Pharmaceutical applications of cyclodextrins: effects on drug permeation through biological membranes
Фармацевтическое применение циклодекстринов: влияние на проницаемость лекарственных веществ через биологические мембраны
2011-04-04
SCID: 54.1/gsejcmha
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biological membranescyclodextrinsdrug permeationthermodynamic activityunstirred water layer
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Abstract (AI)
OBJECTIVES: Cyclodextrins are useful solubilizing excipients that have gained currency in the formulator's armamentarium based on their ability to temporarily camouflage undesirable physicochemical properties. In this context cyclodextrins can increase oral bioavailability, stabilize compounds to chemical and enzymatic degradation and can affect permeability through biological membranes under certain circumstances. This latter property is examined herein as a function of the published literature as well as work completed in our laboratories. KEY FINDINGS: Cyclodextrins can increase the uptake of drugs through biological barriers if the limiting barrier component is the unstirred water layer (UWL) that exists between the membrane and bulk water. This means that cyclodextrins are most useful when they interact with lipophiles in systems where such an UWL is present and contributes significantly to the barrier properties of the membrane. Furthermore, these principles are used to direct the optimal formulation of drugs in cyclodextrins. A second related critical success factor in the formulation of cyclodextrin-based drug product is an understanding of the kinetics and thermodynamics of complexation and the need to optimize the cyclodextrin amount and drug-to-cyclodextrin ratios. Drug formulations, especially those targeting compartments associated with limited dissolution (i.e. the eye, subcutaneous space, etc.), should be carefully designed such that the thermodynamic activity of the drug in the formulation is optimal meaning that there is sufficient cyclodextrin to solubilize the drug but not more than that. Increasing the cyclodextrin concentration decreases the formulation 'push' and may reduce the bioavailability of the system. CONCLUSIONS: A mechanism-based understanding of cyclodextrin complexation is essential for the appropriate formulation of contemporary drug candidates.
Key Findings
1
Cyclodextrins enhance drug uptake across biological barriers primarily when the unstirred water layer is the rate-limiting permeability component.
2
Excess cyclodextrin lowers the formulation’s thermodynamic driving force for drug permeation and may reduce bioavailability; mechanism-based complexation knowledge is therefore essential.
3
For poorly dissolving compartments such as the eye and subcutaneous space, formulations should maximize drug thermodynamic activity while providing sufficient, but not excessive, cyclodextrin for solubilization.
4
Optimal cyclodextrin formulations require understanding complexation kinetics and thermodynamics, including appropriate cyclodextrin quantities and drug-to-cyclodextrin ratios.
5
Their permeation-enhancing effects are greatest when cyclodextrins interact with lipophilic drugs in systems where the unstirred water layer substantially contributes to barrier resistance.
Research Object
Cyclodextrin-based drug formulations and drug permeation through biological membranes
Research Subject
The effects and mechanisms of cyclodextrin complexation on drug membrane permeation, bioavailability, and formulation performance
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2011-04-04
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