Literature DB >> 27080252

Optimization of hot melt extrusion parameters for sphericity and hardness of polymeric face-cut pellets.

Abdullah S Alshetaili1,2, Bjad K Almutairy1, Saad M Alshahrani2, Eman A Ashour1, Roshan V Tiwari1, Sultan M Alshehri3, Xin Feng1, Bader B Alsulays2, Soumyajit Majumdar1, Nigel Langley4, Karl Kolter5, Andreas Gryczke6, Scott T Martin7, Michael A Repka1,8.   

Abstract

The aim of this study was to formulate face-cut, melt-extruded pellets, and to optimize hot melt process parameters to obtain maximized sphericity and hardness by utilizing Soluplus(®) as a polymeric carrier and carbamazepine (CBZ) as a model drug. Thermal gravimetric analysis (TGA) was used to detect thermal stability of CBZ. The Box-Behnken design for response surface methodology was developed using three factors, processing temperature ( °C), feeding rate (%), and screw speed (rpm), which resulted in 17 experimental runs. The influence of these factors on pellet sphericity and mechanical characteristics was assessed and evaluated for each experimental run. Pellets with optimal sphericity and mechanical properties were chosen for further characterization. This included differential scanning calorimetry, drug release, hardness friability index (HFI), flowability, bulk density, tapped density, Carr's index, and fourier transform infrared radiation (FTIR) spectroscopy. TGA data showed no drug degradation upon heating to 190 °C. Hot melt extrusion processing conditions were found to have a significant effect on the pellet shape and hardness profile. Pellets with maximum sphericity and hardness exhibited no crystalline peak after extrusion. The rate of drug release was affected mainly by pellet size, where smaller pellets released the drug faster. All optimized formulations were found to be of superior hardness and not friable. The flow properties of optimized pellets were excellent with high bulk and tapped density.

Entities:  

Keywords:  Box–Behnken design; Soluplus®; carbamazepine; design of experiment; face-cut pellets; hardness; hot melt extrusion; sphericity

Mesh:

Substances:

Year:  2016        PMID: 27080252      PMCID: PMC5041532          DOI: 10.1080/03639045.2016.1178769

Source DB:  PubMed          Journal:  Drug Dev Ind Pharm        ISSN: 0363-9045            Impact factor:   3.225


  26 in total

1.  Optimization and scale-up of a fluid bed tangential spray rotogranulation process.

Authors:  J Bouffard; H Dumont; F Bertrand; R Legros
Journal:  Int J Pharm       Date:  2006-11-12       Impact factor: 5.875

Review 2.  Pharmaceutical applications of hot-melt extrusion: part I.

Authors:  Michael M Crowley; Feng Zhang; Michael A Repka; Sridhar Thumma; Sampada B Upadhye; Sunil Kumar Battu; James W McGinity; Charles Martin
Journal:  Drug Dev Ind Pharm       Date:  2007-09       Impact factor: 3.225

3.  Comparative evaluation of flow for pharmaceutical powders and granules.

Authors:  Rakhi B Shah; Mobin A Tawakkul; Mansoor A Khan
Journal:  AAPS PharmSciTech       Date:  2008-02-15       Impact factor: 3.246

4.  Stability-enhanced hot-melt extruded amorphous solid dispersions via combinations of Soluplus® and HPMCAS-HF.

Authors:  Saad M Alshahrani; Wenli Lu; Jun-Bom Park; Joseph T Morott; Bader B Alsulays; Soumyajit Majumdar; Nigel Langley; Karl Kolter; Andreas Gryczke; Michael A Repka
Journal:  AAPS PharmSciTech       Date:  2015-01-08       Impact factor: 3.246

5.  Influence of pressurized carbon dioxide on ketoprofen-incorporated hot-melt extruded low molecular weight hydroxypropylcellulose.

Authors:  Eman A Ashour; Vijay Kulkarni; Bjad Almutairy; Jun-Bom Park; Sejal P Shah; Soumyajit Majumdar; Zhuoyang Lian; Elanor Pinto; Vivian Bi; Thomas Durig; Scott T Martin; Michael A Repka
Journal:  Drug Dev Ind Pharm       Date:  2015-05-22       Impact factor: 3.225

6.  Influence of degassing on hot-melt extrusion process.

Authors:  Saad M Alshahrani; Joseph T Morott; Abdullah S Alshetaili; Roshan V Tiwari; Soumyajit Majumdar; Michael A Repka
Journal:  Eur J Pharm Sci       Date:  2015-08-19       Impact factor: 4.384

Review 7.  Hot-melt extrusion--basic principles and pharmaceutical applications.

Authors:  Bo Lang; James W McGinity; Robert O Williams
Journal:  Drug Dev Ind Pharm       Date:  2014-02-13       Impact factor: 3.225

8.  Extrusion-spheronization of pH-sensitive polymeric matrix pellets for possible colonic drug delivery.

Authors:  K Krogars; J Heinämäki; J Vesalahti; M Marvola; O Antikainen; J Yliruusi
Journal:  Int J Pharm       Date:  2000-04-20       Impact factor: 5.875

9.  Melt extrusion--an alternative method for enhancing the dissolution rate of 17beta-estradiol hemihydrate.

Authors:  S Hülsmann; T Backensfeld; S Keitel; R Bodmeier
Journal:  Eur J Pharm Biopharm       Date:  2000-05       Impact factor: 5.571

10.  Preparation of carbamazepine-Soluplus solid dispersions by hot-melt extrusion, and prediction of drug-polymer miscibility by thermodynamic model fitting.

Authors:  Jelena Djuris; Ioannis Nikolakakis; Svetlana Ibric; Zorica Djuric; Kyriakos Kachrimanis
Journal:  Eur J Pharm Biopharm       Date:  2013-01-18       Impact factor: 5.571

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Authors:  Xin Feng; Feng Zhang
Journal:  Drug Deliv Transl Res       Date:  2018-12       Impact factor: 4.617

2.  Potential of solid dispersions to enhance solubility, bioavailability, and therapeutic efficacy of poorly water-soluble drugs: newer formulation techniques, current marketed scenario and patents.

Authors:  Sultan Alshehri; Syed Sarim Imam; Afzal Hussain; Mohammad A Altamimi; Nabil K Alruwaili; Fahad Alotaibi; Abdullah Alanazi; Faiyaz Shakeel
Journal:  Drug Deliv       Date:  2020-11-09       Impact factor: 6.419

3.  The Development and Optimization of Hot-Melt Extruded Amorphous Solid Dispersions Containing Rivaroxaban in Combination with Polymers.

Authors:  Jong-Hwa Lee; Hyeong Sik Jeong; Jong-Woo Jeong; Tae-Sung Koo; Do-Kyun Kim; Young Ho Cho; Gye Won Lee
Journal:  Pharmaceutics       Date:  2021-03-06       Impact factor: 6.321

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