Cytoskeletal protein 4.1R affects repolarization and regulates calcium handling in the heart

Mark A Stagg1, Edward Carter, Nadia Sohrabi

  • 1Heart Science Centre, National Heart & Lung Institute, Imperial College London, United Kingdom.

Circulation Research
|September 13, 2008
PubMed

Insights

Protein 4.1R deficiency in mice alters cardiac electrophysiology, affecting heart rate and action potential duration. This cytoskeletal protein impacts cardiac ion transporters, suggesting a role in heart function and disease.

Area of Science:

  • Cardiovascular Biology
  • Cellular Biophysics
  • Molecular Cardiology

Background:

  • Protein 4.1 family are multifunctional adaptor proteins crucial for mechanical stability and cell surface protein expression.
  • Protein 4.1R is present in the heart and elevated in heart failure, but its myocardial function is unclear.

Purpose of the Study:

  • To investigate the role of protein 4.1R in myocardial contractility and electrophysiology.
  • To determine the functional consequences of 4.1R deficiency in the heart.

Main Methods:

  • Utilized 4.1R-deficient (knockout) mice for physiological and cellular studies.
  • Performed electrocardiography (ECG) and echocardiography.
  • Analyzed action potential duration and calcium transients in isolated ventricular myocytes.
  • Assessed ion transporter function and protein expression.

Main Results:

  • 4.1R knockout mice exhibited reduced heart rate and prolonged Q-T interval on ECG.
  • Ventricular myocytes showed prolonged action potential duration, larger and slower decaying Ca(2+) transients.
  • Increased sarcoplasmic reticulum Ca(2+) content and Ca(2+) spark frequency were observed.
  • Reduced Na(+)/Ca(2+) exchanger current density and increased persistent Na(+) current density were noted.
  • Downregulation of NaV1.5alpha and upregulation of protein 4.1G were found in knockout hearts.

Conclusions:

  • Cytoskeletal protein 4.1R plays a novel role in modulating cardiac ion transporter function.
  • 4.1R deficiency significantly impacts cardiac electrophysiology and calcium handling.
  • These findings suggest a critical role for 4.1R in normal cardiac function and heart disease pathogenesis.

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