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Pflügers Archiv - European Journal of Physiology, ISSN 0031-6768, 1/2011, Volume 461, Issue 1, pp. 1 - 21
Ion channels and transporters play a critical role in ion and fluid homeostasis and thus in normal animal physiology and pathology... 
Signal transduction | Biomedicine | Sodium channel | Human Physiology | Electrophysiology | Anion channel | Cation channel | Aldosterone | Cystic fibrosis transmembrane conductance regulator | Ion channel | Epithelial Na channels | Potassium channel | PHYSIOLOGY | RETICULUM-ASSOCIATED DEGRADATION | CELL-SURFACE EXPRESSION | EPITHELIAL SODIUM-CHANNEL | INDUCIBLE KINASE SGK | TRANSMEMBRANE CONDUCTANCE REGULATOR | NA+ CHANNEL | INOSITOL 1,4,5-TRISPHOSPHATE RECEPTORS | ENDOPLASMIC-RETICULUM | K+ CHANNEL | Potassium Channels, Voltage-Gated - physiology | Immediate-Early Proteins - physiology | Protein-Serine-Threonine Kinases - physiology | Humans | Aldosterone - physiology | Endoplasmic Reticulum - physiology | Cystic Fibrosis Transmembrane Conductance Regulator - physiology | Sodium Channels - physiology | Epithelial Sodium Channels - metabolism | Ubiquitin-Protein Ligases - physiology | Ubiquitin - physiology | Endocytosis - physiology | Small Ubiquitin-Related Modifier Proteins - physiology | Calcium Channels - physiology | Animals | Nedd4 Ubiquitin Protein Ligases | Membrane Proteins - metabolism | Ubiquitination - physiology | Vasopressins - physiology | Ion Transport - physiology | Endosomal Sorting Complexes Required for Transport - physiology | Chloride Channels - physiology | Ubiquitin | Corticosteroids | Ligases | Children's hospitals | Physiological aspects | Cystic fibrosis | Membrane proteins
Journal Article
Physiological reviews, ISSN 1522-1210, 2012, Volume 92, Issue 4, pp. 1777 - 1811
Journal Article
Journal of neurochemistry, ISSN 0022-3042, 2016, Volume 139, Issue S1, pp. 156 - 178
... challenging activity is created and modulated by the orchestrated function of different ion channels and dopamine D2‐autoreceptors... 
D2‐autoreceptor‐coupled GIRK2 channels | Cav1.3 L‐type/Cav3.1 T‐type calcium channels | neuronal calcium sensor NCS‐1 | ambroxol | A‐type Kv4.3/KChip3 potassium channels | Kir6.2/SUR1 potassium channels | Cav1.3 L-type/Cav3.1 T-type calcium channels | neuronal calcium sensor NCS-1 | A-type Kv4.3/KChip3 potassium channels | D2-autoreceptor-coupled GIRK2 channels | SENSITIVE POTASSIUM CHANNELS | OXIDANT STRESS | CA2+ CHANNELS | GLUCOCEREBROSIDASE MUTATIONS | KChip3 potassium channels | D2-AUTORECEPTOR RESPONSES | SUR1 potassium channels | 1 T-type calcium channels | Kir6 | Cav3 | Cav1 | K-ATP CHANNELS | BIOCHEMISTRY & MOLECULAR BIOLOGY | A-type Kv4 | NEUROSCIENCES | 3L-type | 2 | 3 | ALPHA-SYNUCLEIN FORM | LOCUS-COERULEUS | MPTP MOUSE MODEL | MITOCHONDRIAL-DNA DELETIONS | Stress, Physiological - physiology | Parkinson Disease - pathology | Animals | Calcium - physiology | Substantia Nigra - pathology | Dopaminergic Neurons - pathology | Dopaminergic Neurons - metabolism | Humans | Ion Channels - physiology | Parkinson Disease - metabolism | Substantia Nigra - metabolism | Health Status | Calcium channels | Stress (Physiology) | Parkinson's disease | Potassium channels | Neurons | Dopamine | Calcium | Animal behavior | Rodents | Bandwidths | Parkinsons disease | Homeostasis | Physiology | Metabolism | Kir6.2 | Cav3.1 T‐type calcium channels | Cav1.3 L‐type | Jörg B. Schulz and John Hardy | Review | Parkinson Disease. Guest Editors | A‐type Kv4.3
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