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Factors Affecting Dissolution: Particle Size and Effective Surface Area01:23

Factors Affecting Dissolution: Particle Size and Effective Surface Area

Dissolution kinetics, an essential aspect of oral drug delivery, is significantly influenced by the drug's particle size. According to the Noyes-Whitney dissolution model, the dissolution rate correlates directly with the drug's surface area. The larger the surface area, the higher the drug's solubility in water, leading to a faster drug dissolution rate. Reducing particle size increases the effective surface area, enhancing the dissolution process. Micronization and nanosizing are employed to...
In Vitro Drug Dissolution: Alternative Methods01:17

In Vitro Drug Dissolution: Alternative Methods

Alternative drug dissolution methods include the rotating bottle, intrinsic dissolution test, peristalsis, and the Franz diffusion cell method. The rotating bottle method involves meticulously rotating tightly capped controlled-release beads in a temperature-controlled bath. Periodic decanting of samples allows for residue assay, followed by refilling with fresh medium and testing at various pH levels to emulate the gastrointestinal tract conditions.In contrast, the intrinsic dissolution test...
In Vitro Drug Dissolution: Compendial Testing Models II01:09

In Vitro Drug Dissolution: Compendial Testing Models II

Various dissolution methods are utilized to assess a drug’s dissolution rate, including the flow-through cell, paddle-over-disk, cylinder, and reciprocating disk methods.The flow-through cell apparatus (USP (United States Pharmacopeia) method 4) comprises a reservoir for the dissolution medium and a pump that propels the medium through the cell containing the test sample. This method is crucial for assessing modified-release dosage forms with minimally soluble active ingredients, maintaining...
In Vitro Drug Dissolution: Compendial Testing Models I01:13

In Vitro Drug Dissolution: Compendial Testing Models I

Compendial dissolution methods are standardized procedures defined by pharmacopeias to evaluate the rate at which a drug dissolves in a specific medium. These methods ensure batch-to-batch consistency, enable quality control, and support the prediction of drug bioavailability. They are critical for both immediate and modified-release drug products.The apparatuses used for dissolution testing differ in their design and mechanical function, but all aim to simulate the physiological environment of...
Drug Dissolution: Requirements and Profile Comparison01:14

Drug Dissolution: Requirements and Profile Comparison

The acceptance criteria for dissolution profile data are anchored in Q values, representing the percentage of drug dissolved within a specified period. This assessment unfolds in three stages:First Stage: The test passes if all six drug dosage units are equal to or greater than Q plus 5%; otherwise, the sample proceeds to the second stage.Second Stage: The average of twelve units must be equal to or greater than Q, with no unit falling below Q - 15% to pass; if not, it progresses to the final...
Theories of Dissolution: Diffusion Layer Model01:15

Theories of Dissolution: Diffusion Layer Model

Dissolution, the process by which drug particles dissolve in a solvent, is explained by the diffusion layer model, a theoretical framework that simulates the absorption of oral drugs and allows us to analyze experimental data.
This process starts with a thin layer, saturated with the drug, forming at the interface between the solid and liquid. The solute then diffuses from this layer into the main solution. The Noyes-Whitney equation suggests that the rate of dissolution relies on the diffusion...

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Updated: May 21, 2026

Coherent anti-Stokes Raman Scattering (CARS) Microscopy Visualizes Pharmaceutical Tablets During Dissolution
09:59

Coherent anti-Stokes Raman Scattering (CARS) Microscopy Visualizes Pharmaceutical Tablets During Dissolution

Published on: July 4, 2014

Analytical methods for dissolution testing of nanosized drugs.

Daniel Jünemann1, Jennifer Dressman

  • 1Institute of Pharmaceutical Technology, Goethe University, Frankfurt, Germany. daniel.juenemann@midas-pharma.com

The Journal of Pharmacy and Pharmacology
|June 13, 2012
PubMed
Summary

Nanosizing drugs theoretically enhances dissolution, but experimental dissolution testing is crucial for accurate in vitro-in vivo correlations. Syringe filters and ion-selective electrodes are suitable for measuring nanosized drug dissolution rates.

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Area of Science:

  • Pharmaceutical Sciences
  • Materials Science

Background:

  • Nanosizing drug particles offers theoretical advantages for improving dissolution rates.
  • Characterizing the dissolution behavior of nanosized drugs requires specialized in vitro dissolution testing.

Purpose of the Study:

  • To review the theoretical benefits of drug nanosizing on dissolution.
  • To evaluate in vitro dissolution testing methods for nanosized drugs.
  • To establish a foundation for in vitro-in vivo correlations.

Main Methods:

  • Literature review of various in vitro dissolution testing techniques (dialysis, turbidity, fiber optics, FFF, microdialysis, ultrasonic resonance, centrifugal filters).
  • Experimental evaluation of ion-selective electrodes and syringe filters for drug dissolution measurement.
  • Discussion of coupling dissolution data with simulation software (e.g., STELLA©) for predicting in vivo behavior.

Main Results:

  • The increase in dissolution rate for nanosized drugs is often not commensurate with simple surface area increases predicted by theories like the Nernst-Brunner equation.
  • The diffusion layer thickness (δ) is a critical factor that cannot be easily assessed, making direct calculation of dissolution rate from surface area inappropriate.
  • Several techniques, including dialysis, turbidity, fiber optics, FFF, microdialysis, ultrasonic resonance, and centrifugal filters, were reviewed for assessing drug release.
  • Ion-selective electrodes and syringe filters demonstrated suitability for measuring nanosized drug dissolution rates.

Conclusions:

  • Accurate in vitro dissolution testing is essential for predicting in vivo drug performance.
  • Syringe filters with appropriate pore sizes and ion-selective electrodes are effective methods for measuring the dissolution rate of nanosized drugs.
  • Experimental data on dissolution rates, considering factors beyond surface area like boundary layer thickness, are necessary for reliable in vitro-in vivo correlations.