Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Johanan Christian Prasana is active.

Publication


Featured researches published by Johanan Christian Prasana.


Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy | 2017

Quantum mechanical, spectroscopic and docking studies of 2-Amino-3-bromo-5-nitropyridine by Density Functional Method

Christina Susan Abraham; Johanan Christian Prasana; S. Muthu

Experimental and theoretical investigations on the molecular structure, electronic and vibrational characteristics of 2-Amino-3-bromo-5-nitropyridine are presented. The vibrational frequencies were obtained by DFT/B3LYP calculations employing 6-311++G (d, p) basis set. This was compared with experimental FT-IR and FT-Raman spectral data. Simulated FT-IR (4000-400cm-1) and FT-Raman spectra (4000-100cm-1) showed good agreement with the observed spectra. The molecular equilibrium geometry of the title compound was fully optimized. Quantum chemical calculations of the equilibrium geometry and the complete vibrational assignments of wavenumbers using potential energy distribution (PED) were calculated with scaled quantum mechanics. HOMO-LUMO energies, energy gap (ΔE), electronegativity (χ), chemical potential (μ), global hardness (η), softness (S) and the Fukui function were calculated for the title molecule. The title compound has a low softness value (0.239) and the calculated value of electrophilicity index (5.905) describes the biological activity. The stability and charge delocalization of the title molecule were studied by Natural Bond Orbital (NBO) analysis, Non-Linear Optical (NLO) behaviour in terms of first order hyperpolarizability, dipole moment and anisotropy of polarizability and Molecular Electrostatic Potential (MEP) were accounted. The computed values of μ, α and β for the title molecule are 1.851 Debye, 1.723×10-23esu and 7.428×10-30esu respectively. The high β value and non-zero value of μ indicate that the title compound might be a good candidate for NLO material. Thermodynamic properties of the title molecule were studied for different temperatures thereby revealing the correlations between heat capacity (C), entropy (S) and enthalpy changes (H) with temperatures. Docking studies of the title compound were scrutinized to predict the preferred binding orientation, affinity and activity of the given compound. The title compound was docked into the active site of the protein 5FCT which belongs to the class of proteins exhibiting the property as a Dihydrofolate synthase inhibitor. A minimum binding energy of -5.9kcal/mol and intermolecular energy of -6.5kcal/mol is seen in the interaction.


Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy | 2018

Quantum mechanical and spectroscopic (FT-IR, FT-Raman) study, NBO analysis, HOMO-LUMO, first order hyperpolarizability and molecular docking study of methyl[(3R)-3-(2-methylphenoxy)-3-phenylpropyl]amine by density functional method

Tintu K. Kuruvilla; Johanan Christian Prasana; S. Muthu; Jacob George; Sheril Ann Mathew

Quantum chemical techniques such as density functional theory (DFT) have become a powerful tool in the investigation of the molecular structure and vibrational spectrum and are finding increasing use in application related to biological systems. The Fourier transform infrared (FT-IR) and Fourier transform Raman (FT-Raman) techniques are employed to characterize the title compound. The vibrational frequencies were obtained by DFT/B3LYP calculations with 6-31G(d,p) and 6-311++G(d,p) as basis sets. The geometry of the title compound was optimized. The vibrational assignments and the calculation of Potential Energy Distribution (PED) were carried out using the Vibrational Energy Distribution Analysis (VEDA) software. Molecular electrostatic potential was calculated for the title compound to predict the reactive sites for electrophilic and nucleophilic attack. In addition, the first-order hyperpolarizability, HOMO and LUMO energies, Fukui function and NBO were computed. The thermodynamic properties of the title compound were calculated at different temperatures, revealing the correlations between heat capacity (C), entropy (S) and enthalpy changes (H) with temperatures. Molecular docking studies were also conducted as part of this study. The paper further explains the experimental results which are in line with the theoretical calculations and provide optimistic evidence through molecular docking that the title compound can act as a good antidepressant. It also provides sufficient justification for the title compound to be selected as a good candidate for further studies related to NLO properties.


Computational Biology and Chemistry | 2018

Spectroscopic profiling (FT-IR, FT-Raman, NMR and UV-Vis), autoxidation mechanism (H-BDE) and molecular docking investigation of 3-(4-chlorophenyl)-N,N-dimethyl-3-pyridin-2-ylpropan-1-amine by DFT/TD-DFT and molecular dynamics: A potential SSRI drug

Christina Susan Abraham; S. Muthu; Johanan Christian Prasana; Sanja J. Armaković; Stevan Armaković; B. Fathima Rizwana; A S Ben Geoffrey

Spectroscopic profiling in terms of FT-IR, FT-Raman, UV-vis and NMR in addition to reactivity study by density functional theory (DFT) and molecular dynamics (MD) simulations of 3-(4-chlorophenyl)-N,N-dimethyl-3-pyridin-2-ylpropan-1-amine (C16H19ClN2) have been discussed. In order to assign principal vibrational numbers, the Potential energy distribution (PED) analysis has been executed. Frontier molecular orbitals (FMOs) analysis in addition to the stabilization energy and natural hybrid orbital analysis has been done. Local reactivity properties of this compound have been addressed through molecular electrostatic potential (MEP) and average local ionization energy (ALIE) surfaces. The bond dissociation energy for hydrogen abstraction (H-BDE) and chemical bonding analysis in terms of electron localization function gave details regarding the Pauli exchange repulsion effect in the electrons of the molecule. Molecular dynamics simulation has been performed in order to understand reactivity of title molecule with water. Molecular docking study was executed to evaluate the potential of the title molecule to bind with 5-HT1u2009A serotonin receptor and thus can be a lead compound for developing new SSRI (Selective serotonin reuptake inhibitor) drug. Aside from molecular docking, drug likeness parameters have been also considered and by QSAR modeling the comparison of physiochemical parameters of commercially available SSRI drugs and title molecule is carried out.


