2020Molecular PharmaceuticsRequires access

Cocrystal Solubility Advantage and Dose/Solubility Ratio Diagrams: A Mechanistic Approach To Selecting Additives and Controlling Dissolution–Supersaturation–Precipitation Behavior

Katie L. Cavanagh, Gislaine Kuminek, Naír Rodríguez‐Hornedo

Open publisher page 35 citations

Abstract

Two of the main questions regarding cocrystal selection and formulation development are whether the will be stable and how fast can it dissolve the drug dose. Dissolving the drug dose may require cocrystals with a high solubility advantage over drug (SA = S CC / S D ), but these may have limited potential to sustain drug supersaturation. Thus, we propose a twofold approach to mitigate the risk of drug precipitation by optimizing thermodynamic (SA) and kinetic factors (nucleation inhibitors). This risk can be evaluated by considering the cocrystal SA and drug dose/solubility ratio ( D 0D = C dose / S D ), which in tandem represent the maximum theoretical supersaturation that a cocrystal may generate, the driving force for drug precipitation, and the potential for dose-/solubility-limited absorption. cocrystals with SA and D 0D values above critical supersaturation are prone to rapid precipitation, often negating their utility as a solubility enhancement tool. This work presents a mechanistic approach to controlling the dissolution–supersaturation–precipitation behavior of cocrystal systems, whereby relationships between SA, D 0D, and the drug-solubilizing power of surfactants (SP D = S D,T / S D,aq ) are used to fine-tune cocrystal-inherent supersaturation by rational additive selection. Experimental results with danazol–vanillin cocrystal demonstrate how SA, D 0D, and SP D are key thermodynamic parameters to understanding the kinetic cocrystal behavior and how the risks of cocrystal development may be mitigated through the mechanistic formulation design.

About this research paper

What this paper is about

Two of the main questions regarding cocrystal selection and formulation development are whether the will be stable and how fast can it dissolve the drug dose. Dissolving the drug dose may require cocrystals with a high solubility advantage over drug (SA = S CC / S D ), but these may have limited potential to sustain drug supersaturation. Thus, we propose a twofold approach to mitigate the risk of drug precipitation by optimizing thermodynamic (SA) and kinetic factors (nucleation inhibitors). This risk can be evaluated by considering the cocrystal SA and drug dose/solubility ratio ( D 0D = C dose / S D ), which in tandem represent the maximum theoretical supersaturation that a cocrystal may generate, the driving force for drug precipitation, and the potential for dose-/solubility-limited absorption. cocrystals with SA and D 0D values above critical supersaturation are prone to rapid precipitation, often negating their utility as a solubility enhancement tool. This work presents a mechanistic approach to controlling the dissolution–supersaturation–precipitation behavior of cocrystal systems, whereby relationships between SA, D 0D, and the drug-solubilizing power of surfactants (SP D = S D,T / S D,aq ) are used to fine-tune cocrystal-inherent supersaturation by rational additive selection. Experimental results with danazol–vanillin cocrystal demonstrate how SA, D 0D, and SP D are key thermodynamic parameters to understanding the kinetic cocrystal behavior and how the risks of cocrystal development may be mitigated through the mechanistic formulation design.

Why it matters

OpenAlex reports 35 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Two of the main questions regarding cocrystal selection and formulation development are whether the will be stable and how fast can it dissolve the drug dose. Dissolving the drug dose may require cocrystals with a high solubility advantage over drug (SA = S CC / S D ), but these may have limited potential to sustain drug supersaturation. Thus, we propose a twofold approach to mitigate the risk of drug precipitation by optimizing thermodynamic (SA) and kinetic factors (nucleation inhibitors). This risk can be evaluated by considering the cocrystal SA and drug dose/solubility ratio ( D 0D = C dose / S D ), which in tandem represent the maximum theoretical supersaturation that a cocrystal may generate, the driving force for drug precipitation, and the potential for dose-/solubility-limited absorption. cocrystals with SA and D 0D values above critical supersaturation are prone to rapid precipitation, often negating their utility as a solubility enhancement tool. This work presents a mechanistic approach to controlling the dissolution–supersaturation–precipitation behavior of cocrystal systems, whereby relationships between SA, D 0D, and the drug-solubilizing power of surfactants (SP D = S D,T / S D,aq ) are used to fine-tune cocrystal-inherent supersaturation by rational additive selection. Experimental results with danazol–vanillin cocrystal demonstrate how SA, D 0D, and SP D are key thermodynamic parameters to understanding the kinetic cocrystal behavior and how the risks of cocrystal development may be mitigated through the mechanistic formulation design.

Key concepts: Cocrystal, Supersaturation, Solubility, Dissolution, Precipitation, Chemistry, Nucleation, Chemical engineering

Related papers

Back to paper searchBrowse research topicsOriginal source
Cocrystal Solubility Advantage and Dose/Solubility Ratio Diagrams: A Mechanistic Approach To Selecting Additives and Controlling Dissolution–Supersaturation–Precipitation Behavior — Research Paper | ScholarLens