Promoted by the well-established, valuable biological activity of thiophene-based hybrids, the study displayed the synthesis of two series of thiophene-pyrazole hybrids,
7a-c
and thiophene-pyridine hybrids
9a-c,
via
reacting arylhydrazone with halogenated reagents and nucleophilic addition of cyanoacetamide to the arylidene-malononitrile, respectively. The chemical structure of the produced hybrids was elucidated using reliable spectroscopic techniques, including Fourier transform infrared (FTIR), Nuclear magnetic resonance (NMR), and Mass spectra (MS). The density functional theory (DFT) modeling of the delivered conjugates disclosed comparable non-planar configurations and frontier molecular orbital (FMO) constructions, in which the benzoate junction and oxo-thienyl moiety performed as donor (highest occupied molecular orbital; HOMO) and acceptor (lowest unoccupied molecular orbital; LUMO) portions, respectively. Furthermore, the antimicrobial activity of the manufactured hybrids was evaluated, and analog
7a
exhibited outstanding activity against both bacterial strains and C. albicans, with large inhibition zones (IZ = 41-43 mm). Meanwhile, the cytotoxicity efficacy of the synthesized derivatives was assessed against human breast cancer (MCF-7), normal kidney epithelial (Vero), and the normal cells (WI-38) cell lines. The series
7a-c
was more active in general than the other conjugates; for example, derivative
7a
was very selective towards MCF-7 (IC
50
= 14.39±0.26 μM). Furthermore, the hybrid’s inhibitory effect on the bacterial topoisomerases IV and
DNA gyrase B
was evaluated, where hybrid
7a
presented the greatest action (IC
50
= 12.09±0.31 and 0.43±0.12 μM), respectively. Moreover, molecular docking performed against bacterial
DNA gyrase B
revealed that analogues
7a-c
and
9a-c
exhibited superior bindings; analogue
9c
demonstrated the strongest binding energy (-7.9520 kcal/mol), proposing improved target arrangement. Finally, the Swiss absorption, distribution, metabolism and excretion (ADME) analysis highlighted the pharmacokinetic properties of the synthesized thiophene hybrids. Analogues with low molecular weight,
4
and
5
, exhibited optimal solubility and absorption, while bulkier analogues
6
,
7a-c,
and
9a-c
presented lower solubility due to increased topological polar surface area (TPSA) and lipophilicity.
Abdulrahman S. Alharbi, Shadiah Albalawi, Asmaa L Alanzy et al.· Arabian Journal of Chemistry· 0 citations
Diazene oxide (HNNO) is a chemically strategic transient that links N2O to more reactive nitrogen reservoirs and can control branching in H + N2O networks under pressure- and radiation-dependent conditions. The electronic structure, spectroscopy, and photodissociation mechanisms of the cis and trans isomers of the HNNO radical have been investigated using high-level multireference (MRCI+Q) and single-reference (EOM-CCSD) methods in conjunction with augmented correlation-consistent basis sets. Vertical excitation spectra and photoabsorption cross sections simulated via Wigner sampling of ground-state vibrational wavefunctions reveal that both isomers absorb appreciably only in the near-UV region, with negligible visible absorption. For trans-HNNO, the dominant near-UV band arises from the 22 A' ← X2A' transition near 320-325 nm. One-dimensional potential energy cuts along key stretching and bending coordinates demonstrate that photodissociation to NH(X (Prather et al., 20153)Σ-) + NO(X2Π) is the most plausible product channel for both isomers, accessed through nonadiabatic couplings within the doublet manifold and spin-orbit-mediated intersystem crossing to dissociative quartet states, rather than by direct bond cleavage. This work establishes a comprehensive spectroscopic and photochemical baseline for the HNNO radical and provides a mechanistic framework for understanding its UV-driven chemistry, highlighting the important role of nonadiabatic and spin-orbit coupling effects that will require explicit dynamical treatment in future studies.
O. Yazidi, Hela Ferjani, T. Trabelsi· Spectrochimica Acta Part A -...· 0 citations
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