Skip to content

Benzo[h]quinoline-based heterocyclic derivatives as Culex pipiens larvicidal candidates: synthesis, bioactivity, biochemical response, and in silico mechanistic insights.

Aug 2026 · Bioorganic chemistry (Print) · Vol 181, pp. 110407 · 0 citations · 54 references
Medicine

TL;DR

Biochemical evaluation of triazinone 3 revealed significant reductions in acetylcholinesterase activity and in total protein, carbohydrate, and lipid contents compared with untreated larvae, indicating that larval mortality was accompanied by cholinergic disturbance and depletion of metabolic reserves.

Abstract

A new series of benzo[h]quinoline-based heterocyclic derivatives was synthesized and evaluated as larvicidal candidates against third instar Culex pipiens larvae. The prepared compounds showed concentration-dependent toxicity with clear structure-related variation across the series. Benzo[h]quinolone-triazinone hybrid 3 was the most active derivative, giving the lowest LC50 value (142 ± 0.2 μg/mL) and the highest toxicity index (100), and was approximately 2.1-fold more potent than chlorpyrifos under the same assay conditions. Biochemical evaluation of triazinone 3 revealed significant reductions in acetylcholinesterase activity and in total protein, carbohydrate, and lipid contents compared with untreated larvae, indicating that larval mortality was accompanied by cholinergic disturbance and depletion of metabolic reserves. Molecular docking was performed for all synthesized compounds against acetylcholinesterase (AChE) and nicotinic acetylcholine receptor (nAChR), whereas molecular dynamics simulations were applied to the bioassay-selected compound 3 and the reference systems to examine the dynamic behavior of the predicted complexes. Triazinone 3 maintained a stable AChE complex during simulation and showed persistent contacts with residues including SER250, TRP212, HIS567, PHE416, THR252, TYR258, SER327, and PHE457. In the nAChR model, the trajectory was more mobile but retained recurrent contacts involving ASP153, ASN196, SER149, LYS198, TYR200, TYR152, LYS156, and TYR94. SwissADME analysis further suggested that the activity profile was influenced by a balance between target-recognition potential and physicochemical accessibility. Overall, the findings identify benzo[h]quinoline-based heterocycles, particularly triazinone 3, as promising larvicidal scaffolds and support further optimization of this class as potential alternatives to conventional insecticides.

View source

Similar papers

Open access Jul 2026

Design, Synthesis, Characterization, Toxicological Effects, and Molecular Docking Insights of Some Novel Quinoline Compounds as Potential Insecticides

In the pursuit of novel insecticidal agents, a series of new thieno[2,3-b]quinoline derivatives were synthesized via efficient and versatile routes, starting from ethyl 3-aminothieno[2,3-b]quinoline-2-carboxylate. The synthesized compounds including hydrazone (8a–c), arylidene (9a–c), and pyrano[3,2-c]thieno[2,3-b]quinoline (10a–c) derivatives were characterized using FT-IR, NMR, and mass spectrometry. Their insecticidal efficacy was evaluated against both nymph and adult stages of Aphis fabae, with median lethal concentration (LC50) values determined through probit analysis. Compound 10b exhibited the highest potency, with LC50 values of 0.117 mg/L (nymphs) and 0.366 mg/L (adults), approaching the activity of the commercial insecticide acetamiprid. Molecular docking studies against the Aplysia californica acetylcholine-binding protein (AChBP, PDB: 3SQ6), a surrogate for insect nicotinic acetylcholine receptors, revealed strong binding affinities for the pyranothienoquinoline derivatives, particularly 10b (−7.30 kcal/mol), supported by multiple hydrogen bonds and hydrophobic interactions with key residues. These findings underscore the potential of the pyrano[3,2-c]thieno[2,3-b]quinoline scaffold as a promising candidate for the development of new, target-specific insecticides.

Mokhtar A Abdul-Malik, A. K. Kamal El‐dean, Abdel Haleem M. Hussein et al. · 0 citations
Aug 2026

In silico evaluation of novel metabolites from Tricholoma pardinum: Insights into drug-likeness, toxicity and target interactions via molecular docking and dynamics.

Six previously uncharacterized metabolites isolated from the poisonous mushroom Tricholoma pardinum are investigated using an integrated in silico approach to evaluate their therapeutic potential, highlighting the potential of metabolites from T. pardinum as novel scaffolds for developing anticancer agents targeting PARP1 and PIP4K2γ.

A. Amin, H. M. Amin, A. R. Hamad et al. · 0 citations
Jul 2026

Design, larvicidal activity and toxicological assessment of piperine-based amide derivatives against Aedes aegypti (Diptera: Culicidae).

Tetrahydropiperine emerges as a promising scaffold for the development of selective, safe, and effective larvicidal agents by integrating in silico molecular docking and experimental bioassays, and that its saturation enhances larvicidal selectivity while reducing systemic toxicity.

M. S. de Lima Silva, Marcilene S da Silva, Rômulo Carlos Dantas da Cruz et al. · 0 citations
Jul 2026

Insights into novel benzo[h]quinoline-based 2-thioxothiazolidin-4-one and thiazol-4-one hybrids as potential antimicrobial, and antibiofilm candidates: Design, synthesis, molecular modeling, and in-silico ADME studies.

The findings strongly confirm the substituted benzo[h]quinoline core as a highly promising pharmacophore for the development of next-generation antimicrobial medicines effective against both free-floating planktonic cells and tough structured biofilms.

Reham R Raslan, S. Eissa, Moustafa S. Abusaif et al. · 0 citations
Jul 2026

Novel Pyrazole-Quinoxaline Conjugates as Potent HPPD-Inhibiting Herbicides with Notable Crop Safety.

4-Hydroxyphenylpyruvate dioxygenase (HPPD) is a vital target for herbicide development. A series of pyrazole-quinoxaline conjugates were designed and synthesized via scaffold hopping and structural optimization. Bioassays revealed that B9 exhibited potent inhibitory activity against Arabidopsis thaliana HPPD (AtHPPD) with an IC50 of 0.11 μM, outperforming mesotrione (0.22 μM) and topramezone (0.48 μM). B18 achieved 100% control over six weeds at 75 g a.i./ha and retained full efficacy against three broadleaf weeds even at 18.75 g a.i./ha. Furthermore, B18 produced less than 20% injury to rice, wheat, cotton, and peanut at 150 g a.i./ha, exhibiting superior crop safety to topramezone (47%-72%). Molecular docking elucidated the binding mechanism of B18 with AtHPPD via Fe2+ coordination, π-π interactions, and hydrogen bonds. Fluorescence titration and microscale thermophoresis assays further confirmed strong binding of B9 and B18 to AtHPPD. This study demonstrated that B18 is a promising, safe, and efficient HPPD-inhibiting herbicide candidate.

Li Liu, Mei Zhang, Lingling Wang et al. · 0 citations

Related blog posts

MIT News · Artificial Intelligence Aug 27, 2026

Looking beyond natural sequences

A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.

Google DeepMind Blog Nov 25, 2025

AlphaFold: Five years of impact

Explore how AlphaFold has accelerated science and fueled a global wave of biological discovery.