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Regulation of Cl- secretion by alpha2-adrenergic receptors in mouse colonic epithelium
Rebecca S Lam1, Ernst M App, Drew Nahirney
1Department of Physiology, University of Alberta, Edmonton, Canada T6G 2H7.
Abstract:
Previous studies have shown that alpha2 adrenoceptor (alpha2AR) agonists inhibit electrolyte secretion in colonic epithelia, but little is known about the molecular mechanisms involved in this process. In this study we examined the effect of alpha2AR activation on transepithelial anion secretion across isolated murine colonic epithelium. We found that alpha2AR agonists, UK 14,304, clonidine and medetomidine were potent inhibitors of anion secretion, especially in the proximal colon. Short circuit current measurements (Isc) in colonic epithelia from normal and cystic fibrosis (CF) mice showed that alpha2AR agonists inhibited basal cystic fibrosis transmembrane conductance regulator (CFTR)-mediated Cl- secretion but had no effect on CFTR activation by cAMP-dependent phosphorylation. Apical administration of an ionophore, nystatin (90 microg ml-1), was used to investigate the effect of UK 14,304 on basolateral K+ transport. The Na+-K+-ATPase current, measured as ouabain-sensitive current in the absence of ion gradients, was unaltered by pretreatment of the tissue with UK 14,304 (1 microM). In the presence of a basolaterally directed K+ gradient, UK 14,304 significantly reduced nystatin-activated Isc indicating that activation of alpha2ARs inhibits basolateral K+ channels. Studies with selective K+ channel inhibitors and openers showed that alpha2AR agonists inhibited KATP channels that were tonically active in mouse colonic epithelia. RT-PCR and pharmacological studies suggested that these channels could be similar to vascular smooth muscle KATP channels comprising Kir6.1/SUR2B or Kir6.2/SUR2B subunits. Inhibition of anion secretion by alpha2AR agonists required activation of pertussis toxin-sensitive Gi/o proteins, but did not involve classical second messengers, such as cAMP or Ca2+. In summary, alpha2ARs inhibit anion secretion in colonic epithelia by acting on basolateral KATP channels, through a process that does not involve classical second messengers.
Insights
Alpha2 adrenoceptor (alpha2AR) agonists inhibit colonic anion secretion by targeting basolateral ATP-sensitive potassium (KATP) channels. This mechanism involves Gi/o proteins but not classical second messengers, impacting electrolyte transport.
Area of Science:
- Physiology
- Molecular Biology
- Gastroenterology
Background:
- Alpha2 adrenoceptor (alpha2AR) agonists are known to inhibit electrolyte secretion in colonic epithelia.
- The precise molecular mechanisms underlying alpha2AR-mediated inhibition of colonic anion secretion remain largely unelucidated.
Purpose of the Study:
- To investigate the molecular mechanisms by which alpha2 adrenoceptor (alpha2AR) activation influences transepithelial anion secretion in murine colonic epithelium.
- To identify the specific ion channels and signaling pathways involved in alpha2AR-mediated regulation of colonic electrolyte transport.
Main Methods:
- Short-circuit current (Isc) measurements were performed on isolated murine colonic epithelia from normal and cystic fibrosis (CF) mice.
- Electrophysiological techniques, including the use of ionophores and selective channel inhibitors/openers, were employed to assess ion transport.
- RT-PCR and pharmacological studies were conducted to identify potential KATP channel subunits and signaling proteins.
Main Results:
- Alpha2AR agonists (UK 14,304, clonidine, medetomidine) potently inhibited basal anion secretion, particularly in the proximal colon.
- Inhibition of secretion was linked to alpha2AR agonists reducing basolateral K+ channel activity, specifically ATP-sensitive potassium (KATP) channels.
- The inhibitory effect required pertussis toxin-sensitive Gi/o proteins but did not involve cAMP or Ca2+ second messengers.
Conclusions:
- Alpha2 adrenoceptor activation inhibits colonic anion secretion by modulating basolateral KATP channels.
- This inhibitory pathway operates independently of classical second messengers like cAMP and Ca2+, relying on Gi/o protein signaling.
- The findings elucidate a novel mechanism for regulating electrolyte balance in the colon, with potential implications for gastrointestinal disorders.
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