Advancing the understanding of the tablet disintegration phenomenon - an update on recent studies.
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Julian Quodbach | Lorina Bisharat | M. Cespi | A. Berardi | D. R. Perinelli | Safwan Abdel Rahim | J. Quodbach
[1] Blair F. Johnston,et al. Quantification of Swelling Characteristics of Pharmaceutical Particles. , 2020, International journal of pharmaceutics.
[2] J. Østergaard,et al. Biopharmaceutical implications of excipient variability on drug dissolution from immediate release products. , 2020, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[3] B. Alonso,et al. Development of alginate esters as novel multifunctional excipients for direct compression. , 2020, Carbohydrate polymers.
[4] Lorina Bisharat,et al. Temperature: an overlooked factor in tablet disintegration. , 2020, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[5] Gerard R. Klinzing,et al. The Effect of Inorganic Salt on Disintegration of Tablets with High Loading of Amorphous Solid Dispersion Containing Copovidone , 2020, Pharmaceutical Research.
[6] L. Leclercq,et al. Structure-Properties Relationship in the Evaluation of Alginic Acid Functionality for Tableting , 2020, AAPS PharmSciTech.
[7] N. Fotaki,et al. Biopharmaceutical Understanding of Excipient Variability on Drug Apparent Solubility Based on Drug Physicochemical Properties. Case Study: Superdisintegrants , 2020, The AAPS Journal.
[8] N. Fotaki,et al. Surface dissolution UV Imaging for characterization of superdisintegrants and their impact on drug dissolution. , 2020, International journal of pharmaceutics.
[9] Cordula Stillhart,et al. Formulating amorphous solid dispersions: Impact of inorganic salts on drug release from tablets containing Itraconazole-HPMC extrudate. , 2019, Molecular pharmaceutics.
[10] Yasmín Daglio,et al. Paramylon and synthesis of its ionic derivatives: Applications as pharmaceutical tablet disintegrants and as colloid flocculants. , 2019, Carbohydrate research.
[11] Lorina Bisharat,et al. Evaluation of the Disintegration Action of Soy Polysaccharide by Image Analysis , 2019, AAPS PharmSciTech.
[12] G. Garbacz,et al. Effect of intra- and extragranular addition of highly porous tribasic calcium phosphate on properties of immediate release acyclovir formulation – Comparison with commercial tablets using compendial and biorelevant dissolution methods , 2019, Journal of Drug Delivery Science and Technology.
[13] M. Otsuka,et al. A novel tablet disintegrant from Ocimum canum seeds , 2019, Journal of Drug Delivery Science and Technology.
[14] P. Langguth,et al. Designing robust immediate release tablet formulations avoiding food effects for BCS class 3 drugs , 2019, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[15] B. Bataille,et al. Development of Coprocessed Chitin-Calcium Carbonate as Multifunctional Tablet Excipient for Direct Compression, Part 2: Tableting Properties. , 2019, Journal of pharmaceutical sciences.
[16] R. Salehi,et al. Leucine-grafted starch as a new superdisintegrant for the formulation of domperidone tablets , 2019, Journal of Drug Delivery Science and Technology.
[17] G. Walker,et al. Effect of lignin on the release rate of acetylsalicylic acid tablets. , 2019, International journal of biological macromolecules.
[18] David M. Wilson,et al. The effect of roller compaction and tableting stresses on pharmaceutical tablet performance , 2019, Powder Technology.
[19] Changquan Calvin Sun,et al. A systematic evaluation of dual functionality of sodium lauryl sulfate as a tablet lubricant and wetting enhancer , 2018, International journal of pharmaceutics.
[20] F. Quignard,et al. Evaluation of the super disintegrant functionnalities of alginic acid and calcium alginate for the design of orodispersible mini tablets. , 2018, Carbohydrate polymers.
[21] C. Muehlenfeld,et al. Competing for water: A new approach to understand disintegrant performance , 2018, International journal of pharmaceutics.
[22] P. Kleinebudde,et al. Continuous Single-Step Wet Granulation with Integrated in-Barrel-Drying , 2018, Pharmaceutical Research.
[23] Lorina Bisharat,et al. A Simple and Inexpensive Image Analysis Technique to Study the Effect of Disintegrants Concentration and Diluents Type on Disintegration. , 2018, Journal of pharmaceutical sciences.
[24] Changquan Calvin Sun,et al. Systematic evaluation of common lubricants for optimal use in tablet formulation , 2018, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[25] B. Bataille,et al. Development of Coprocessed Chitin-Calcium Carbonate as Multifunctional Tablet Excipient for Direct Compression. , 2018, Journal of pharmaceutical sciences.
[26] P. Langguth,et al. Formulation strategy towards minimizing viscosity mediated negative food effect on disintegration and dissolution of immediate release tablets , 2018, Drug development and industrial pharmacy.
[27] S. Wren,et al. Mechanistic understanding of the link between Sodium Starch Glycolate properties and the performance of tablets made by wet granulation. , 2017, International journal of pharmaceutics.
