Regulation of the Kv2.1 potassium channel by MinK and MiRP1

Zoe A McCrossan1, Torsten K Roepke, Anthony Lewis

  • 1Greenberg Division of Cardiology, Department of Medicine, Weill Medical College of Cornell University, New York, NY 10065, USA.

Insights

Voltage-gated potassium channel Kv2.1 interacts with MinK and MiRP1 ancillary subunits in the heart. Mutations in these subunits can alter Kv2.1 function, potentially causing cardiac arrhythmias.

Area of Science:

  • Cardiovascular physiology
  • Ion channel biophysics
  • Molecular cardiology

Background:

  • Kv2.1 is a critical voltage-gated potassium channel alpha-subunit in the heart and brain.
  • MinK-related peptides (MiRPs), encoded by KCNE genes, are ancillary subunits that modulate Kv channel function.
  • Mutations in MinK (KCNE1) and MiRP1 (KCNE2) are linked to long QT syndrome (LQTS).

Purpose of the Study:

  • To investigate the interaction between Kv2.1 and cardiac MinK/MiRP1 subunits.
  • To determine how these interactions affect Kv2.1 channel function.
  • To evaluate the impact of LQTS-associated mutations in MinK and MiRP1 on Kv2.1 function.

Main Methods:

  • Coimmunoprecipitation assays using rat heart tissue to detect native complexes.
  • Whole-cell voltage-clamp electrophysiology in CHO cells expressing Kv2.1 with MinK or MiRP1 subunits.
  • Assessment of current density, activation, and deactivation kinetics of Kv2.1 channels.

Main Results:

  • MinK and MiRP1 form native cardiac complexes with Kv2.1.
  • Both rat and human MinK and MiRP1 subunits significantly reduced Kv2.1 current density and altered its gating kinetics.
  • LQTS-associated mutations in MinK and MiRP1 further modified Kv2.1 function, notably slowing activation and deactivation.

Conclusions:

  • MinK and MiRP1 are integral components of cardiac Kv2.1 channels.
  • Altered Kv2.1 function due to MinK/MiRP1 interactions or mutations may contribute to cardiac arrhythmias.
  • These findings expand the understanding of MinK and MiRP1 roles in cardiac electrophysiology and disease pathogenesis.

Related Concept Videos

Voltage-gated Ion Channels01:26

Voltage-gated Ion Channels

Voltage-gated ion channels are transmembrane proteins that open and close in response to changes in the membrane potential. They are present on the membranes of all electrically excitable cells such as neurons, heart, and muscle cells.
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Voltage-gated Ion Channels01:26

Voltage-gated Ion Channels

Voltage-gated ion channels are transmembrane proteins that open and close in response to changes in the membrane potential. They are present on the membranes of all electrically excitable cells such as neurons, heart, and muscle cells.
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Regulation of Sodium and Potassium01:26

Regulation of Sodium and Potassium

The regulation of sodium and potassium ion concentrations in the human body is a complex process governed primarily by hormones such as aldosterone, antidiuretic hormone (ADH), and atrial natriuretic peptide (ANP).
Sodium Regulation
Sodium ions make up approximately 90% of extracellular cations, with a normal blood plasma concentration of 136–148 mEq/L. A decrease in blood volume and pressure triggers the release of renin from granular cells in the juxtaglomerular complex (JGC), primarily in...
Non-gated Ion Channels01:24

Non-gated Ion Channels

Ion channels are specialized proteins on the plasma membrane that allow charged ions to pass down their electrochemical gradient. Their main function is to maintain the membrane potential which is critical for cell viability. These channels are either gated or non-gated and can transport more than a thousand ions within milliseconds for the cellular event to occur.
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Non-gated Ion Channels01:24

Non-gated Ion Channels

Ion channels are specialized proteins on the plasma membrane that allow charged ions to pass down their electrochemical gradient. Their main function is to maintain the membrane potential which is critical for cell viability. These channels are either gated or non-gated and can transport more than a thousand ions within milliseconds for the cellular event to occur.
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Mechanically-gated Ion Channels01:12

Mechanically-gated Ion Channels

Mechanically-gated ion channels are proteins found in eukaryotic and prokaryotic cell membranes that open in response to mechanical stress. Tension, compression, swelling, and shear stress can alter the conformation of the protein, opening a transmembrane channel that allows the passage of ions for signal transmission. In eukaryotes, mechanically-gated channels are distributed in several regions like the neurons, lungs, skin, bladder, and heart, where they play critical roles in numerous...