Rational Cocrystal Design of Hesperetin Using Integrated Molecular Docking, SAPT, and DFT Approach

Puspita, Oktavia E. and Salam, Rudy and Sulistyowaty, Melanny I. and Setyawan, Dwi (2026) Rational Cocrystal Design of Hesperetin Using Integrated Molecular Docking, SAPT, and DFT Approach. Tropical Journal of Natural Product Research, 10 (3). 7772 - 7778.

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Abstract

Cocrystallization represents a promising strategy for enhancing the physicochemical properties of poorly soluble active pharmaceutical ingredients (APIs), such as hesperetin (HES), a bioflavonoid with significant therapeutic potential but limited aqueous solubility. Predicting suitable coformers for stable cocrystal formation with a given API remains challenging, as conventional experimental screening is resource-intensive and largely dependent on trial-and-error. This study aims to predict the cocrystal-forming potential of hesperetin with various coformers through an integrated in silico approach. Three computational methods were utilized i.e. molecular docking for preliminary screening of coformers based on binding affinity and hydrogen-bonding capacity; Symmetry-Adapted Perturbation Theory (SAPT) to analyze intermolecular interaction energies and assess contributions from electrostatics, induction, dispersion, and exchange-repulsion; and Density Functional Theory (DFT) to optimize the geometry of hesperetin�coformer complexes and calculate interaction energies indicative of cocrystal stability. The findings indicate that adipic acid and glutaric acid are the most promising coformers, exhibiting strong interaction energy (�Eint) of-31.4 kcal/mol, directional hydrogen bonding, and favorable secondary noncovalent interactions. Although citric acid can form hydrogen bonds, it provides lower net stabilization due to steric hindrance. In summary, this computational framework offers a rational and efficient strategy for identifying suitable coformers prior to laboratory synthesis. This approach may accelerate the development of solubility-enhanced hesperetin formulations and is broadly applicable to other poorly soluble naturally occurring compounds. : © 2026 Puspita et al.

Item Type: Article
Additional Information: Cited by: 0; All Open Access; Gold Open Access
Uncontrolled Keywords: Cocrystal, Hesperetin, Adipic acid, Glutaric acid, Citric acid, Molecular docking
Subjects: R Medicine > RM Therapeutics. Pharmacology > RM182-190 Other therapeutic procedures Including acupuncture, pneumatic aspiration, spinal puncture, pericardial puncture
Divisions: Artikel Ilmiah > SCOPUS INDEXED JOURNAL
Creators:
CreatorsNIM
Puspita, Oktavia E.UNSPECIFIED
Salam, RudyUNSPECIFIED
Sulistyowaty, Melanny I.UNSPECIFIED
Setyawan, DwiUNSPECIFIED
Depositing User: Dewi Puspita
Date Deposited: 05 Aug 2026 06:15
Last Modified: 05 Aug 2026 06:15
URI: http://repository.unair.ac.id/id/eprint/143017
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