ArticleUltrasonics sonochemistry2026
Ultrasound-assisted cocrystal of emodin and matrine: An opportunity to improve synergistic bioavailability.
Article in Ultrasonics sonochemistry, 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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Abstract
Drug-drug cocrystal technology especially for natural products, can optimize the physicochemical properties of drugs without altering their chemical structures, thereby enabling synergistic and dual-drug therapeutic effects. In this study, a novel drug-drug cocrystal composed of emodin (EM) and matrine (MA) was successfully prepared using ultrasound-assisted crystallization in a benchtop ultrasonic bath operating at a fixed frequency of 53 kHz. The optimal preparation conditions were a nominal ultrasonic power of 500 W, a crystallization temperature of 35°C, a sonication time of 3 h, and an EM:MA molar ratio of 1:1.5. The cavitation effects generated by ultrasound disrupted the pre-existing intermolecular hydrogen bonds (e.g., drug-solvent or drug self-association) and accelerated molecular diffusion, thereby facilitating the formation of desired drug-drug hydrogen bonds for rapid co-nucleation, shortened co-crystallization time, and high product uniformity. The process was systematically optimized using response surface methodology (RSM) and artificial neural networks (ANNs). The resulting EM-MA cocrystal was characterized by PXRD, DSC, FT-IR, SCXRD, and SEM, which confirmed the formation of O-H···O=C heterosynthons and the stabilizing role of hydrogen-bonding. Cellular assays showed that the cocrystal exhibited stronger inhibitory activity against 4 T1 breast cancer cells than the physical mixture of EM and MA. These results indicate that the novel cocrystal may have potential for further development as a combination drug product, which could improve the bioactivity of natural products.
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