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Modified Release tablets are designed to control the rate, timing, and location of drug release within the gastrointestinal tract for either prolonged or optimal drug delivery.
Released By Upperton
January 30, 2026
In the evolving landscape of pharmaceutical development, modified release (MR) tablets have emerged as a cornerstone technology for improving therapeutic outcomes and patient compliance. Unlike immediate-release formulations, MR tablets are designed to control the rate, timing, and location of drug release within the gastrointestinal tract for either prolonged or optimal drug delivery. This capability offers significant advantages, including sustained plasma concentrations, reduced dosing frequency, and minimised side effects. However, achieving these benefits requires a strategic approach to formulation design and manufacturing.
In this article, we’ll explore the key strategies for optimising drug delivery through modified release tablets, the challenges developers face, and the technologies shaping the future of MR formulations.
Traditional immediate-release tablets deliver the active pharmaceutical ingredient (API) rapidly after ingestion, often resulting in peaks and troughs in plasma drug levels. These fluctuations can lead to:
Modified release systems address these issues by maintaining therapeutic levels over an extended period, reducing dosing frequency, and improving overall patient experience. They can also allow for less frequent dosing, resulting in higher levels of patient adherence, and fewer side effects caused by the reduction of peaks and troughs in blood levels. For chronic conditions such as hypertension, diabetes, or pain management, MR tablets can transform treatment outcomes. Certain MR strategies can also be used where targeted drug release is critical, such delivery to a specific area of the GI tract (e.g Colon) where the drug is absorbed.
Designing an effective MR tablet involves balancing drug properties, excipient functionality, and manufacturing processes. Here are some of the primary strategies:
1. Matrix Tablets
Matrix tablets incorporate the API within a polymer network that controls drug release through diffusion and erosion. Common approaches include:
2. Coating Technologies
Film coatings can be applied to tablets or pellets to modulate drug release. Techniques include:
3. Osmotic Systems
Osmotic-controlled release tablets use a semi-permeable membrane and osmotic pressure to deliver the drug at a near-constant rate, independent of gastrointestinal conditions. When the tablet enters the GI tract, water permeates through the membrane, dissolving the drug inside the core. The resulting solution is then pushed out through a laser-drilled orifice, driven by osmotic pressure. This mechanism ensures a predictable and sustained release profile, reducing variability caused by food intake or pH changes. Osmotic systems are particularly valuable for drugs requiring steady plasma levels, though they involve complex design and higher manufacturing costs compared to conventional approaches.
4. Multi-Particulate Formulations
Instead of a single tablet, multi-particulate formulations allow for the delivery of multiple APIs with different dissolution profiles. This simplifies release rates, and facilitates adjustments to pharmacokinetic and clinical performance. Multi-particulate can be particularly beneficial for alleviating side effects through the reduction of the effect of food on absorption.
Optimising MR tablets requires attention to several factors:
The characteristics of the API are particularly important. Especially pertinent information includes:
“Modified release isn’t simply about making tablets that last longer; it’s about therapies that fit patients’ lives and medical needs.” At Upperton we combine a team of experienced scientists with world class GMP facilities and equipment to develop a wide range of modified release dosage forms. Our goal is simple: control release so patients don’t have to control their day.” – Dr Ian Lafferty.
Modified release tablets are powerful for enhancing drug delivery, improving patient adherence, and maximising therapeutic outcomes. By leveraging specifically selected modified release formulations, pharmaceutical developers can tailor release profiles to meet clinical needs. As technology continues to evolve, the potential for modified release in drug delivery will continue to improve patient experiences and outcomes.
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