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result(s) for
"Hydrazones - chemistry"
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A designer enzyme for hydrazone and oxime formation featuring an unnatural catalytic aniline residue
2018
Creating designer enzymes with the ability to catalyse abiological transformations is a formidable challenge. Efforts toward this goal typically consider only canonical amino acids in the initial design process. However, incorporating unnatural amino acids that feature uniquely reactive side chains could significantly expand the catalytic repertoire of designer enzymes. To explore the potential of such artificial building blocks for enzyme design, here we selected p-aminophenylalanine as a potentially novel catalytic residue. We demonstrate that the catalytic activity of the aniline side chain for hydrazone and oxime formation reactions is increased by embedding p-aminophenylalanine into the hydrophobic pore of the multidrug transcriptional regulator from Lactococcus lactis. Both the recruitment of reactants by the promiscuous binding pocket and a judiciously placed aniline that functions as a catalytic residue contribute to the success of the identified artificial enzyme. We anticipate that our design strategy will prove rewarding to significantly expand the catalytic repertoire of designer enzymes in the future.
Journal Article
Research Progress on the Biological Activities of Metal Complexes Bearing Polycyclic Aromatic Hydrazones
by
Ding, Tongyan
,
Liang, Hong
,
Cui, Jingbo
in
Analysis
,
Anti-Bacterial Agents - chemistry
,
Anti-Bacterial Agents - pharmacology
2022
Due to the abundant and promising biological activities of aromatic hydrazones, it is of great significance to study the biological activities of their metal complexes for the research and development of metal-based drugs. In this review, we focus on the metal complexes of polycyclic aromatic hydrazones, which still do not receive much attention, and summarize the studies related to their biological activities. Although the large number of metal complexes in phenylhydrazone prevent them all from being summarized, the significant value of polycyclic aromatic hydrocarbons themselves (such as naphthalene and anthracene) as pharmacophores are also considered. Therefore, the bioactivities of the metal complexes of naphthylhydrazone and anthrahydrazone are focused on, and the recent research progress on the metal complexes of anthrahydrazone by the authors is also included. In terms of biological activities, these complexes mainly show antibacterial and anticancer activities, along with less bioactivities. The present review demonstrates that the structural design and bioactivities of these complexes are fundamental, which also indicates a certain structure—activity relationship (SAR) in some substructural areas. However, a systematic and comprehensive conclusion of the SAR is still not available, which suggests that more attention should be paid to the bioactivities of the metal complexes of polycyclic aromatic hydrazones since their potential in structural design and biological activity remains to be explored. We hope that this review will attract more researchers to devote their interest and energy into this promising area.
Journal Article
Novel Pyrazole-Hydrazone Derivatives Containing an Isoxazole Moiety: Design, Synthesis, and Antiviral Activity
by
Li, Pei
,
Gan, Xiuhai
,
Yang, Zaibo
in
Acids
,
antiviral activity
,
Antiviral Agents - chemical synthesis
2018
In this study, a series of novel pyrazole-hydrazone derivatives containing an isoxazole moiety were synthesized. Antiviral bioassays indicated that some of the title compounds exhibited better in vivo antiviral activities against tobacco mosaic virus (TMV). In particular, compounds 6a, 6c and 6q exhibited the best curative activity, protection activity, and inactivation activity against TMV, respectively, which were superior to those of Ningnanmycin. This study demonstrated that this series of novel pyrazole-hydrazone derivatives containing an isoxazole amide moiety could effectively control TMV.
