Publication:
P2Y receptor regulation of K2p channels that facilitate K + secretion by human mammary epithelial cells

dc.contributor.authorSrisomboon Y.
dc.contributor.authorZaidman N.A.
dc.contributor.authorManiak P.J.
dc.contributor.authorDeachapunya C.
dc.contributor.authorO’Grady S.M.
dc.date.accessioned2021-04-05T03:21:53Z
dc.date.available2021-04-05T03:21:53Z
dc.date.issued2018
dc.date.issuedBE2561
dc.description.abstractThe objective of this study was to determine the molecular identity of ion channels involved in K + secretion by the mammary epithelium and to examine their regulation by purinoceptor agonists. Apical membrane voltage-clamp experiments were performed on human mammary epithelial cells where the basolateral membrane was exposed to the pore-forming antibiotic amphotericin B dissolved in a solution with intracellular-like ionic composition. Addition of the Na + channel inhibitor benzamil reduced the basal current, consistent with inhibition of Na + uptake across the apical membrane, whereas the K Ca 3.1 channel blocker TRAM-34 produced an increase in current resulting from inhibition of basal K + efflux. Treatment with two-pore potassium (K2P) channel blockers quinidine, bupivacaine and a selective TASK1/TASK3 inhibitor (PK-THPP) all produced concentration-dependent inhibition of apical K + efflux. qRT-PCR experiments detected mRNA expression for nine K2P channel subtypes. Western blot analysis of biotinylated apical membranes and confocal immunocytochemistry revealed that at least five K2P subtypes (TWIK1, TREK1, TREK2, TASK1, and TASK3) are expressed in the apical membrane. Apical UTP also increased the current, but pretreatment with the PKC inhibitor GF109203X blocked the response. Similarly, direct activation of PKC with phorbol 12-myristate 13-acetate produced a similar increase in current as observed with UTP. These results support the conclusion that the basal level of K + secretion involves constitutive activity of apical K Ca 3.1 channels and multiple K2P channel subtypes. Apical UTP evoked a transient increase in K Ca 3.1 channel activity, but over time caused persistent inhibition of K2P channel function leading to an overall decrease in K + secretion. © 2018 the American Physiological Society.
dc.format.mimetypeapplication/pdf
dc.identifier.citationAmerican Journal of Physiology - Cell Physiology. Vol 314, No.5 (2018), p.C627-C639
dc.identifier.doi10.1152/ajpcell.00342.2016
dc.identifier.issn3636143
dc.identifier.other2-s2.0-85061338059
dc.identifier.urihttps://hdl.handle.net/20.500.14740/3954
dc.rights.holderScopus
dc.subject.otherEpithelial sodium channel
dc.subject.otherKCa3.1 channel
dc.subject.otherMessenger RNA
dc.subject.otherPotassium channel
dc.subject.otherProtein kinase C
dc.subject.otherPurinergic P2Y receptor
dc.subject.otherTASK1 channel
dc.subject.otherTASK3 channel
dc.subject.otherTREK1 channel
dc.subject.otherTREK2 channel
dc.subject.otherTWIK1 channel
dc.subject.otherTwo pore potassium channel
dc.subject.otherUnclassified drug
dc.subject.otherEpithelial sodium channel
dc.subject.otherPotassium
dc.subject.otherPotassium channel blocking agent
dc.subject.otherProtein kinase C
dc.subject.otherPurinergic P2Y receptor
dc.subject.otherPurinergic P2Y receptor agonist
dc.subject.otherSodium
dc.subject.otherTandem pore domain potassium channel
dc.subject.otherUridine triphosphate
dc.subject.otherApical membrane
dc.subject.otherArticle
dc.subject.otherBreast epithelium cell
dc.subject.otherCellular distribution
dc.subject.otherControlled study
dc.subject.otherHuman
dc.subject.otherHuman cell
dc.subject.otherImmunocytochemistry
dc.subject.otherLipid raft
dc.subject.otherMembrane current
dc.subject.otherPotassium transport
dc.subject.otherPriority journal
dc.subject.otherReverse transcription polymerase chain reaction
dc.subject.otherSodium absorption
dc.subject.otherSodium transport
dc.subject.otherVoltage clamp technique
dc.subject.otherAntagonists and inhibitors
dc.subject.otherCytology
dc.subject.otherDrug effect
dc.subject.otherEpithelium cell
dc.subject.otherFemale
dc.subject.otherGenetics
dc.subject.otherMammary gland
dc.subject.otherMembrane potential
dc.subject.otherMetabolism
dc.subject.otherSecretory pathway
dc.subject.otherTransformed cell line
dc.subject.otherCell Line, Transformed
dc.subject.otherEpithelial Cells
dc.subject.otherEpithelial Sodium Channels
dc.subject.otherFemale
dc.subject.otherHumans
dc.subject.otherMammary Glands, Human
dc.subject.otherMembrane Potentials
dc.subject.otherPotassium
dc.subject.otherPotassium Channel Blockers
dc.subject.otherPotassium Channels, Tandem Pore Domain
dc.subject.otherProtein Kinase C
dc.subject.otherPurinergic P2Y Receptor Agonists
dc.subject.otherReceptors, Purinergic P2Y
dc.subject.otherSecretory Pathway
dc.subject.otherSodium
dc.subject.otherUridine Triphosphate
dc.titleP2Y receptor regulation of K2p channels that facilitate K + secretion by human mammary epithelial cells
dc.typeArticle
dspace.entity.typePublication
swu.datasource.scopushttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85061338059&doi=10.1152%2fajpcell.00342.2016&partnerID=40&md5=bdef96ce851b2a809fb5a5467a79a6e0

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