hydrogen and metoprolol

hydrogen has been researched along with metoprolol in 8 studies

Research

Studies (8)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's1 (12.50)29.6817
2010's6 (75.00)24.3611
2020's1 (12.50)2.80

Authors

AuthorsStudies
Cosijns, A; De Beer, T; Evrard, B; Nikolakakis, I; Nizet, D; Remon, JP; Siepmann, F; Siepmann, J; Vervaet, C1
Axelsson, A; Cuppok, Y; Hjaertstam, J; Marucci, M; Muschert, S; Siepmann, F; Siepmann, J1
Khan, MS; Shivakumar, HG; Vishakante, GD1
Dekyndt, B; Neut, C; Siepmann, F; Siepmann, J; Verin, J1
Bashir, L; Husain, T; Khan, M; Maboos, M; Naz, S; Shoaib, MH; Yousuf, RI1
Fu, H; Shan, W; Shen, L; Yang, Y; Yuan, F1
Liu, F; Mohylyuk, V; Murnane, D; Patel, K; Richardson, C; Scott, N1
Afshar Mogaddam, MR; Farajzadeh, MA; Jouyban, A; Limuie Khosrowshahi, B; Marzi Khosrowshahi, E; Nemati, M; Tuzen, M1

Other Studies

8 other study(ies) available for hydrogen and metoprolol

ArticleYear
Porous pellets as drug delivery system.
    Drug development and industrial pharmacy, 2009, Volume: 35, Issue:6

    Topics: Acetaminophen; Cellulose; Chemistry, Pharmaceutical; Drug Delivery Systems; Excipients; Ibuprofen; Metoprolol; Porosity; Sodium Chloride; Spectrum Analysis, Raman

2009
Drug release mechanisms from Kollicoat SR:Eudragit NE coated pellets.
    International journal of pharmaceutics, 2011, May-16, Volume: 409, Issue:1-2

    Topics: Cellulose; Delayed-Action Preparations; Drug Delivery Systems; Excipients; Hydrophobic and Hydrophilic Interactions; Methacrylates; Metoprolol; Models, Theoretical; Permeability; Polymers; Polyvinyls; Water

2011
Porous nanoparticles of metoprolol tartrate produced by spray-drying: development, characterization and in vitro evaluation.
    Acta pharmaceutica (Zagreb, Croatia), 2012, Volume: 62, Issue:3

    Topics: Antihypertensive Agents; Carbonates; Cellulose; Chemical Phenomena; Chitosan; Delayed-Action Preparations; Drug Compounding; Excipients; Kinetics; Metoprolol; Nanoparticles; Particle Size; Polymethacrylic Acids; Solubility; Surface Properties

2012
How to easily provide zero order release of freely soluble drugs from coated pellets.
    International journal of pharmaceutics, 2015, Jan-15, Volume: 478, Issue:1

    Topics: Carbohydrates; Cellulose; Dosage Forms; Drug Delivery Systems; Drug Liberation; Metoprolol; Polyvinyls; Propranolol

2015
Formulation development and comparative in vitro study of metoprolol tartrate (IR) tablets.
    Pakistan journal of pharmaceutical sciences, 2016, Volume: 29, Issue:3

    Topics: Administration, Oral; Adrenergic beta-1 Receptor Antagonists; Cellulose; Chemistry, Pharmaceutical; Excipients; Kinetics; Metoprolol; Models, Chemical; Povidone; Pressure; Solubility; Stearic Acids; Tablets; Technology, Pharmaceutical

2016
Preparation of sustained release capsules by electrostatic dry powder coating, using traditional dip coating as reference.
    International journal of pharmaceutics, 2018, May-30, Volume: 543, Issue:1-2

    Topics: Acrylic Resins; Capsules; Cellulose; Delayed-Action Preparations; Drug Compounding; Drug Liberation; Metoprolol; Polymers; Powders; Static Electricity; Talc

2018
Wurster Fluidised Bed Coating of Microparticles: Towards Scalable Production of Oral Sustained-Release Liquid Medicines for Patients with Swallowing Difficulties.
    AAPS PharmSciTech, 2019, Nov-11, Volume: 21, Issue:1

    Topics: Administration, Oral; Aged; Cellulose; Child; Deglutition Disorders; Delayed-Action Preparations; Drug Compounding; Excipients; Humans; Metoprolol; Nanoparticles; Particle Size; Polymethacrylic Acids; Powders; Rheology; Stearic Acids

2019
Application of microcrystalline cellulose as an efficient and cheap sorbent for the extraction of metoprolol from plasma and wastewater before HPLC-MS/MS determination.
    Biomedical chromatography : BMC, 2022, Volume: 36, Issue:7

    Topics: Cellulose; Chromatography, High Pressure Liquid; Metoprolol; Solid Phase Extraction; Tandem Mass Spectrometry; Wastewater

2022