Maan Singh, Mayuri P. Sawarkar, Madhukiran R. Dhondale, Dolores R. Serrano, Ashish Kumar Agrawal and Dinesh Kumar*,
{"title":"基于共晶工程的低渗透性原料药渗透率提高策略","authors":"Maan Singh, Mayuri P. Sawarkar, Madhukiran R. Dhondale, Dolores R. Serrano, Ashish Kumar Agrawal and Dinesh Kumar*, ","doi":"10.1021/acs.cgd.5c00755","DOIUrl":null,"url":null,"abstract":"<p >The oral bioavailability and, in turn, therapeutic efficacy of an active pharmaceutical ingredient (API) are significantly affected by poor API solubility and permeability issues. Permeability issues affect approximately one-third of commercialized APIs. Cocrystals are a type of supramolecular compound that are obtained by noncovalent interactions, particularly H-bonds, between APIs and coformers in a definite stoichiometric ratio by the process of cocrystallization. Through the meticulous selection of coformers for a given API, both solubility and permeability issues can be mitigated. Cocrystallization, based on the properties of the selected coformer, can improve the permeability of APIs by enhancing the absorption flux, by increasing the lipophilicity of the molecule (lipophilic coformer), and through the enhancement of the thermodynamic activity. This review emphasizes the concepts of permeability and their enhancement through cocrystallization for improving the oral bioavailability of APIs. The selection of coformers for cocrystallization experiments, followed by their characterization post preparation, is discussed. Various in vitro and ex vivo permeability assessment methods have also been described in detail. Authors have discussed the literature trend and industrial progress related to permeability enhancement using cocrystallization over the past two decades and summarized the outcomes. The impact of solution-mediated phase transformation (SMPT) on the cocrystal permeability, followed by regulatory approval guidelines and a filing procedure, has also been discussed. Finally, the review concludes with a regulatory perspective on the cocrystals.</p>","PeriodicalId":34,"journal":{"name":"Crystal Growth & Design","volume":"25 18","pages":"7852–7868"},"PeriodicalIF":3.4000,"publicationDate":"2025-09-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Cocrystal Engineering-Based Strategies for Enhancing the Permeability of Poorly Permeable APIs\",\"authors\":\"Maan Singh, Mayuri P. Sawarkar, Madhukiran R. Dhondale, Dolores R. Serrano, Ashish Kumar Agrawal and Dinesh Kumar*, \",\"doi\":\"10.1021/acs.cgd.5c00755\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >The oral bioavailability and, in turn, therapeutic efficacy of an active pharmaceutical ingredient (API) are significantly affected by poor API solubility and permeability issues. Permeability issues affect approximately one-third of commercialized APIs. Cocrystals are a type of supramolecular compound that are obtained by noncovalent interactions, particularly H-bonds, between APIs and coformers in a definite stoichiometric ratio by the process of cocrystallization. Through the meticulous selection of coformers for a given API, both solubility and permeability issues can be mitigated. Cocrystallization, based on the properties of the selected coformer, can improve the permeability of APIs by enhancing the absorption flux, by increasing the lipophilicity of the molecule (lipophilic coformer), and through the enhancement of the thermodynamic activity. This review emphasizes the concepts of permeability and their enhancement through cocrystallization for improving the oral bioavailability of APIs. The selection of coformers for cocrystallization experiments, followed by their characterization post preparation, is discussed. Various in vitro and ex vivo permeability assessment methods have also been described in detail. Authors have discussed the literature trend and industrial progress related to permeability enhancement using cocrystallization over the past two decades and summarized the outcomes. The impact of solution-mediated phase transformation (SMPT) on the cocrystal permeability, followed by regulatory approval guidelines and a filing procedure, has also been discussed. 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Cocrystal Engineering-Based Strategies for Enhancing the Permeability of Poorly Permeable APIs
The oral bioavailability and, in turn, therapeutic efficacy of an active pharmaceutical ingredient (API) are significantly affected by poor API solubility and permeability issues. Permeability issues affect approximately one-third of commercialized APIs. Cocrystals are a type of supramolecular compound that are obtained by noncovalent interactions, particularly H-bonds, between APIs and coformers in a definite stoichiometric ratio by the process of cocrystallization. Through the meticulous selection of coformers for a given API, both solubility and permeability issues can be mitigated. Cocrystallization, based on the properties of the selected coformer, can improve the permeability of APIs by enhancing the absorption flux, by increasing the lipophilicity of the molecule (lipophilic coformer), and through the enhancement of the thermodynamic activity. This review emphasizes the concepts of permeability and their enhancement through cocrystallization for improving the oral bioavailability of APIs. The selection of coformers for cocrystallization experiments, followed by their characterization post preparation, is discussed. Various in vitro and ex vivo permeability assessment methods have also been described in detail. Authors have discussed the literature trend and industrial progress related to permeability enhancement using cocrystallization over the past two decades and summarized the outcomes. The impact of solution-mediated phase transformation (SMPT) on the cocrystal permeability, followed by regulatory approval guidelines and a filing procedure, has also been discussed. Finally, the review concludes with a regulatory perspective on the cocrystals.
期刊介绍:
The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials.
Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.