[28] B. Bataille,et al. Chitin's Functionality as a Novel Disintegrant: Benchmarking Against Commonly Used Disintegrants in Different Physicochemical Environments. , 2017, Journal of pharmaceutical sciences.
[29] Daniel Markl,et al. Mathematical modelling of liquid transport in swelling pharmaceutical immediate release tablets. , 2017, International journal of pharmaceutics.
[30] P. Saha,et al. The Impact of Disintegrant Type, Surfactant, and API Properties on the Processability and Performance of Roller Compacted Formulations of Acetaminophen and Aspirin , 2017, The AAPS Journal.
[31] J. Gajdziok,et al. Experimental Design for Determination of Effects of Superdisintegrant Combinations on Liquisolid System Properties. , 2017, Journal of pharmaceutical sciences.
[32] D. Markl,et al. A Review of Disintegration Mechanisms and Measurement Techniques , 2017, Pharmaceutical Research.
[33] D. Goodwin,et al. The Impact of Granule Density on Tabletting and Pharmaceutical Product Performance , 2017, Pharmaceutical Research.
[34] Daniel Markl,et al. Non-destructive Determination of Disintegration Time and Dissolution in Immediate Release Tablets by Terahertz Transmission Measurements , 2017, Pharmaceutical Research.
[35] T Flanagan,et al. Biopharmaceutical aspects and implications of excipient variability in drug product performance , 2017, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[36] M. Sacchetti,et al. Role of Water Sorption in Tablet Crushing Strength, Disintegration, and Dissolution , 2017, AAPS PharmSciTech.
[37] P. Heng,et al. Effect of moisture sorption on the performance of crospovidone. , 2016, International journal of pharmaceutics.
[38] Parind Mahendrakumar Desai,et al. Review of Disintegrants and the Disintegration Phenomena. , 2016, Journal of pharmaceutical sciences.
[39] D. Murphy,et al. Correlation of Phosphorus Cross-Linking to Hydration Rates in Sodium Starch Glycolate Tablet Disintegrants Using MRI. , 2016, Journal of pharmaceutical sciences.
[40] J. Tack,et al. Ethanol concentrations in the human gastrointestinal tract after intake of alcoholic beverages. , 2016, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[41] Peter Kleinebudde,et al. A critical review on tablet disintegration , 2015, Pharmaceutical development and technology.
[42] P. Langguth,et al. Oral Solid Dosage Form Disintegration Testing - The Forgotten Test. , 2015, Journal of pharmaceutical sciences.
[43] Peter Kleinebudde,et al. Performance of tablet disintegrants: impact of storage conditions and relative tablet density , 2015, Pharmaceutical development and technology.
[44] P. Pandey,et al. Excipient-process interactions and their impact on tablet compaction and film coating. , 2014, Journal of pharmaceutical sciences.
[45] Parind Mahendrakumar Desai,et al. Functionality of Disintegrants and Their Mixtures in Enabling Fast Disintegration of Tablets by a Quality by Design Approach , 2014, AAPS PharmSciTech.
[46] Jens Frahm,et al. Tablet disintegration studied by high-resolution real-time magnetic resonance imaging. , 2014, Journal of pharmaceutical sciences.
[47] Ahmad Aljaberi,et al. Understanding and optimizing the dual excipient functionality of sodium lauryl sulfate in tablet formulation of poorly water soluble drug: wetting and lubrication , 2013, Pharmaceutical development and technology.
[48] J. Rojas,et al. Functional Assessment of Four Types of Disintegrants and their Effect on the Spironolactone Release Properties , 2012, AAPS PharmSciTech.
[49] Parind Mahendrakumar Desai,et al. Understanding disintegrant action by visualization. , 2012, Journal of pharmaceutical sciences.
[50] M. Subirade,et al. Characterization of amino cross-linked soy protein hydrogels. , 2008, Journal of food science.
[51] L. Augsburger,et al. The influence of swelling capacity of superdisintegrants in different pH media on the dissolution of hydrochlorothiazide from directly compressed tablets , 2005, AAPS PharmSciTech.
[52] M. Roberts,et al. Influence of ethanol on aspirin release from hypromellose matrices. , 2007, International journal of pharmaceutics.
[53] N. Peppas,et al. Hydrogels in Pharmaceutical Formulations , 1999 .
[54] Thomson,et al. An overview of the different excipients useful for the direct compression of tablets. , 2000, Pharmaceutical science & technology today.
[55] Nicholas A. Peppas,et al. Equilibrium swelling behavior of pH-sensitive hydrogels , 1991 .
[56] Ronald A. Siegel,et al. pH-Dependent Equilibrium Swelling Properties of Hydrophobic Polyelectrolyte Copolymer Gels , 1988 .
[57] A H de Boer,et al. Effect of microcrystalline cellulose on liquid penetration in and disintegration of directly compressed tablets. , 1979, Journal of pharmaceutical sciences.
[58] Natubhai R. Patel,et al. Mechanism of action of starch as a disintegrating agent in aspirin tablets , 1966 .