| Literature DB >> 26579519 |
Zhiqin Li1, Sigrid A Langhans1.
Abstract
The Na,K-<span class="Gene">ATPase classically serves as an ion pump creating an electrochemical <span class="Gene">gradient across the plasma membrane that is essential for transepithelial transport, nutrient uptake and membrane potential. In addition, Na,K-ATPase also functions as a receptor, a signal transducer and a cell adhesion molecule. With such diverse roles, it is understandable that the Na,K-ATPase subunits, the catalytic α-subunit, the β-subunit and the FXYD proteins, are controlled extensively during development and to accommodate physiological needs. The spatial and temporal expression of Na,K-ATPase is partially regulated at the transcriptional level. Numerous transcription factors, hormones, growth factors, lipids, and extracellular stimuli modulate the transcription of the Na,K-ATPase subunits. Moreover, epigenetic mechanisms also contribute to the regulation of Na,K-ATPase expression. With the ever growing knowledge about diseases associated with the malfunction of Na,K-ATPase, this review aims at summarizing the best-characterized transcription regulators that modulate Na,K-ATPase subunit levels. As abnormal expression of Na,K-ATPase subunits has been observed in many carcinoma, we will also discuss transcription factors that are associated with epithelial-mesenchymal transition, a crucial step in the progression of many tumors to malignant disease.Entities:
Keywords: Na,K-ATPase α-subunit; Na,K-ATPase β-subunit; cancer; epigenetics; promoter analysis; transcription
Year: 2015 PMID: 26579519 PMCID: PMC4620432 DOI: 10.3389/fcell.2015.00066
Source DB: PubMed Journal: Front Cell Dev Biol ISSN: 2296-634X
Examples of factors that transcriptionally regulate Na,K-ATPase.
| 11-Dehydrocorticosterone | Increased α1 and β1 mRNA in vascular smooth muscle cells | Muto et al., |
| 8-Bromo-cAMP | Increased α1 and β1 mRNA in a rat kidney epithelial cell line | Whorwood and Stewart, |
| Aldosterone | Increased α1 and β1 mRNA in A6 kidney cells from Xenopus laevis | Verrey et al., |
| Increased α1 and β1 mRNA in adult and neonatal rat cardiocytes | Ikeda et al., | |
| Increased α1 and β1 mRNA in vascular smooth muscle cells | Oguchi et al., | |
| Increased α3 mRNA in rat hippocampus | Farman et al., | |
| Increased α1 and β1 mRNA in rat vascular smooth muscle cells | Muto et al., | |
| Increased α1 in rat cortical collecting duct | Tsuchiya et al., | |
| Increased α3 and β1 in hippocampus, gyrus dentatus and periventricular gray substance | Grillo et al., | |
| Increased α1 mRNA in the renal cortex | Seok et al., | |
| Increased β1 mRNA in alveolar type 2 (AT2) cells | Olivera et al., | |
| Increased α1, but not β1 mRNA in cortical collecting duct cells | Blot-Chabaud et al., | |
| Increased α2and β1 mRNA in human skeletal muscle | Phakdeekitcharoen et al., | |
| Ammonia | Increased α2, but not α1 mRNA, decreased α3 mRNA | Xue et al., |
| Angiotensin II | Increased α1 and β1 mRNA | Isenovic et al., |
| Betamethasone | Increased α1 and β mRNA level in 10-day-old rats, but not in adult rats | Celsi et al., |
| Increased α1, α2, β1, but not α3 mRNA in infant rat heart | Wang and Celsi, | |
| Increased α1 and β1 mRNA in infant rat kidney | Wang et al., | |
| C peptide | Increased α1 mRNA in human renal tubular cells | Galuska et al., |
