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Updated: Aug 8, 2026

Mechanical Stimulation-induced Calcium Wave Propagation in Cell Monolayers: The Example of Bovine Corneal Endothelial Cells
Published on: July 16, 2013
Tyrosine kinase inhibitors and ATP modulate the conversion of smooth muscle L-type Ca2+ channels toward a second open
Shinsuke Nakayama1, Yasushi Ito, Shinji Sato
1Department of Cell Physiology, Nagoya University Graduate School of Medicine, 65 Tsuruma-cho, Showa-ku, Nagoya 466-8550, Japan. h44673a@nucc.cc.nagoya-u.ac.jp
Abstract:
Properties of smooth and cardiac L-type Ca2+ channels differ prominently in several physiological aspects, including sympathetic modulation. To assess the possible underlying mechanisms, we applied the whole cell patch-clamp technique to guinea pig detrusor smooth muscle cells, in which only L-type Ca2+ channel currents are observed in practice. During depolarization to large positive potentials, the conformation of the majority of L-type Ca2+ channels is converted from the normal (O1) to a second open state (O2), which undergoes little inactivation during depolarization. Extracellular application of genistein, a known tyrosine kinase inhibitor, significantly attenuated the voltage-dependent conversion of Ca2+ channels to O2, accompanied by reduction of availability, whereas genistin, an inactive analog, had little effect. In the absence of ATP in the patch pipette, intracellular application of either genistein or tyrphostin-47 suppressed the conversion to O2. Computer calculation revealed that the acceleration of the O1 to an inactivated state qualitatively reconstructs the unique effects of PTK inhibitors antagonized by ATP. We concluded that under normal conditions smooth muscle L-type Ca2+ channels are already modulated by tyrosine-kinase and ATP-related mechanism(s) and thereby easily achieve the second conversion, which yields voltage-dependent modulation of L-type Ca2+ current analogous to that in cardiac myocytes during beta-adrenoceptor stimulation.
Insights
Smooth muscle L-type Ca2+ channels are modulated by tyrosine kinase and ATP, influencing their gating properties. This mechanism explains voltage-dependent modulation similar to cardiac channels during sympathetic stimulation.
Area of Science:
- Pharmacology
- Cell Physiology
- Biophysics
Background:
- Cardiac and smooth muscle L-type Ca2+ channels exhibit distinct physiological properties, particularly in sympathetic modulation.
- Understanding these differences is crucial for elucidating cellular signaling pathways.
Purpose of the Study:
- To investigate the mechanisms underlying the differential properties of smooth and cardiac L-type Ca2+ channels.
- To identify the role of tyrosine kinase and ATP in modulating smooth muscle L-type Ca2+ channel function.
Main Methods:
- Whole-cell patch-clamp technique applied to guinea pig detrusor smooth muscle cells.
- Application of genistein (tyrosine kinase inhibitor) and genistin (inactive analog).
- Intracellular application of genistein or tyrphostin-47 in the absence of ATP.
Main Results:
- Depolarization induces conversion of L-type Ca2+ channels from state O1 to O2, with reduced inactivation.
- Genistein attenuated the O1 to O2 conversion and reduced channel availability.
- ATP absence enhanced the effect of tyrosine kinase inhibitors on channel conversion.
Conclusions:
- Smooth muscle L-type Ca2+ channels are modulated by tyrosine kinase and ATP-related mechanisms.
- These mechanisms facilitate a second conformational conversion, influencing channel gating.
- This process results in voltage-dependent modulation analogous to cardiac channels during beta-adrenergic stimulation.
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