Ahnak1 is a tuneable modulator of cardiac Ca(v)1.2 calcium channel activity

Ines Pankonien1, Julio L Alvarez, Anke Doller

  • 1Max Delbrück Center for Molecular Medicine, Robert-Rössle-Str.10, 13125, Berlin, Germany.

Insights

Ahnak1 protein is not essential for beta-adrenergic regulation of cardiac calcium channels. However, modifying Ahnak1/Cavβ(2) interactions can modulate this response.

Area of Science:

  • Cardiology
  • Molecular Biology
  • Biophysics

Background:

  • Ahnak1 protein binds to the Cavβ(2) subunit, influencing cardiac L-type Ca(2+) channel current (I(CaL)) regulation.
  • The role of Ahnak1/Cavβ(2) interactions in beta-adrenergic stimulation of I(CaL) requires clarification.

Purpose of the Study:

  • To investigate whether Ahnak1/Cavβ(2) interactions are essential or redundant for beta-adrenergic stimulation of I(CaL).
  • To explore the functional impact of specific Ahnak1 variants and mutations on I(CaL) regulation.

Main Methods:

  • Genetic screening of cardiomyopathy patients for Ahnak1 variants.
  • Recombinant protein interaction assays and surface plasmon resonance to assess binding.
  • Patch clamp recordings in cardiomyocytes to measure I(CaL) response.
  • Studies in ahnak1-deficient cardiomyocytes and mouse hearts.

Main Results:

  • Naturally occurring Ahnak1 variants showed minimal impact on Cavβ(2) interaction.
  • A mutation at Ala4984 to Pro (A4984P) created a novel Cavβ(2) binding site, enhancing binding affinity.
  • A peptide mimicking the A4984P mutation (P4984) significantly reduced beta-adrenergic I(CaL) response.
  • Ahank1 deficiency did not impair beta-adrenergic responsiveness of I(CaL) or cardiac contractility.

Conclusions:

  • Ahnak1 is not essential for beta-adrenergic up-regulation of cardiac I(CaL) and contractility in mice.
  • Modulating Ahnak1/Cavβ(2) interactions offers a potential strategy for fine-tuning beta-adrenergic responses in the heart.

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