| Caffeine | Decreased α1 and β1 mRNA in rat kidney | Lee et al., |
| Cholera toxin | Increased β1, but not α1 mRNA in a rat kidney epithelial cell line | Whorwood and Stewart, |
| Corticosterone | Increased α1 and β1 mRNA in vascular smooth muscle cells | Muto et al., |
| Cyclic stretch | Increased α1and α2 mRNA in aortic smooth muscle cells | Sevieux et al., |
| db-cAMP | Increased α1, but not β1 mRNA | Dagenais et al., |
| Dexamethasone | Increased α2, but not α1, α3, and β mRNA in cultured neonatal rat cardiac myocytes | Orlowski and Lingrel, |
| Increased α1 and β1 mRNA in a rat liver cell line | Bhutada et al., | |
| Increased α1 and β1 mRNA in fetal rat lung epithelial cell line | Chalaka et al., | |
| Increased α3 and β1 mRNA in rat spinal cords | González et al., | |
| Increased α1 and β1 mRNA in rat vascular smooth muscle cells | Muto et al., | |
| Increase β1, but not α1 mRNA in alveolar epithelial type II cells | Barquin et al., | |
| Increased β1, but not α1 mRNA in fetal lungs | Ingbar et al., | |
| Increased α1 and β1 mRNA in a fetal rat lung epithelial cell line | Chalaka et al., | |
| Increased β1, but not α1 mRNA in rat alveolar epithelial cells | Dagenais et al., | |
| Decreased α1 mRNA in rat capsule-epithelium of lenses | Xie and Askari, | |
| DNA methylation | Decreased α3, β1 and | Henriksen et al., |
| Dopamine | Increased β1 mRNA in rat alveolar epithelial cells | Guerrero et al., |
| EGF | Increased α1and β1 mRNA in alveolar epithelial cells | Danto et al., |
| Increased α2 but not α1 mRNA in primary cultures of mouse astrocytes | Xue et al., | |
| Elevated Ca2+ | Increased α1 and β1 mRNA in rat kidney | Rayson, |
| Elevated intracellular Na+ | Increased α1 and β1 mRNA in rat kidney epithelial cells | Muto et al., |
| FGF | Increased α1 and β1 mRNA in vascular smooth muscle cells | Nemoto et al., |
| Forskolin | Increased α1 and β1mRNA in a rat kidney epithelial cell line | Whorwood and Stewart, |
| Glucose | Increases α1 and β1 mRNA | Muto et al., |
| Glycyrrhetinic acid | Decreased α1 and β1 mRNA in rat kidney epithelial cells | Whorwood and Stewart, |
| High-fat diet | Increased α1 mRNA in nuclear extracts from gastrocnemius muscle | Galuska et al., |
| Hyperoxia | Selectively increased β1 mRNA in MDCK cells | Wendt et al., |
| Hypoxia | Down-regulated the expression of Na,K-ATPase in alveolar cells, renal proximal tubule cells and lung cancers | Planes et al., |
| IL-2 | Increased α1 and β1 mRNA in human blood lymphocytes | Karitskaya et al., |
| Insulin | Increased α2, not α1 mRNA, decreased β1 mRNA in 3T3-L1 cells | Russo and Sweadner, |
| Increased α2, not α1 mRNA in VSMC cells | Tirupattur et al., | |
| Ischemia and reflow | Decreased α1 and β mRNA level in rat kidney | Van Why et al., |
| KCl | Increased α1, α3, and β1 mRNA in neurons | Johar et al., |
| KGF | Increased α1, but not β1 mRNA in alveolar type II cells | Borok et al., |
| Low K+ | Increased α1 and β1 mRNA in cultured renal proximal tubule cells | Tang and McDonough, |
| Increased α1 and β1 mRNA in rat cardiac myocytes | Qin et al., | |
| Mannitol | Increased α1and β1 mRNA | Muto et al., |
| Manganese | Decreased α3 mRNA in mice | Wang et al., |
| Nitric oxide | Decreased α1 mRNA in medullary thick ascending limb of Henle (MTAL) cell lines | Kone and Higham, |