Journal Article
Biological evaluations and biomolecular interactions along with computational insights of arylidene isatin hydrazones synthesized using nanocatalyst
by
Mohammadi Ziarani, Ghodsi
,
Feizi-Dehnayebi, Mehran
,
Panahande, Zahra
in
631/45
,
639/638
,
ADME-Tox profiling
2025
Due to the notable biological activity of isatin hydrazone compounds, we synthesized and structurally characterized three arylidene isatin hydrazone derivatives (
3a-3c
) utilizing the SBA-Pr-N-Is-Bu-SO
3
H nanocatalyst. A comparative investigation was performed through an integrated approach combining experimental assays and theoretical modeling. In vitro biological assays performed on normal umbilical vein endothelial cells (HUVECs) and breast cancer cell lines (MCF-7 and MDA-MB-231) revealed noteworthy anticancer activity, with all derivatives significantly reducing cancer cell viability in a concentration- and time-dependent manner. Furthermore, compound
3c
exhibited the most potent antioxidant effect, achieving up to 80% inhibition at higher concentrations. Biomolecule (DNA and BSA) interaction studies were performed utilizing UV-Vis spectroscopic analysis and molecular docking simulations. The values of
K
app
for the interaction of compounds
3a
(1.01 × 10
4
M
− 1
),
3b
(1.17 × 10
4
M
− 1
), and
3c
(2.03 × 10
4
M
− 1
), along with docking simulations, indicate that the studied compounds are likely to bind to CT-DNA via a groove-binding mechanism. Lipophilicity assessments demonstrated that compounds
3b
and
3c
had significantly higher log P values than cisplatin, indicating enhanced lipid affinity and superior cellular membrane permeability potential. Comprehensive computational analyses, including DFT/TD-DFT, topology analysis, and ADME-Tox profiling, were employed to further validate the observed biological activity and pharmacokinetic potential. The convergence of computational insights and experimental findings provides robust validation for the potential of these compounds as promising anticancer agents.
Journal Article
Synthesis of New Benzothiazole Acylhydrazones as Anticancer Agents
2018
During the last five decades, a large number of BT (Benzothiazole) derivatives formed one of the eligible structures in medicinal chemistry as anticancer agents. Most of the studies reveal that various substitutions at specific positions on BT scaffold modulate the antitumor property. The potential of BTs encouraged us to synthesize a number of new 2-((5-substitutedbenzothiazol-2-yl)thio)-N’-(2-(4-(substitutedphenyl)ethylidene)acetohydrazide derivatives and investigate their probable anticancer activity. 4-Substitued benzaldehyde derivatives (1a–1e) were afforded by the reaction of appropriate secondary amine and 4-fluorobenzaldehyde in DMF. Equimolar quantitates of 5-substitutedbenzothiazole-2-thiol, ethyl chloroacetate and K2CO3 were refluxed in acetone to obtain 2-((5-substitutedbenzothiazol-2-yl)thio)acetate derivatives (2a,2b), which reacted with excess of hydrazine hydrate to get 2-((5-substitutebenzothiazol-2-yl)thio)acetohydrazides (3a,3b). In the last step, 2-((5-substitutedbenzothiazol-2-yl)thio)-N’-(4-substitutedbenzylidene)acetohydrazide derivatives (4a–4j) were synthesized by the reaction of 1a–1e and 3a–3b in EtOH. The anticancer activity of target compounds was evaluated in three steps. First, an MTT test (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide) was performed to observe cytotoxic activity of the compounds against carcinogenic C6 (Rat brain glioma cell line), A549 (Human lung adenocarcinoma epithelial cell line), MCF-7 (Human breast adenocarcinoma cell line), and HT-29 (Human colorectal adenocarcinoma cell line) cancer cell lines. Healthy NIH3T3 (Mouse embryo fibroblast cell line) cells were also subjected to MTT assay to determine selectivity of the compounds towards carcinogenic cell lines. Secondly, inhibitory effects of selected compounds 4d, 4e, and 4h on DNA synthesis of C6 cells were investigated. Finally, flow cytometric analysis were performed to identify the death pathway of the carcinogenic cells.
Journal Article
Synthesis, Characterization, Catalytic Activity, and DFT Calculations of Zn(II) Hydrazone Complexes
by
Radanović, Dušanka
,
Anđelković, Katarina K.
