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Tamoxifen activates smooth muscle BK channels through the regulatory beta 1 subunit
G M Dick1, C F Rossow, S Smirnov
1Department of Physiology & Cell Biology, University of Nevada School of Medicine, Reno, Nevada 89557, USA. greg@physio.unr.edu
Abstract:
Estrogen (17beta-estradiol; 17betaE) and xenoestrogens, estrogenic compounds that are not steroid hormones, have non-genomic actions at plasma membrane receptors unrelated to the nuclear estrogen receptor. The open probability (P(o)) of large conductance Ca(2+)/voltage-sensitive k(+)(BK) channels is increased by 17betaE through the regulatory beta1 subunit. The pharmacological nature of the putative membrane binding site is unclear. We probed the site by determining whether tamoxifen ((Z)-1-(p-dimethylaminoethoxy-phenyl)-1,2-diphenyl-1-butene; Tx), a chemotherapeutic xenoestrogen, increased P(o) in clinically relevant concentrations (0.1-10 microm). In whole cell patch clamp recordings on canine colonic myocytes, which express the beta1 subunit, Tx activated charybdotoxin-sensitive K(+) current. In single channel experiments, Tx increased the NP(o) (P(o) x number channels; N) and decreased the unitary conductance (gamma) of BK channels. Tx increased NP(o) (EC(50) = 0.65 microm) in excised membrane patches independent of Ca(2+) changes. The Tx mechanism of action requires the beta1 subunit, as Tx increased the NP(o) of Slo alpha expressed in human embryonic kidney cells only in the presence of the beta1 subunit. Tx decreased gamma of the alpha subunit expressed alone, without effect on NP(o). Our data indicate that Tx increases BK channel activity in therapeutic concentrations and reveal novel pharmacological properties attributable to the alpha and beta1 subunits. These data shed light on BK channel structure and function, non-genomic mechanisms of regulation, and physiologically and therapeutically relevant effects of xenoestrogens.
Insights
Tamoxifen, a xenoestrogen, activates large conductance calcium-activated potassium channels (BK channels) via the beta1 subunit. This action occurs at therapeutic concentrations and sheds light on non-genomic estrogen signaling.
Area of Science:
- Pharmacology
- Molecular Biology
- Cell Physiology
Background:
- Estrogen and xenoestrogens exert non-genomic effects via membrane receptors.
- Large conductance Ca(2+)/voltage-sensitive K(+) (BK) channels are regulated by 17beta-estradiol (17betaE) through the beta1 subunit.
- The binding site for these non-genomic actions is not well-characterized.
Purpose of the Study:
- To investigate the pharmacological properties of tamoxifen (Tx) at the membrane binding site of BK channels.
- To determine if Tx modulates BK channel open probability (P(o)) at clinically relevant concentrations.
- To elucidate the roles of alpha and beta1 subunits in Tx-mediated BK channel regulation.
Main Methods:
- Whole-cell patch clamp recordings on canine colonic myocytes.
- Single-channel patch clamp experiments on BK channels.
- Expression of BK channel alpha and beta1 subunits in human embryonic kidney cells.
Main Results:
- Tamoxifen activated charybdotoxin-sensitive K(+) current in canine colonic myocytes.
- Tx increased the NP(o) and decreased the unitary conductance (gamma) of BK channels in excised patches, independent of Ca(2+).
- Tx's effect on NP(o) required the beta1 subunit, while it decreased gamma of the alpha subunit alone.
Conclusions:
- Tamoxifen increases BK channel activity at therapeutic concentrations.
- Novel pharmacological properties of BK channel alpha and beta1 subunits were revealed.
- The study provides insights into BK channel structure-function, non-genomic regulation, and xenoestrogen effects.