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CO(2) inhibits specific inward rectifier K(+) channels by decreases in intra- and extracellular pH
1Department of Biology, Georgia State University, Atlanta, Georgia 30303-4010, USA.
Abstract:
Hypercapnia has been shown to affect cellular excitability by modulating K(+) channels. To understand the mechanisms for this modulation, four cloned K(+) channels were studied by expressing them in Xenopus oocytes. Exposures of the oocytes to CO(2) for 4-6 min produced reversible and concentration-dependent inhibitions of Kir1.1 and Kir2.3 currents, but had no effect on Kir2.1 and Kir6.1 currents. Intra- and extracellular pH (pH(i), pH(o)) dropped during CO(2) exposures. The inhibition of Kir2.3 currents was mediated by reductions in both intra- and extracellular pH, whereas the suppression of Kir1.1 resulted from intracellular acidification. In cell-free excised inside-out patches with cytosolic-soluble factors washed out, a decrease in pH(i) produced a fast and reversible inhibition of macroscopic Kir2.3 currents. The degree of this inhibition was similar to that produced by hypercapnia when compared at the same pH(i) level. Exposure of cytosolic surface of patch membranes to a perfusate bubbled with 15% CO(2) without changing pH failed to inhibit the Kir2.3 currents. These results therefore indicate that (1) hypercapnia inhibits specific K(+) channels, (2) these inhibitions are caused by intra- and extracellular protons rather than molecular CO(2), and (3) these effects are independent of cytosol-soluble factors.
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.