,
Tzouras, Nikolaos V.
in
Catalysis
,
Crystallography, X-Ray
,
Density Functional Theory
2020
Two new Zn(II) complexes with tridentate hydrazone-based ligands (condensation products of 2-acetylthiazole) were synthesized and characterized by infrared (IR) and nuclear magnetic resonance (NMR) spectroscopy and single crystal X-ray diffraction methods. The complexes 1, 2 and recently synthesized [ZnL3(NCS)2] (L3 = (E)-N,N,N-trimethyl-2-oxo-2-(2-(1-(pyridin-2-yl)ethylidene)hydrazinyl)ethan-1-aminium) complex 3 were tested as potential catalysts for the ketone-amine-alkyne (KA2) coupling reaction. The gas-phase geometry optimization of newly synthesized and characterized Zn(II) complexes has been computed at the density functional theory (DFT)/B3LYP/6–31G level of theory, while the highest occupied molecular orbital and lowest unoccupied molecular orbital (HOMO and LUMO) energies were calculated within the time-dependent density functional theory (TD-DFT) at B3LYP/6-31G and B3LYP/6-311G(d,p) levels of theory. From the energies of frontier molecular orbitals (HOMO–LUMO), the reactivity descriptors, such as chemical potential (μ), hardness (η), softness (S), electronegativity (χ) and electrophilicity index (ω) have been calculated. The energetic behavior of the investigated compounds (1 and 2) has been examined in gas phase and solvent media using the polarizable continuum model. For comparison reasons, the same calculations have been performed for recently synthesized [ZnL3(NCS)2] complex 3. DFT results show that compound 1 has the smaller frontier orbital gap so, it is more polarizable and is associated with a higher chemical reactivity, low kinetic stability and is termed as soft molecule.
Journal Article
Insights into the pharmaceutical properties and in silico study of novel hydrazone derivatives
2024
It has been established that the Hydrazone derivatives have important pharmacological effects. In the first step, hydrazine (NH
2
NH
2
) reacts with a compound containing a carbonyl group (C = O) in the presence of ethanol and heat, leading to the formation of hydrazone compound (H1). The second step is the formation of the Schiff base (H2) by the reaction of compound (H1) with indole, ethanol, and acetic acid, which contain a double bond (C = N). In the third step, the (H1) reacts with thiophene, ethanol, and acetic acid to form a compound (H3) containing multiple bonds between the indole and thiophene rings. The synthetic test compounds underwent characterization using TLC, IR, 1 H - NMR, and ¹
3
C NMR spectral examinations. Both compounds, H2 and H3, exhibit antioxidant activity at different concentrations (from 12.5 to 100 µgmL
− 1
), where the effect increases gradually with the increase in concentration. The compounds (H2 and H3) exhibited an apparent inhibitory effect on the growth of
Staphylococcus aureus
,
Escherichia coli
, and
Candida albicans
. Calculations have been performed for DFT, molecular docking, molecular dynamics simulations, and the ADMET protocol, and they are essential for describing the interaction and stability. In hydrazone derivatives, groups like amine, hydroxy, thiophene, and indole form hydrogen bonds and electrostatic interactions with amino acids such as arginine, lysine, glutamic acid, and aspartic acid. These interactions are crucial to evaluating the compound’s stability and its potential to inhibit enzyme activity. The results indicate that the compound shows strong binding and stability at the active site, making it a promising candidate for further studies as an anti-colon cancer agent.
