ALDOSTERONE-FELLOW · Molecular determinants of sodium transport: role of a new aldosterone induced gene
6РП — Действия „Мария Кюри“
- Период
- 2005-01-01 → 2006-12-31
- Финансиране от ЕС
- 150 238 €
- Участници
- 1
- Схема
- EIF
Линиите свързват координатора с партньорите.
Накратко на български
Ролята на протеина NDRG2 се проучва при регулирането на натрия в бъбречните клетки под влияние на алдостерон. Разбирането на този механизъм помага да се разбере как се контролират обемият на кръвта и кръвното налягане.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Final Activity Report Summary - ALSOSTERONE-FELLOW (Molecular determinants of sodium transport: role of a new aldosterone induced gene)
Aldosterone plays a major role in Na absorption and thus in the control of volemia and blood pressure. It exerts its effects through the mineralocorticoid receptor which belongs to the nuclear receptor superfamily and acts as a transcription factor to modulate transcription of target specific genes. These induced proteins then stimulate sodium reabsorption by increasing both its luminal entry into epithelial cells through the rate limiting amiloride-sensitive sodium channel ENaC and its active extrusion into the blood by the basolateral Na/K-ATPase. We identified a novel protein, NDRG2 (N-myc Downstream Regulated Gene 2) whose expression was very early stimulated by aldosterone, both in an established cell line (RCCD2) and in the kidney and colon of rats. NDRG2 belonged to a family of highly conserved genes with mostly unknown functions. Aldosterone induction of NDRG2 was transient in epithelia (0.5-1h). In contrast, steady-state changes in NDRG2 expression were associated to altered cell proliferation and differentiation in pancreas, liver or neuronal tumors. To progress in the understanding of its role in kidney cells, RCCD2 were stably transfected with NDRG2 that yielded a three-fold overexpression of the protein over several passages. When grown on plastic, transfected cells showed significantly higher density of domes than parental RCCD2. When grown on filters, NDRG2 transfected cells had similar proliferation rate (cell count) and cell cycle (FACS) than RCCD2 but also had a two-fold reduction in apoptosis. At confluence, the transepithelial resistance of NDRG2 overexpressing cells was enhanced to 6 000-8 000 ohms.cm2 (as compared to 5 000 in RCCD2 control cell line). Western blot showed that NDRG2 expression was associated to an increase in expression of the alpha subunit of the epithelial sodium channel ENaC, with no change in beta or gamma subunits, or in serum and glucocorticoid kinase1 nor the ubiquitin ligase Nedd4-2. In these experiments, the 2 isoforms of NDRG2 (complete coding sequence or with a 14 aa deletion in the N-ter) gave comparable results. We also used the doxycyclin (Dox)-sensitive tet-on system introduced in RCCD2 to overexpress NDRG2 transiently. 48 h after transfection, NDRG2 protein levels were increased by 10 to 20 folds in Dox-treated cells, together with a three-fold reduction in ERK phosphorylation and two to three-fold increase in the sole alpha ENaC expression. Altogether, these results showed that the early aldosterone-induced protein NDRG2, when overexpressed in CD cells, enhanced the differentiation status of cells, reduced apoptosis and led to higher alpha ENaC expression. Therefore NDRG2 appeared to be a novel element in the cascade of events that controlled ENaC expression.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The epithelial Na+ channel (ENaC) plays a major role in the homeostasis of extracellular Na+ and consequently of blood volume and pressure. Its importance is underlined by its genetic linkage to two renal diseases, pseudohypoaldosteronism type I, and of Li ddle¿s syndrome, which are both caused by mutations in the genes encoding ENaC. ENaC, which facilitates entry of Na+ into the cell, is the rate-limiting step of Na+ reabsorption. It is highly regulated by a variety of factors, including aldosterone and vas opressin, but the molecular mechanisms of their action are still poorly understood. Aldosterone induces and/or represses a number of genes, which consequently lead to the stimulation of transepithelial transport. We have identified a novel protein, NDRG2 ( N-myc Downstream Regulated Gene 2) whose expression is very early stimulated by aldosterone, both in established cell lines, and in the kidney and colon of rats. NDRG2 belongs to a family of genes of unknown function, which is conserved in plants, inverteb rates and mammals, suggesting important functions. Its identity with MESK2, a gene recently identified in Drosophila, suggests that it may be involved in the Ras/MAPK signaling pathway. Our preliminary data suggest that aldosterone does influence Ras activ ity, and co-expression of NDRG2 with ENaC into Xenopus laevis oocytes elevates ENaC activity as compared to control oocytes. My project will be focussed on the analysis of NDRG2 function, in cell cultures, and in vivo by transgenesis. We will use condition al systems (tet inducible and HoxB7 promotor kidney-targeting in mice, Tamoxifen-sensitive Cre-Lox in cells) to evaluate the consequences of NDRG2 overexpression on renal collecting duct differentiation, polarity and sodium transport capacities. Constructs have been made, cell transfection is in progress and mouse generation will be initiated in March 2004. We will search for alterations in sodium transport after NDRG2 overexpression.
Оригинален текст от CORDIS (на английски).
Участници
- INSTITUT NATIONAL DE LA SANTE ET DE LA RECHERCHE MEDICALE (INSERM) · PARISКоординаторФранция
Връзки
Данни: CORDIS, © Европейски съюз
