The M3 receptor-mediated K(+) current (IKM3), a G(q) protein-coupled K(+) channel

Hong Shi1, Huizhen Wang, Baofeng Yang

  • 1Research Center, Montreal Heart Institute, Montreal, Quebec H1T 1C8, Canada.

Insights

This study identifies a new cardiac potassium current (I(KM3)) activated by M(3) receptors. Unlike other currents, I(KM3) is mediated by G(q) proteins, not G(i) proteins, revealing a new signaling pathway.

Area of Science:

  • Cardiovascular Physiology
  • Molecular Pharmacology
  • Ion Channel Biology

Background:

  • Muscarinic acetylcholine receptors (mAChRs) modulate cardiac function.
  • M(2) mAChRs activate G(i) protein-gated K(+) channels (I(KACh)).
  • A novel M(3) mAChR-mediated K(+) current (I(KM3)) has been identified, with distinct signaling pathways.

Purpose of the Study:

  • To elucidate the signal transduction mechanisms underlying the cardiac M(3) receptor-activated K(+) current (I(KM3)).
  • To determine if I(KM3) is coupled to G(i) or other G protein families.

Main Methods:

  • Whole-cell and macropatch clamp electrophysiology in cardiac myocytes.
  • Pertussis toxin treatment to inhibit G(i/o) proteins.
  • Intracellular application of subunit-specific G protein antibodies.
  • Activation of currents in excised patches with purified G protein subunits and GTP analogs.

Main Results:

  • I(KM3) activation by choline was insensitive to pertussis toxin and G(i/o) alpha-subunit antibodies.
  • I(KM3) was significantly inhibited by antibodies targeting G(q) alpha-subunits.
  • Purified G(q) alpha or betagamma subunits activated I(KM3)-like currents in inside-out patches.
  • I(KACh) was affected by pertussis toxin and G(i/o) antibodies, confirming its G(i) coupling.

Conclusions:

  • I(KM3) is the first identified G(q) protein-coupled K(+) channel in the heart.
  • This discovery expands the known signaling pathways for mAChR-mediated cardiac K(+) currents.
  • The G protein-coupled K(+) channel family can be classified into G(i) and G(q) protein-coupled subfamilies.

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