verapamil and fluorescein

verapamil has been researched along with fluorescein in 6 studies

Research

Studies (6)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's2 (33.33)18.2507
2000's3 (50.00)29.6817
2010's1 (16.67)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Israeli, D; Senderoff, DM; Urken, ML; Weinberg, H; Zhang, WX1
Blom-Roosemalen, MC; Breimer, DD; de Boer, AG; Noach, AB; Sakai, M1
Butt, YK; Lo, SC; Lum, HK1
Dohgu, S; Higuchi, S; Katamine, S; Kataoka, Y; Naito, M; Niwa, M; Sawada, Y; Shirabe, S; Takata, F; Tsuruo, T; Yamauchi, A1
Hippalgaonkar, K; Majumdar, S; Srirangam, R1
Ma, S; Miao, P; Miao, Q; Wang, Z; Zhang, Y; Zhao, Y1

Other Studies

6 other study(ies) available for verapamil and fluorescein

ArticleYear
Enhancement of fluorescein perfusion in experimental skin flaps following postischemic washout with iloprost, urokinase, verapamil, and University of Wisconsin solution.
    Journal of reconstructive microsurgery, 1993, Volume: 9, Issue:6

    Topics: Adenosine; Allopurinol; Animals; Female; Fluorescein; Fluoresceins; Glutathione; Iloprost; Insulin; Ischemia; Organ Preservation Solutions; Perfusion; Raffinose; Rats; Rats, Sprague-Dawley; Skin; Surgical Flaps; Tissue Preservation; Urokinase-Type Plasminogen Activator; Verapamil

1993
Absorption enhancement of hydrophilic compounds by verapamil in Caco-2 cell monolayers.
    Biochemical pharmacology, 1994, Sep-15, Volume: 48, Issue:6

    Topics: Biological Transport; Cell Line; Dextrans; Electric Impedance; Fluorescein; Fluorescein-5-isothiocyanate; Fluoresceins; Humans; Intestinal Absorption; Stereoisomerism; Trypan Blue; Verapamil

1994
Hydrogen peroxide induces a rapid production of nitric oxide in mung bean (Phaseolus aureus).
    Nitric oxide : biology and chemistry, 2002, Volume: 6, Issue:2

    Topics: Calcium; Calcium Channel Blockers; Drug Interactions; Fluorescein; Hydrogen Peroxide; NG-Nitroarginine Methyl Ester; Nitric Oxide; Nitric Oxide Synthase; Phaseolus; Plant Leaves; Verapamil

2002
Uptake and efflux of quinacrine, a candidate for the treatment of prion diseases, at the blood-brain barrier.
    Cellular and molecular neurobiology, 2004, Volume: 24, Issue:2

    Topics: Animals; ATP Binding Cassette Transporter, Subfamily B, Member 1; Blood-Brain Barrier; Cation Transport Proteins; Cell Line; Cell Membrane; Cell Polarity; Cimetidine; Cyclosporine; Endothelial Cells; Fluorescein; Membrane Potentials; Mice; Prion Diseases; Quinacrine; Tetraethylammonium; Verapamil

2004
Vitreal kinetics of quinidine in rabbits in the presence of topically coadministered P-glycoprotein substrates/modulators.
    Drug metabolism and disposition: the biological fate of chemicals, 2009, Volume: 37, Issue:8

    Topics: Administration, Topical; Animals; Area Under Curve; ATP Binding Cassette Transporter, Subfamily B, Member 1; Biotransformation; Drug Interactions; Erythromycin; Fluorescein; Fluorescent Dyes; Half-Life; Male; Metabolic Clearance Rate; Ophthalmic Solutions; Prednisolone; Quinidine; Rabbits; Tissue Distribution; Verapamil; Vitreous Body

2009
In vitro potential modulation of baicalin and baicalein on P-glycoprotein activity and expression in Caco-2 cells and rat gut sacs.
    Pharmaceutical biology, 2016, Volume: 54, Issue:9

    Topics: Animals; ATP Binding Cassette Transporter, Subfamily B; Caco-2 Cells; Dose-Response Relationship, Drug; Down-Regulation; Flavanones; Flavonoids; Fluorescein; Humans; In Vitro Techniques; Intestinal Absorption; Intestinal Mucosa; Male; Molecular Structure; Permeability; Rats, Sprague-Dawley; Rhodamine 123; Structure-Activity Relationship; Time Factors; Verapamil

2016