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March 21, 2026Antibiotics1 citationsOpen Access

Microwave-Assisted Synthesis of Imidazole-Based Chalcones: Modulating Antimicrobial Activity Through Alkoxy Substitutions

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EMElnar MammadovFatih UniversityNBNilüfer BayrakFatih UniversityNBNeslihan Beyazit

Key Points

  • This research aims to design and synthesize imidazole-based chalcones with enhanced antimicrobial activity through structural modifications.
  • Synthesized monoalkoxy, dialkoxy, and trialkoxy imidazole-based chalcones (IBC1-25) using microwave-assisted methods.
  • Evaluated antimicrobial and antifungal activities against diverse microbial strains.
  • Conducted molecular docking studies to explore binding interactions with regulatory proteins.
  • Predicted ADME properties to assess drug-likeness.
  • IBC5 from the monoalkoxy series showed the broadest antimicrobial activity, especially against S. epidermidis.
  • IBC20 from the dialkoxy analogs exhibited high potency.
  • IBC23 and IBC24 demonstrated significant antibacterial and antifungal effects, while IBC22 and IBC25 were largely ineffective.
  • Alkoxy substituents, particularly methoxy and ethoxy, significantly improved activity against fungi and Gram-positive bacteria.
  • Molecular docking indicated that IBC20 and IBC23 favorably bind to the biofilm regulator TcaR.

Abstract

Background/Objectives: The emergence of antimicrobial resistance necessitates the development of new and effective antimicrobial agents. In this study, three different series of imidazole-based chalcones (IBC1-25) were designed and synthesised using a sustainable approach, with the aim of identifying compounds with enhanced antimicrobial activity. Methods: A series of monoalkoxy, dialkoxy, and trialkoxy imidazole-based chalcones (IBC1–25) were synthesised and evaluated for their antimicrobial and antifungal activities against a range of microbial strains. Structure-activity relationships were analysed, and molecular docking studies were performed to investigate potential binding interactions with biofilm-associated regulatory proteins. In addition, ADME properties were predicted to assess drug-likeness. Results: Among the monoalkoxy derivatives (IBC1-14), IBC5 exhibited the broadest spectrum of activity, particularly against S. epidermidis. Several dialkoxy analogues (IBC17-21) demonstrated improved potency, with IBC20 showing notably high activity. While IBC22 and IBC25 were largely ineffective, IBC23 and IBC24 displayed significant antibacterial and antifungal activities. Overall, dialkoxy and trialkoxy derivatives exhibited enhanced efficacy, whereas monoalkoxy compounds with bulky or long-chain substituents were generally less active. The presence of multiple alkoxy substituents, such as methoxy and ethoxy groups, on the phenyl ring significantly improved activity, particularly against fungi and Gram-positive bacteria. Molecular docking studies revealed that IBC20 and IBC23 showed favourable binding to the biofilm-associated regulator TcaR, suggesting a potential allosteric inhibition mechanism, while weak interactions were observed with TagF. ADME predictions indicated good oral absorption and compliance with key drug-likeness criteria. Conclusions: The results demonstrate that both the number and type of alkoxy substituents play a critical role in antimicrobial activity. In particular, IBC20 and IBC23 emerge as promising candidates for further development as antimicrobial agents targeting biofilm-associated pathways.

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Cite This Study

Mammadov et al. (2026) studied this question.

synapsesocial.com/papers/69be38596e48c4981c678bdchttps://doi.org/10.3390/antibiotics15030310
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