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CO(2) inhibits specific inward rectifier K(+) channels by decreases in intra- and extracellular pH

G Zhu1, C Liu, Z Qu

  • 1Department of Biology, Georgia State University, Atlanta, Georgia 30303-4010, USA.

Insights

Hypercapnia, or high carbon dioxide levels, inhibits specific potassium (K+) channels like Kir1.1 and Kir2.3. This effect is due to changes in pH, not molecular CO2, impacting cellular excitability.

Area of Science:

  • Physiology
  • Molecular Biology
  • Ion Channel Function

Background:

  • Hypercapnia influences cellular excitability by modulating potassium (K+) channels.
  • Understanding the precise mechanisms of this modulation is crucial for cellular physiology.

Purpose of the Study:

  • To investigate the effects of hypercapnia on cloned K+ channels.
  • To elucidate the roles of intracellular and extracellular pH in hypercapnia-induced channel modulation.

Main Methods:

  • Expression of four cloned K+ channels (Kir1.1, Kir2.1, Kir2.3, Kir6.1) in Xenopus oocytes.
  • Exposure of oocytes and excised membrane patches to varying CO2 concentrations.
  • Measurement of K+ currents and intracellular/extracellular pH changes.

Main Results:

  • Hypercapnia reversibly inhibited Kir1.1 and Kir2.3 currents in a concentration-dependent manner.
  • Inhibition of Kir2.3 was mediated by both intracellular and extracellular pH reduction, while Kir1.1 inhibition was due to intracellular acidification.
  • Cell-free patch experiments confirmed that intracellular acidification, not molecular CO2, inhibited Kir2.3 currents.

Conclusions:

  • Hypercapnia selectively inhibits specific K+ channels (Kir1.1, Kir2.3).
  • Protons (H+), resulting from intra- and extracellular pH changes, mediate these inhibitions, not molecular CO2.
  • The observed channel modulation is independent of cytosol-soluble factors.

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