Journal Article
Pharmacological Evaluation of Novel Hydrazide and Hydrazone Derivatives: Anti-Inflammatory and Analgesic Potential in Preclinical Models
by
Zlatanova-Tenisheva, Hristina
,
Vladimirova, Stanislava
in
Analgesics
,
Analgesics - chemistry
,
Analgesics - pharmacology
2025
Hydrazones, characterized by their C=N–NH functional group, are promising candidates in medicinal chemistry due to their ability to interact with biological targets. This study evaluated the anti-inflammatory and analgesic properties of N-pyrrolylcarbohydrazide (1) and four pyrrole hydrazone derivatives (1A–D) in male Wistar rats (6 weeks old). Anti-inflammatory activity was assessed using a carrageenan-induced paw edema model, while formalin, tail flick, and paw withdrawal tests evaluated analgesia. Compound 1 exhibited dose-dependent anti-inflammatory activity. At 20 mg/kg, significant edema reductions were observed at the 2nd (p = 0.035) and 3rd hours (p = 0.022), while at 40 mg/kg, reductions remained significant at the 2nd (p = 0.008) and 3rd hours (p = 0.046). Compound 1A showed pronounced effects at 20 mg/kg at the 2nd (p = 0.005), 3rd (p < 0.001), and 4th hours (p = 0.004). Other compounds demonstrated minimal or no activity. Analgesic evaluation revealed that at 40 mg/kg, compound 1 significantly reduced paw-licking time in the second phase (p = 0.038). Compounds 1B, 1C, and 1D exhibited transient effects in the first phase only (p < 0.05). Compound 1A lacked significant analgesic activity. The findings suggest that structural modifications may enhance efficacy for broader therapeutic applications.
Journal Article
Synthesis, molecular docking and evaluation of novel sulfonyl hydrazones as anticancer agents and COX-2 inhibitors
2020
In trying to develop new anticancer agents, a series of sulfonylhydrazones were synthesized. All synthesized compounds were checked for identity and purity using elemental analysis, TLC and HPLC and were characterized by their melting points, FT-IR and NMR spectral data. All synthesized compounds were evaluated for their cytotoxic activity against prostate cancer (PC3), breast cancer (MCF-7) and L929 mouse fibroblast cell lines. Among them, N′-[(2-chloro-3-methoxyphenyl)methylidene]-4-methylbenzenesulfonohydrazide (3k) showed the most potent anticancer activity against both cancer cells with good selectivity (IC50 = 1.38 μM on PC3 with SI = 432.30 and IC50 = 46.09 μM on MCF-7 with SI = 12.94). Further investigation confirmed that 3k displayed morphological alterations in PC3 and MCF-7 cells and promoted apoptosis through down-regulation of the Bcl-2 and upregulation of Bax expression. Additionally, compound 3k was identified as the most potent COX-2 inhibitor (91% inhibition) beside lower COX-1 inhibition. Molecular docking of the tested compounds represented important binding modes which may be responsible for their anticancer activity via inhibition of the COX-2 enzyme. Overall, the lead compound 3k deserves further development as a potential anticancer agent.Graphic abstractSulfonylhydrazones was synthesized and N′-[(2-chloro-3-methoxyphenyl)methylidene]-4- methylbenzenesulfonohydrazide (3k) was identified as the most potent anticancer agent and COX-2 inhibitor. In addition, this compound docked inside the active site of COX-2 succesfully.
Journal Article
Chemical Inhibition of NAT10 Corrects Defects of Laminopathic Cells
by
Demir, Mukerrem
,
Rodriguez, Raphaël
,
Jackson, Stephen P.
in
Aging
,
Cell growth
,
Cell Line, Tumor
2014
Down-regulation and mutations of the nuclear-architecture proteins lamin A and C cause misshapen nuclei and altered chromatin organization associated with cancer and laminopathies, including the premature-aging disease Hutchinson-Gilford progeria syndrome (HGPS). Here, we identified the small molecule \"Remodelin\" that improved nuclear architecture, chromatin organization, and fitness of both human lamin A/C–depleted cells and HGPS-derived patient cells and decreased markers of DNA damage in these cells. Using a combination of chemical, cellular, and genetic approaches, we identified the acetyl-transferase protein NAT10 as the target of Remodelin that mediated nuclear shape rescue in laminopathic cells via microtubule reorganization. These findings provide insights into how NAT10 affects nuclear architecture and suggest alternative strategies for treating laminopathies and aging.
Journal Article