| NRF1 | Increased β1 but decreased α1 mRNA | Johar et al., |
| Ouabain | Increased α1 and β1 mRNAs in cultured rat astrocytes | Hosoi et al., |
| Increased α1 and β1 mRNA in rat kidney epithelial cells | Muto et al., | |
| Regulated α3 and β1 mRNA in cultured neonatal rat cardiac myocytes | Kometiani et al., | |
| Pertussis toxin | Increased α1 and β1 mRNA in a rat kidney epithelial cell line | Whorwood and Stewart, |
| PHA | Increased α1 and β1 mRNA in human blood lymphocytes | Karitskaya et al., |
| Progesterone | Increased β1 mRNA | Cochrane et al., |
| Increased β1 mRNA in mouse uterus | Deng et al., | |
| Prostaglandin E1 | Increased α and β mRNA in MDCK cells | Taub et al., |
| Increased α and β mRNA in rabbit renal proximal tubule cells | Herman et al., | |
| Prostaglandin E2 | Increased | Herman et al., |
| Serum | Increased α1 and β1 mRNA in a rat liver cell line, Clone 9 | Kirtane et al., |
| Increased α1 and β1 mRNA in vascular smooth muscle cells | Nemoto et al., | |
| Snail1 | Selectively repressed β1, but not α1 mRNA in MCF7 and MDCK cells | Espineda et al., |
| Sp (Sp1, Sp3, Sp4) | Increased α1, α3, and β1 mRNA in murine neurons | Johar et al., |
| T3 | Increased α and β mRNA in rat kidney cortex | Gick and Ismail-Beigi, |
| Increased α, but not β mRNA in rat liver | Gick and Ismail-Beigi, | |
| Increased α and β mRNA in rat kidney | McDonough et al., | |
| Increased α2, α3, and β, but not α1 mRNAs in neonatal rat cardiac myocytes | Orlowski and Lingrel, | |
| Increased α1 and β mRNA in a rat liver cell line Clone 9 | Gick and Ismail-Beigi, | |
| Increased α1, α3, and β1 mRNA in neonatal rat myocardium | Melikian and Ismail-Beigi, | |
| Increased α1, α2, and β1 mRNA in cardiac myocytes | Hensley et al., | |
| Increased α1, α2, α3, and β1 mRNA in cultured neonatal rat cardiocytes | Kamitani et al., | |
| Increased α2 and β2 mRNA in skeletal muscle | Azuma et al., | |
| Increased α1 and β1 mRNA in cultured rat mesangial cells | Ohara et al., | |
| Increased α1 and β1 mRNA in in rat jejunum and Caco-2 cells | Giannella et al., | |
| Increased α2 mRNA in neonatal rat cardiac myocytes | Huang et al., | |
| Increased α and β mRNA in rabbit renal proximal tubule cells | Lin and Tang, | |
| Increased α1, α2, and α3 mRNA in rat brain | Bajpai and Chaudhury, | |
| Increased α2 and β1 mRNA in rat heart | Shao et al., | |
| Increased α2 and β1 mRNA in human skeletal muscles | Phakdeekitcharoen et al., | |
| T4 | Increased α1, α2, and β1 mRNA in rat heart | Shao et al., |
| Tetrodotoxin | Decreased α1, α3, | Johar et al., |
| TGF-β1 | Decreased β1, α1, α2, and α3 mRNA in young FRTL-5 cells | Pekary et al., |
| TGF-β2 | Selectively decreased β1 mRNA in ARPE-19 cell | Mony et al., |
| Uremia | Decreased α1, but increased α2 in rat skeletal muscle | Bonilla et al., |
| Vasopressin | Increased α1, but not β1 mRNA in cortical collecting duct cells | Blot-Chabaud et al., |
| Veratridine (a Na+ channel activator) | Increased α1 and β1 mRNA in rat vascular smooth muscle cells | Yamamoto et al., |
Figure 1Regulatory elements in the promoter regions of human Na,K-ATPase subunits. The promoter regions of human Na,K-ATPase are shown in the direction from 5′ to 3′. The colored boxes indicate potential transcription factor binding sites. The colored ovals represent experimentally verified transcription factor binding sites.