Chemical Data Collections | 2018

Spectroscopic (FT-IR, FT-Raman) investigation, topology (ESP, ELF, LOL) analyses, charge transfer excitation and molecular docking (dengue, HCV) studies on ribavirin

B. Fathima Rizwana; S. Muthu; Johanan Christian Prasana; Christina Susan Abraham; M. Raja

n Abstractn n Ribavirin, a triazole derivative has a wide application in the medical field as an antiviral drug. In the present work, a quantum chemical approach was followed to study the vibrational modes and the reactivity. Experimental techniques of FT-IR, FT-Raman were used to study the vibrational spectrum. A complete vibrational analysis was carried out and assignments of the fundamental modes were proposed. Molecular electrostatic potential, frontier molecular orbitals, electronic localization function and fukui functions were analyzed by using wavefunction analyser, Multiwfn 3.4.1 to study the chemical reactivity. Band gap energy of the title molecule is found to be 6.01u202feV, as calculated from the HOMO-LUMO energies. The intermolecular charge transfer within the molecule was confirmed from the charge transfer interactions. Molecular docking studies were carried out to study the biological activity of the compound. Viral target proteins such as Dengue and Hepatitis C were chosen and the respective docking parameters were calculated.n n


IUCrData | 2017

(2E)-2-[4-(Di­methyl­amino)­benzyl­idene]-5-methyl­cyclo­hexa­none

J. Christina Jebapriya; D. Reuben Jonathan; Johanan Christian Prasana; G. Usha

In the title compound, C16H21NO, the cycloxadhexaxadnone ring adopts a half-chair conformation; the dihedral angle between this ring (all atoms) and the benzene ring is 41.74u2005(16)°. No directional interxadactions could be identified in the crystal.


IUCrData | 2016

(E)-1-(4-Amino­phen­yl)-3-[4-(benz­yloxy)phen­yl]prop-2-en-1-one

T. Hannah Clara; Johanan Christian Prasana; D. Reuben Jonathan; B. K. Revathi; G. Usha

The title compound, C22H19NO2, crystallizes with two independent molxadecules (A and B) in the asymmetric unit. The benzxadyloxy ring in molxadecule A is disordered over two sets of sites, with a refined occupancy ratio of 0.665u2005(6):0.335u2005(6). Both molxadecules have an E conformation about the C=C bond of the prop-2-en-1-one unit. In the major component of molxadecule A, the aminoxadbenzene and benzxadyloxy rings are inclined to the central benzene ring by 20.12u2005(16) and 36.2u2005(3)°, respectively, and by 55.6u2005(3)° to one another. In molxadecule B, the corresponding dihedral angles are 23.65u2005(12), 10.24u2005(14) and 23.07u2005(14)°, respectively. In the crystal, the two molxadecules are linked by an N—H⋯O hydrogen bond. These A–B units are linked by N—H⋯π and C—H⋯π interxadactions, forming undulating sheets parallel to the ab plane.


Journal of Molecular Structure | 2018

Quantum computational studies, spectroscopic (FT-IR, FT-Raman and UV–Vis) profiling, natural hybrid orbital and molecular docking analysis on 2,4 Dibromoaniline

Christina Susan Abraham; Johanan Christian Prasana; S. Muthu; Fathima Rizwana B; M. Raja


Journal of Molecular Structure | 2018

Vibrational spectroscopic (FT-IR, FT-Raman) and quantum mechanical study of 4-(2-chlorophenyl)-2-ethyl-9-methyl-6H-thieno[3,2-f] [1,2,4]triazolo[4,3-a][1,4] diazepine

Tintu K. Kuruvilla; Johanan Christian Prasana; S. Muthu; Jacob George


Journal of Molecular Structure | 2018

Spectroscopic investigation, hirshfeld surface analysis and molecular docking studies on anti-viral drug entecavir

B. Fathima Rizwana; Johanan Christian Prasana; Christina Susan Abraham; S. Muthu


Journal of Molecular Structure | 2019

Spectroscopic (FT-IR, FT-Raman), quantum mechanical and docking studies on methyl[(3S)-3-(naphthalen-1-yloxy)-3-(thiophen-2-yl)propyl]amine

Tintu K. Kuruvilla; S. Muthu; Johanan Christian Prasana; Jacob George; S. Sevvanthi

Collaboration


Dive into the Johanan Christian Prasana's collaboration.

Top Co-Authors

Avatar

S. Muthu

Government Arts College

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Jacob George

Madras Christian College

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

G. Usha

Queen Mary's College

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge