Evidence map›Paper›PMID 41832737›Full record

ArticleCurrent neurovascular research2026

Design, Synthesis, and Evaluation of Voltage-gated Sodium Channel Inhibitors as Anticonvulsant Agents.

Preeti Kumari, Rakhi Mishra, Rupa Mazumder, Avijit Mazumder, Vaishali M Patil

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Article in Current neurovascular research, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

Authors and funding

5 authors.

Preeti KumariDepartment of Pharmaceutical Chemistry, Noida Institute of Engineering and Technology (Pharmacy Institute), Greater Noida, 201306, India.
Rakhi MishraDepartment of Pharmaceutical Chemistry, Noida Institute of Engineering and Technology (Pharmacy Institute), Greater Noida, 201306, India.ORCID 0000-0002-9292-3448
Rupa MazumderDepartment of Pharmaceutics, Noida Institute of Engineering and Technology (Pharmacy Institute), Greater Noida, 201306, India.
Avijit MazumderDepartment of Pharmacology, Noida Institute of Engineering and Technology (Pharmacy Institute), Greater Noida, 201306, India.
Vaishali M PatilCharak School of Pharmacy, Chaudhary Charan Singh University, Meerut, Uttar Pradesh, India.

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

introductionThe objective of this study is to explore the therapeutic potential of synthesized hetero fused acylurea derivatives by investigating their ability to bind with voltagegated sodium ion channel receptors, followed by anticonvulsant evaluation.

methodsThe research involves synthesizing a series of hetero-fused acylurea compounds (4a-f, 5a-f) and evaluating their anticonvulsant potential. The Cresset Flare software was used for in silico testing against the voltage-gated sodium ion channel receptor (PDB ID: 6SXC). Maximal Electroshock Seizure (MES) and subcutaneous pentylenetetrazole (scPTZ) models were used for in vivo testing. The compounds were further assessed using the online SwissADME and Protein Plus software.

resultsAll the compounds exhibited good binding affinity with the selected receptor, with energies ranging from -3.915 to -5.683 kcal/mol. 3-Amino-N-(4-hydroxy-3-methoxybenzoyl) pyrazine-1(2H)-carboxamide (4f) has shown hydrogen bonding for aaLYS A226 (binding affinity of -5.683 kcal/mole) with a bond length of 2.6 Å and was comparable to the standard drug phenytoin (-5.683 kcal/mole). In vivo, study results of the compounds showed an optimum percentage protection range of 34 to 60% against epileptic seizures, compared to 59% protection afforded by phenytoin. DISCUSSION: The synthesized acylurea derivatives demonstrated good sodium-channel binding and moderate to strong anticonvulsant activity. Compound 4f showed the best interaction, comparable to phenytoin, which aligned with its in vivo protection. Overall, the consistent in silico and in vivo results indicate that these molecules, especially 4f, hold promise as lead anticonvulsant candidates.

conclusionAll the synthesized acylurea derivatives possess comparable activity to the standard drug. Thus, it can be concluded that the synthesized analogs are potential candidates for further investigation.

Indexed as

AnticonvulsantsDrug DesignSeizuresVoltage-Gated Sodium Channel BlockersAnimalsDisease Models, AnimalElectroshockMaleMiceMolecular Docking SimulationPentylenetetrazoleRatsAnticonvulsantsPentylenetetrazoleVoltage-Gated Sodium Channel BlockersAcylureasanticonvulsantanti-epilepticcannizzaro-like reactionmolecular dockingsodium ion channel blockers

Identifiers

PMID41832737

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.