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Current medicinal chemistry, ISSN 0929-8673, 04/2013, Volume 20, Issue 10, pp. 1241 - 1285
Journal Article
Receptors & channels, ISSN 1060-6823, 1990
Journal
Biochimica et biophysica acta. Molecular and cell biology of lipids, ISSN 1388-1981, 2015, Volume 1851, Issue 6, pp. 844 - 856
Journal Article
Journal Article
Circulation research, ISSN 0009-7330, 02/2007, Volume 100, Issue 3, pp. 342 - 353
A large body of evidence has accrued indicating that voltage-gated Ca channel subtypes, including L-, T-, N-, and P/Q-type, are present within renal vascular and tubular tissues, and the blockade... 
Renal microcirculation | Mibefradil | channels | Afferent arteriole | channel blockers | Efferent arteriole | Renal disease | Voltage-dependent Ca | Efonidipine | Ca | Ca2+ channel blockers | N-TYPE | CARDIAC & CARDIOVASCULAR SYSTEMS | EFFERENT ARTERIOLES | efonidipine | SPONTANEOUSLY HYPERTENSIVE-RATS | RHO-KINASE INHIBITOR | renal microcirculation | ANGIOTENSIN-II | T-TYPE | renal disease | mibefradil | DEPENDENT CALCIUM-CHANNELS | CARDIAC L-TYPE | RENAL MICROVASCULAR CONSTRICTION | efferent arteriole | voltage-dependent Ca2+ channels | PERIPHERAL VASCULAR DISEASE | afferent arteriole | HEMATOLOGY | IN-VIVO VISUALIZATION | Arterioles - physiology | Kidney - physiology | Protein Subunits | Antihypertensive Agents - pharmacology | Kidney - blood supply | Humans | Calcium Channel Blockers - therapeutic use | Hypertension - drug therapy | Antihypertensive Agents - classification | Calcium Channels - physiology | Calcium Channels, T-Type - chemistry | Neurotransmitter Agents - secretion | Calcium Channels - drug effects | Calcium Channels, N-Type - drug effects | Cardiovascular Diseases - physiopathology | Kidney - drug effects | Calcium Channels - classification | Rats | Calcium Channels, L-Type - physiology | Antihypertensive Agents - therapeutic use | Arterioles - drug effects | Disease Progression | Antihypertensive Agents - adverse effects | Mice, Knockout | Calcium Signaling - drug effects | Diabetes Mellitus - physiopathology | Models, Biological | Calcium Channels - chemistry | Calcium Channels, T-Type - drug effects | Mice | Vasodilation - drug effects | Hydronephrosis - physiopathology | Calcium Channel Blockers - adverse effects | Calcium Signaling - physiology | Cardiovascular Diseases - drug therapy | Renal Circulation - physiology | Microcirculation - drug effects | Microcirculation - physiology | Renal Circulation - drug effects | Blood Pressure - drug effects | Calcium Channels, L-Type - chemistry | Kidney Diseases - metabolism | Calcium Channels, T-Type - physiology | Renin - secretion | Aldosterone - physiology | Kidney Diseases - drug therapy | Renin-Angiotensin System - physiology | Calcium Channel Blockers - pharmacology | Hypertension - physiopathology | Animals | Calcium Channels, L-Type - drug effects | Calcium Channels, N-Type - physiology | Calcium Channels, N-Type - chemistry
Journal Article
Journal Article
Journal Article
Science (American Association for the Advancement of Science), ISSN 1095-9203, 2019, Volume 363, Issue 6429, pp. 875 - 880
Potassium (K ) channels have been evolutionarily tuned for activation by diverse biological stimuli, and pharmacological activation is thought to target these specific gating mechanisms... 
CONDUCTANCE | K-2P | HERG | POTASSIUM CHANNELS | STRUCTURAL BASIS | HIGH-THROUGHPUT | BK CHANNELS | MULTIDISCIPLINARY SCIENCES | CONSTANT-PRESSURE | PARTICLE MESH EWALD | MOLECULAR-DYNAMICS SIMULATIONS | Xenopus | Tetrazoles - pharmacology | ortho-Aminobenzoates - chemistry | ortho-Aminobenzoates - pharmacology | Cricetulus | Humans | Crystallography, X-Ray | Thiourea - pharmacology | Large-Conductance Calcium-Activated Potassium Channels - chemistry | Tetrazoles - chemistry | Chlorobenzenes - pharmacology | Drug Design | HEK293 Cells | Chlorobenzenes - chemistry | Protein Domains | CHO Cells | ERG1 Potassium Channel - chemistry | Large-Conductance Calcium-Activated Potassium Channels - agonists | ERG1 Potassium Channel - agonists | Thiourea - chemistry | Molecular Dynamics Simulation | Animals | Tetrahydronaphthalenes - chemistry | Tetrahydronaphthalenes - pharmacology | Thiourea - analogs & derivatives | Ion Channel Gating - drug effects | Molecular dynamics | Analysis | Pharmaceutical research | Potassium channels | Research | Pharmacokinetics | Calcium | Epilepsy | Activation | Potassium conductance | Selectivity | Drug development | Crystallography | Channels | X-ray crystallography | Pain | Occupancy | Potassium channels (voltage-gated) | Calcium channels | Channel gating | Calcium channels (voltage-gated) | Pharmacology | Functional analysis | Resistance | Dynamic tests | Calcium conductance | Conductance | Potassium | Calcium ions
Journal Article
PLoS biology, ISSN 1545-7885, 2011, Volume 9, Issue 3, p. e1001025
Store-operated Ca2+ entry (SOCE) has been associated with two types of channels: CRAC channels that require Orai1 and STIM1 and SOC channels that involve TRPC1, Orai1, and STIM1... 
B-LYMPHOCYTES | OPERATED CALCIUM-CHANNELS | BIOCHEMISTRY & MOLECULAR BIOLOGY | BIOLOGY | PORE SUBUNIT | SMOOTH-MUSCLE-CELLS | ACINAR-CELLS | STORE DEPLETION | ACTIVATES CRAC CHANNELS | GLAND FLUID SECRETION | I-CRAC | ENDOTHELIAL PERMEABILITY | Calcium Signaling - physiology | Humans | Neoplasm Proteins - physiology | TRPC Cation Channels - analysis | Calcium - chemistry | Membrane Proteins - analysis | Gene Knockdown Techniques | Cell Membrane - chemistry | Calcium Channels - physiology | Membrane Proteins - physiology | Cell Membrane - metabolism | Neoplasm Proteins - genetics | TRPC Cation Channels - genetics | Calcium Channels - genetics | Stromal Interaction Molecule 1 | Cell Line | Membrane Proteins - genetics | ORAI1 Protein | Cytosol - chemistry | Calcium Channels - analysis | Patch-Clamp Techniques | Animals | Models, Biological | TRPC Cation Channels - metabolism | Cytosol - metabolism | Neoplasm Proteins - analysis | Mice | Mice, Inbred BALB C | Proteins | Plasma | Calcium | Cells | Recruitment | Channel pores | Calcium channels | Channel gating | Ion currents | STIM1 protein | NF-AT protein | Orai1 protein | transient receptor potential proteins | Calcium influx | Potassium channels (calcium-gated) | Calcium signalling | Signal transduction | Plasma membranes | Ion channels | Endoplasmic reticulum | thapsigargin | Calcium (extracellular) | Calcium (reticular)
Journal Article