Chandrasekhar, SRaghu, MSYogesh Kumar, KAlharethy, FahdPrashanth, Maralekere KrishnegowdaJeon, Byong Hun
Issue Date
Sep-2024
Publisher
Adenine Press
Keywords
Quinazoline; photophysical; DFT; HSA; molecular docking
Citation
Journal of Biomolecular Structure and Dynamics, v.42, no.13, pp 6772 - 6787
Pages
16
Indexed
SCIE
SCOPUS
Journal Title
Journal of Biomolecular Structure and Dynamics
Volume
42
Number
13
Start Page
6772
End Page
6787
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/204165
DOI
10.1080/07391102.2023.2237590
ISSN
0739-1102
1538-0254
Abstract
Two new quinazoline derivatives (2a and 2b) were successfully synthesized in this work using the condensation technique in excellent yields. Using spectroscopic techniques and elemental analyses, the compounds were completely characterized. Density functional theory (DFT) computations have been used to examine the title compound’s reactive characteristics. Chemical reactivity was predicted using local reactive descriptors and molecule electrostatic potential. Additionally, Time dependent DFT (TD-DFT) simulations were used to examine the impact of solvents on the photophysical characteristics. The affinity of compounds 2a and 2b for human serum albumin (HSA) was further explored using several electronic spectroscopies. Through static mechanisms, both compounds reduce the intrinsic fluorescence of HSA. It is determined that the HSA-2b complex’s binding constant is significantly greater than the HSA-2a complex. The fluorescence spectrum measurements proved that the HSA underwent structural changes after interaction with these compounds. It was demonstrated by site marker competitive displacement studies that compounds 2a and 2b preferred to bind to site I in HSA subdomain IIA. Additionally, synchronised fluorescence spectra were utilized to analyze how HSA’s conformation changed after interacting with various substances. The molecular docking investigations of these compounds with the three critical HSA binding sites, comprising subdomains IIA, IIIA, and IB, further confirmed the experimental findings. The significant contact between the investigated compounds and HSA was supported by the docking simulations.
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