A comparative study for molecular insight on riparins (I–III) by quantum chemical, spectroscopic, and molecular docking methods

IF 5.3 2区 化学 Q2 CHEMISTRY, PHYSICAL
Tirth Raj Paneru , Bhawani Datt Joshi , Poonam Tandon , Laura Maria Teodorio Vidal , Alejandro Pedro Ayala
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Abstract

This work presented the conformer analysis of riparins (I-III) through a one-dimensional potential energy scan and investigated the most stable conformer. This study aims to provide molecular insight into the most stable structure of riparins (I-III) using density functional theory calculations at the B3LYP/6-311++G(d,p) level of theory. The calculated FT-IR, Raman, and UV–Vis absorption spectra showed agreement with the experimental results after comparison. In riparin I, the N–H and C=O groups’ experimental wavenumber red shifted in comparison to the computed value, suggesting that they participate in intermolecular hydrogen bonding for crystal packing. The C=O and O–H groups in riparin II establish an intramolecular hydrogen bond, whereas both O–H groups in riparin III contribute to intramolecular hydrogen bonding with the C=O and N–H groups, which results in alterations in wavenumbers. This conclusion was supported by quantum theory of atoms in molecule, reduced density gradient plot, and electrostatic potential surface analysis. For riparins I, II, and III, the frontier molecular orbital energy gap (ΔEL-H) was determined to be 4.925, 4.817, and 4.729 eV, respectively. This suggests that riparin I is more kinetically stable and riparin III is more reactive. ADMET analysis predicts the absorbance of riparin III in the gastrointestinal tract, while riparins I and II penetrate the blood–brain barrier. Molecular docking of riparins (I–III) with PDB: 1QR2 and 2QR2 reveals that riparin III has the highest binding affinity (−8.6 kcal/mol) with 1QR2, suggesting it a potent inhibitor of 1QR2.

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来源期刊
Journal of Molecular Liquids
Journal of Molecular Liquids 化学-物理:原子、分子和化学物理
CiteScore
10.30
自引率
16.70%
发文量
2597
审稿时长
78 days
期刊介绍: The journal includes papers in the following areas: – Simple organic liquids and mixtures – Ionic liquids – Surfactant solutions (including micelles and vesicles) and liquid interfaces – Colloidal solutions and nanoparticles – Thermotropic and lyotropic liquid crystals – Ferrofluids – Water, aqueous solutions and other hydrogen-bonded liquids – Lubricants, polymer solutions and melts – Molten metals and salts – Phase transitions and critical phenomena in liquids and confined fluids – Self assembly in complex liquids.– Biomolecules in solution The emphasis is on the molecular (or microscopic) understanding of particular liquids or liquid systems, especially concerning structure, dynamics and intermolecular forces. The experimental techniques used may include: – Conventional spectroscopy (mid-IR and far-IR, Raman, NMR, etc.) – Non-linear optics and time resolved spectroscopy (psec, fsec, asec, ISRS, etc.) – Light scattering (Rayleigh, Brillouin, PCS, etc.) – Dielectric relaxation – X-ray and neutron scattering and diffraction. Experimental studies, computer simulations (MD or MC) and analytical theory will be considered for publication; papers just reporting experimental results that do not contribute to the understanding of the fundamentals of molecular and ionic liquids will not be accepted. Only papers of a non-routine nature and advancing the field will be considered for publication.
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