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Published on: September 19, 2018
Colonic inflammation alters Src kinase-dependent gating properties of single Ca2+ channels via tyrosine nitration
Gracious R Ross1, Minho Kang, Hamid I Akbarali
1Dept. of Pharmacology and Toxicology, Virginia Commonwealth Univ., 1112 E. Clay St., McGuire Hall 317, Richmond, VA 23298, USA.
Abstract:
Nitration of L-type calcium channels during colonic inflammation impairs phosphorylation by the tyrosine kinase, Src kinase. This results in decreased calcium currents. The purpose of this study was to determine the mechanism of the downregulation of Ca2+ currents in colonic inflammation. In whole cell voltage clamp of mouse single smooth muscle cells, long-duration depolarization produced noninactivating calcium currents that were significantly reduced by the Src kinase inhibitor, protein phosphatase 2 (PP2). Unitary Ba2+ currents were recorded upon repolarization from positive potentials in cell-attached patches of smooth muscle and hCa(v)1.2b-transfected cells to assess the properties of the single channels attributed to the noninactivating open state. Repolarization to -40 mV from 0 mV resulted in single-channel events with conductance of approximately 23 pS. The ensemble average of the tail currents from 1,000 sweeps was 337 +/- 27 fA in control and 218 +/- 49 fA (P < 0.05) in inflamed cells. Neither open-probability nor open-time constants were significantly different between control and inflamed cells. However, the transition to the open state measured as channel availability was significantly reduced from 19 +/- 3% to 6.4 +/- 1%. Similarly, peak ensemble average current and channel availability were significantly reduced by PP2 and treatment with peroxynitrite in control cells. Mutation of COOH-terminal tyrosine residues in hCa(v)1.2b Chinese hamster ovarian cells also decreased peak ensemble average tail currents and availability. The present findings suggest that the transition of Ca2+ channels to the noninactivating open state is Src kinase dependent. Tyrosine nitration prevents Src-mediated transitions, leading to decreased calcium currents.
Insights
Colonic inflammation decreases calcium currents by nitrating L-type calcium channels, impairing Src kinase phosphorylation. This study reveals Src kinase dependence for calcium channel transition to a noninactivating state.
Area of Science:
- Physiology
- Molecular Biology
- Gastroenterology
Background:
- Colonic inflammation is associated with altered smooth muscle function.
- L-type calcium channels play a crucial role in smooth muscle contraction.
- Nitration of proteins, including ion channels, can occur during inflammation.
Purpose of the Study:
- To elucidate the mechanism by which calcium (Ca2+) currents are downregulated during colonic inflammation.
- To investigate the role of Src kinase in regulating L-type calcium channel activity in inflamed colonic smooth muscle.
Main Methods:
- Whole-cell voltage clamp recordings from single mouse colonic smooth muscle cells.
- Cell-attached patch-clamp recordings to assess unitary Ba2+ currents and channel properties.
- Inhibition of Src kinase using PP2 and treatment with peroxynitrite.
- Site-directed mutagenesis of tyrosine residues in hCa(v)1.2b channels.
Main Results:
- Non-inactivating calcium currents were significantly reduced in inflamed cells and by the Src kinase inhibitor PP2.
- Channel availability, representing the transition to the open state, was significantly decreased in inflamed cells.
- PP2 and peroxynitrite treatment reduced peak ensemble average current and channel availability in control cells.
- Mutation of tyrosine residues in hCa(v)1.2b channels reduced current and availability.
Conclusions:
- The transition of L-type calcium channels to a noninactivating open state is dependent on Src kinase activity.
- Tyrosine nitration of L-type calcium channels during colonic inflammation prevents Src-mediated transitions, leading to decreased calcium currents.
- This mechanism contributes to the functional deficits observed in colonic smooth muscle during inflammation.
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