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2004, Novartis Foundation symposium, ISBN 0470862548, Volume 258, 288
Chair's Introduction (J. Putney). Molecular genetics of Drosophila TRP channels (C. Montell). Mammalian TRPC channnel subunit assembly (W. Schilling and M.... 
TRP channels | Life Sciences | Biochemistry | SCIENCE | Congresses
eBook
2005, Molecular biology intelligence unit., ISBN 0306478404, 377
"Voltage Gated Calcium Channels" is the first comprehensive book in the calcium channel field, encompassing over thirty years of progress towards our... 
Calcium channels | Biology, life sciences | Ion channels | Life Sciences | Biophysics/Biomedical Physics | Neurosciences | Human Physiology | Pharmacology/Toxicology | Cardiology | Cell Biology
Book
BBA - Molecular and Cell Biology of Lipids, ISSN 1388-1981, 06/2015, Volume 1851, Issue 6, pp. 844 - 856
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... 
Renal microcirculation | Mibefradil | channels | Afferent arteriole | channel blockers | Efferent arteriole | Renal disease | Voltage-dependent Ca | Efonidipine | 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
New Phytologist, ISSN 0028-646X, 1/2013, Volume 197, Issue 1, pp. 88 - 98
The Arabidopsis guard cell anion channel SLAC1 is essential for stomatal closure in response to various endogenous and environmental stimuli. Interestingly,... 
Full papers | Electric potential | Anions | Calcium | Humidity | Stomatal conductance | Guard cells | Cell membranes | Plants | Pipettes | Plant cells | stomatal opening | abscisic acid (ABA) | guard cells | SLAC1 | Ca2+ signaling | potassium uptake channel | anion channel | cytosolic Ca2+ concentration | Cytosolic Ca | signaling | Potassium uptake channel | Abscisic acid (ABA) | Anion channel | concentration | Stomatal opening | S-TYPE ANION | ARABIDOPSIS-THALIANA | ABSCISIC-ACID ACTIVATION | cytosolic Ca2+concentration | POTASSIUM CHANNELS | FREE CALCIUM | PLASMA-MEMBRANE | BLUE-LIGHT | PLANT SCIENCES | VICIA-FABA | Ca2+signaling | GUARD-CELL PROTOPLASTS | KINASE-PHOSPHATASE PAIR | Arabidopsis Proteins - genetics | Arabidopsis - drug effects | Carbon Dioxide - metabolism | Plant Cells - metabolism | Calcium - metabolism | Membrane Proteins - genetics | Plant Epidermis - drug effects | Plant Stomata - metabolism | Plant Epidermis - metabolism | Arabidopsis - metabolism | Arabidopsis - genetics | Arabidopsis Proteins - metabolism | Abscisic Acid - pharmacology | Cell Membrane - enzymology | Protoplasts - metabolism | Patch-Clamp Techniques | Light | Alleles | Gene Expression Regulation, Plant | Plant Stomata - drug effects | Cytosol - metabolism | Membrane Proteins - metabolism | Mutation | Potassium Channels, Inwardly Rectifying - metabolism | Arabidopsis thaliana | Abscisic acid | Genetic aspects
Journal Article
Current Medicinal Chemistry, ISSN 0929-8673, 04/2013, Volume 20, Issue 10, pp. 1241 - 1285
Ion channel targeted drugs have always been related with either the central nervous system (CNS), the peripheral nervous system, or the cardiovascular system.... 
ASIC | TRP | Central nervous system | P2X | KCNQ | NMDA | CNS | Ion channels | CHEMISTRY, MEDICINAL | BIOCHEMISTRY & MOLECULAR BIOLOGY | GATED SODIUM-CHANNELS | SUBTYPE-SELECTIVE AGONIST | D-ASPARTATE RECEPTOR | ion channels | ACID-SENSING ION-CHANNEL-1 | central nervous system | GLYCINE ANTAGONIST GV150526 | TARANTULA TOXIN PSALMOTOXIN-1 | TRAUMATIC BRAIN-INJURY | ISCHEMIC CELL-DEATH | PHARMACOLOGY & PHARMACY | PERIPHERAL NEUROPATHIC PAIN | TRANSGENIC MOUSE MODEL | Ligand-Gated Ion Channels - antagonists & inhibitors | Transient Receptor Potential Channels - antagonists & inhibitors | Calcium Channels - metabolism | Humans | Calcium Channel Blockers - therapeutic use | Potassium Channel Blockers - therapeutic use | Sodium Channel Blockers - pharmacology | Calcium Channel Blockers - pharmacology | Ion Channels - antagonists & inhibitors | Potassium Channels - metabolism | Animals | Ion Channels - metabolism | Sodium Channels - chemistry | Calcium Channels - chemistry | Central Nervous System Diseases - drug therapy | Sodium Channels - metabolism | Calcium Channel Blockers - chemistry | Sodium Channel Blockers - therapeutic use | Potassium Channels - chemistry | Sodium Channel Blockers - chemistry | Transient Receptor Potential Channels - metabolism | Ligand-Gated Ion Channels - metabolism | Potassium Channel Blockers - chemistry | Potassium Channel Blockers - pharmacology
Journal Article
1994, ISBN 0125641419, Volume 40., xiv, 368
Book
12.