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Published on: September 14, 2012
ERK is regulated by sodium-proton exchanger in rat aortic vascular smooth muscle cells
Yurii V Mukhin1, Maria N Garnovskaya, Michael E Ullian
1Medical and Research Services of the Ralph H. Johnson Veterans Affairs Medical Center, Department of Medicine (Nephrology Division), Medical University of South Carolina, 96 Jonathan Lucas Street, Charleston, SC 29425, USA. mukhinyv@musc.edu
Abstract:
The purposes of this study were to test 1) the relationship between two widely studied mitogenic effector pathways, and 2) the hypothesis that sodium-proton exchanger type 1 (NHE-1) is a regulator of extracellular signal-regulated protein kinase (ERK) activation in rat aortic smooth muscle (RASM) cells. Angiotensin II (Ang II) and 5-hydroxytryptamine (5-HT) stimulated both ERK and NHE-1 activities, with activation of NHE-1 preceding that of ERK. The concentration-response curves for 5-HT and Ang II were superimposable for both processes. Inhibition of NHE-1 with pharmacological agents or by isotonic replacement of sodium in the perfusate with choline or tetramethylammonium greatly attenuated ERK activation by 5-HT or Ang II. Similar maneuvers significantly attenuated 5-HT- or Ang II-mediated activation of MEK and Ras but not transphosphorylation of the epidermal growth factor (EGF) receptor. EGF receptor blockade attenuated ERK activation, but not NHE-1 activation by 5-HT and Ang II, suggesting that the EGF receptor and NHE-1 work in parallel to stimulate ERK activity in RASM cells, converging distal to the EGF receptor but at or above the level of Ras in the Ras-MEK-ERK pathway. Receptor-independent activation of NHE-1 by acute acid loading of RASM cells resulted in the rapid phosphorylation of ERK, which could be blocked by pharmacological inhibitors of NHE-1 or by isotonic replacement of sodium, closely linking the proton transport function of NHE-1 to ERK activation. These studies identify NHE as a new regulator of ERK activity in RASM cells.
Insights
Sodium-proton exchanger type 1 (NHE-1) regulates extracellular signal-regulated protein kinase (ERK) activation in rat aortic smooth muscle cells. NHE-1 activation precedes ERK activation, linking proton transport to ERK signaling pathways.
Area of Science:
- Cardiovascular Biology
- Cell Signaling
- Molecular Physiology
Background:
- Extracellular signal-regulated protein kinase (ERK) is a key regulator of cell growth and differentiation.
- The sodium-proton exchanger type 1 (NHE-1) plays a critical role in intracellular pH regulation.
- The precise relationship between NHE-1 and ERK activation in vascular smooth muscle remains incompletely understood.
Purpose of the Study:
- To investigate the relationship between NHE-1 and ERK signaling pathways.
- To determine if NHE-1 regulates ERK activation in rat aortic smooth muscle (RASM) cells.
Main Methods:
- Stimulation of RASM cells with angiotensin II (Ang II) and 5-hydroxytryptamine (5-HT).
- Pharmacological inhibition of NHE-1 and assessment of ERK, MEK, Ras, and EGF receptor activation.
- Receptor-independent activation of NHE-1 via acute acid loading.
Main Results:
- Ang II and 5-HT stimulated both NHE-1 and ERK activity, with NHE-1 activation preceding ERK activation.
- Inhibition of NHE-1 attenuated ERK, MEK, and Ras activation but not EGF receptor transphosphorylation.
- Receptor-independent NHE-1 activation led to ERK phosphorylation, blocked by NHE-1 inhibitors.
Conclusions:
- NHE-1 is a novel regulator of ERK activity in RASM cells.
- NHE-1 and EGF receptor pathways converge at or above Ras to activate ERK.
- Proton transport function of NHE-1 is closely linked to ERK activation.
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