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Oral Drug Delivery Systems: Continuous-Release Systems01:26

Oral Drug Delivery Systems: Continuous-Release Systems

Continuous-release drug delivery systems offer a strategic approach to maintaining therapeutic drug levels over extended periods following oral administration. By modulating the release rate of active pharmaceutical ingredients, these systems minimize fluctuations in plasma concentrations, which enhances clinical efficacy and reduces the need for frequent dosing. Such characteristics make them particularly advantageous in managing chronic diseases where patient adherence and stable drug...
Bioavailability Enhancement: Drug Stability Enhancement and GI Retention01:05

Bioavailability Enhancement: Drug Stability Enhancement and GI Retention

Improving a drug's stability in the gastrointestinal (GI) tract is paramount for enhancing its bioavailability and therapeutic effectiveness. Various strategies are employed to protect the drug from the harsh gastric milieu and to ensure its release and absorption at the desired site within the GI tract.Polymer coatings are one such method used to shield drugs from the stomach's acidic environment. By preventing premature drug release, these coatings improve the bioavailability of unstable...
Oral Drug Delivery Systems: Delayed-Release Systems01:11

Oral Drug Delivery Systems: Delayed-Release Systems

Delayed-release drug delivery systems are specialized pharmaceutical formulations designed to postpone the release of active compounds until the drug reaches a specific region of the gastrointestinal (GI) tract, typically the intestine. These systems are essential for drugs that may cause gastric irritation, are unstable in acidic environments, or need to exert therapeutic effects locally in the intestinal or colonic regions.The core feature of delayed-release systems is the use of enteric...
Modified-Release Drug Delivery Systems: Rate-Programmed II01:19

Modified-Release Drug Delivery Systems: Rate-Programmed II

Rate-programmed drug delivery systems release drugs in a controlled manner to maintain therapeutic levels. Three main designs include reservoir, matrix, and hybrid systems.Reservoir systems consist of a drug core enclosed within a membrane that controls drug release. In non-swelling reservoir systems, polymers like ethyl cellulose or polymethacrylates are used. These do not hydrate in aqueous media and control release through membrane thickness, porosity, or insolubility. This type includes...
Drug Delivery Systems: Different Types01:27

Drug Delivery Systems: Different Types

Conventional oral drug products, termed immediate-release (IR) formulations, are engineered to promptly release their active pharmaceutical ingredient (API) upon ingestion, typically in tablets or capsules. This rapid release often results in swift drug absorption and consequent pharmacodynamic effects, although the timing and intensity can vary depending on the drug's properties. Prodrugs within these formulations require metabolic conversion to activate their pharmacodynamic effects,...
Modified-Release Drug Delivery Systems: Overview01:19

Modified-Release Drug Delivery Systems: Overview

Modified-release dosage forms are designed to address the limitations of drugs with short biological half-lives. These forms maintain stable therapeutic drug concentrations over extended periods, reducing the need for frequent dosing. A consistent drug level helps minimize peak-trough fluctuations, which can reduce adverse effects, lower the risk of drug resistance, and improve overall treatment effectiveness.One common type of modified-release form is the extended-release (ER) formulation. ER...

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Updated: May 8, 2026

Encapsulated Cell Technology for the Delivery of Biologics to the Mouse Eye
06:10

Encapsulated Cell Technology for the Delivery of Biologics to the Mouse Eye

Published on: March 30, 2020

Encapsulation of actives for sustained release.

Markus Andersson Trojer1, Lars Nordstierna, Matias Nordin

  • 1Department of Chemical and Biological Engineering, Applied Surface Chemistry, Chalmers University of Technology, Göteborg, Sweden. markus.andersson@chalmers.se.

Physical Chemistry Chemical Physics : PCCP
|September 4, 2013
PubMed
Summary

Microcapsules protect active ingredients and control their release. This review covers encapsulation methods and how to tailor microcapsule properties for desired release profiles, discussing diffusion models and release kinetics.

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Area of Science:

  • Materials Science
  • Chemical Engineering
  • Pharmaceutical Sciences

Background:

  • Microencapsulation is key for protecting active ingredients and enabling controlled release.
  • Sustained or extended release is a primary application of microcapsules.
  • Diverse encapsulation techniques exist, each suited for different active properties and release requirements.

Purpose of the Study:

  • To review various microencapsulation methodologies.
  • To discuss methods for manipulating active release rates and profiles.
  • To introduce diffusion models for analyzing release kinetics.

Main Methods:

  • Internal phase separation
  • Interfacial polymerization
  • Multiple emulsion formation
  • Layer-by-Layer polyelectrolyte adsorption
  • Soft templating techniques

Main Results:

  • The choice of encapsulation method depends on active properties (hydrophilicity, size, state) and desired release characteristics.
  • Physicochemical properties of microcapsules can be tailored to control active release.
  • Diffusion models like Fickian diffusion and Brownian motion can describe release profiles.

Conclusions:

  • Microencapsulation offers versatile strategies for controlled active delivery.
  • Understanding encapsulation methods and release kinetics is crucial for optimizing drug delivery and product performance.
  • Accurate modeling of release profiles aids in designing effective microcapsule systems.