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Applications of Hpmc E15

Applications of Hpmc E15

  • Friday, 24 November 2023
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Applications of Hpmc E15

Hpmc e15 is a water-soluble cellulose ether thickener that is used as a binder, stabilizer, and suspending agent in a variety of applications.hpmc e15 It has a nominal viscosity of 12-18 cps and can be dissolved in hot or cold water, as well as a wide range of organic solvents. It is a non-ionic and non-toxic polymer, and can be used as an alternative to methylcellulose in some pharmaceutical applications. It has a good dispersing ability and is easy to handle. HPMC is also useful for coatings and adhesives, as it adheres to a wide variety of surfaces. It is widely used in the production of films and film-coatings, paper making industry, printing, construction materials, and paints.

It can also be used in the production of tablets, ointments, and suspension formulations.hpmc e15 It is also a very useful ingredient in wet granulation, where it provides improved strength and tablet disintegration. In addition, it can be used to create controlled drug release systems, because it creates a gel barrier on contact with aqueous liquids and prolongs dissolution time. It also can be used as a substitute for gluten in oat and other grain breads, because it is similar to gluten in its ability to trap air bubbles in the dough and allow it to rise.

In a recent study, researchers examined the rheological properties of various concentrations of HPMC E5 and HPMC E15 printing dispersions, and found that they were suitable for use as an orally administrable matrix for 3D-printing customized syringe extrusions.hpmc e15 The dispersions exhibited non-Newtonian (shear-thinning) pseudoplastic behavior and were easily extruded through the printed nozzles. The rheological characteristics of the printing dispersions were measured using stress-strain and viscosity-shear relationships. The results showed that n values were less than 1.0 for all dispersions, indicating that the dispersions were shear-thinning, and that the n value decreased with increasing polymer concentration.

The resulting orodispersible matrices contained phenytoin, a commonly prescribed anti-epilepsy medication. The pharmacokinetic studies demonstrated that the fabricated tablets released phenytoin at a rate consistent with the clinical dosage regimen, and the physical evaluations indicated that the molded tablets were uniform and stable. The shape fidelity of the fabricated patches was also excellent, and the weight variation tests demonstrated uniformity across all batches. The authors concluded that the syringe extrusion method has the potential to produce high-quality orodispersible tablets for personalized medicine.

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