Research ArticleAsian Journal of Biological and Life SciencesVol. 15 | Issue 2 | 2026 | pp. 332–345Open access
In silico Evaluation of Paroxysmal Neurological Disorders Using Molecular Docking Analysis of Hydantoin-Based Compounds Targeting Protein 1XBL for Anticonvulsant Activity
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- 1 Department of Pharmaceutical Chemistry, Pravara Rural College of Pharmacy Pravaranagar, Tal-Rahata, Ahmednagar, Maharashtra, INDIA.
- 2 Department of Master of Science Chemistry; Centre for Material of Electronics Technology, Pune, INDIA.
Published in Asian Journal of Biological and Life Sciences
Correspondence: Rohit Jaysing Bhor
Department of Pharmaceutical Chemistry, Pravara Rural College of Pharmacy Pravaranagar, Tal-Rahata, Ahmednagar, Maharashtra, INDIA.
Email: rohit.bhor69@gmail.com
Copyright: © 2026 Manuscript Technomedia. This is an open access article.
- Published:
- Aug 12, 2026
- Received:
- Apr 21, 2026
- Accepted:
- Jul 9, 2026
How to cite
Thorat, R. R., Bhor, R. J., Bhosale, M. S., Thorat, Y. R., Bhoite, N. A., Algude, A. V., & Mohite, Y. S. (2026). In silico Evaluation of Paroxysmal Neurological Disorders Using Molecular Docking Analysis of Hydantoin-Based Compounds Targeting Protein 1XBL for Anticonvulsant Activity. Asian Journal of Biological and Life Sciences, 15(2), 332–345. https://doi.org/10.5530/ajbls.20260137
Abstract
Introduction: Paroxysm is a chronic neurological disorder characterized by recurrent seizures resulting from abnormal neuronal activity, necessitating the development of safer and more effective anticonvulsant agents. In the present study, a series of hydantoin-based derivatives (RT-1 to RT-9) were evaluated using an integrated in silico approach combining molecular docking and ADMET analysis. Materials and Methods: The target protein (PDB ID: 1XBL) was employed to investigate ligand-protein interactions and binding affinity. Results: Molecular docking results revealed that all compounds exhibited moderate to strong binding affinity, with docking scores ranging from -6.9 to -7.9 kcal/mol. Among them, RT-3, RT-4, and RT-5 demonstrated the highest binding affinity, supported by multiple stabilizing interactions, including hydrogen bonding, hydrophobic contacts, and electrostatic interactions with key amino acid residues such as ASN197, GLU193, and ARG587. ADMET analysis indicated that RT-5 exhibited the highest LD₅₀ value, suggesting low acute toxicity, while RT-9 showed a balanced toxicity profile with minimal hepatotoxicity. Discussion: Pharmacokinetic evaluation revealed that selected compounds (RT-2, RT-5, RT-7, and RT-9) possess high gastrointestinal absorption, indicating good oral bioavailability. Drug-likeness assessment further identified RT-7 and RT-9 as favorable candidates with minimal rule violations. Conclusion: In this research paper; the study highlights RT-3, RT-5, and RT-9 as promising lead compounds for anticonvulsant drug development. However, further structural optimization and experimental validation are required to confirm their therapeutic potential. The findings demonstrate the effectiveness of combining molecular docking and ADMET profiling in accelerating drug discovery.
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Article metadata
| Title | In silico Evaluation of Paroxysmal Neurological Disorders Using Molecular Docking Analysis of Hydantoin-Based Compounds Targeting Protein 1XBL for Anticonvulsant Activity |
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| Authors | Rushikesh Ramdas Thorat; Rohit Jaysing Bhor; Mayur Shivaji Bhosale; Yogita Ramdas Thorat; Nikhil Asaram Bhoite; Anuj Vishnu Algude; Yogiraj Sambhaji Mohite |
| Affiliations | Department of Pharmaceutical Chemistry, Pravara Rural College of Pharmacy Pravaranagar, Tal-Rahata, Ahmednagar, Maharashtra, INDIA.; Department of Master of Science Chemistry; Centre for Material of Electronics Technology, Pune, INDIA. |
| Corresponding author | rohit.bhor69@gmail.com |
| Journal | Asian Journal of Biological and Life Sciences |
| Volume / Issue | Vol. 15, Issue 2 (2026) |
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