Atomic Mechanisms of Timothy Syndrome-Associated Mutations in Calcium Channel Cav1.2

Vyacheslav S Korkosh1,2, Artem M Kiselev1, Evgeny N Mikhaylov1

  • 1Almazov National Medical Research Centre, Saint Petersburg, Russia.

Insights

Timothy syndrome (TS) is a rare disorder caused by Cav1.2 mutations. This study reveals how R518C/H and G402S/G406R mutations in Cav1.2 channels decelerate voltage-dependent inactivation, impacting cardiac function.

Area of Science:

  • Molecular Biology
  • Biophysics
  • Cardiology

Background:

  • Timothy syndrome (TS) is a rare genetic disorder primarily linked to Cav1.2 channel mutations G402S and G406R.
  • Cardiac-only TS has been associated with mutations R518C/H in the voltage-sensing domain II (VSD-II) of Cav1.2.
  • These mutations are known to impair voltage-dependent inactivation (VDI).

Purpose of the Study:

  • To investigate the impact of TS-associated Cav1.2 mutations on interdomain contacts and channel gating.
  • To elucidate the molecular mechanism underlying VDI deceleration in Timothy syndrome.

Main Methods:

  • Computational modeling of Cav1.2 channel structures using cryo-EM and X-ray data.
  • Steered Monte Carlo energy minimizations to simulate channel conformational changes.
  • Analysis of interdomain contacts, specifically between VSD-II and the α1-interaction domain (AID).

Main Results:

  • R518 residue in VSD-II forms critical H-bonds with the AID.
  • Simulations revealed that VSD-II deactivation shifts AID, influencing IS6 helix bending and gate closure.
  • Mutations R518C/H weaken VSD-II-AID contacts, retarding AID shift; G406R/G402S mutations stabilize the open state, hindering pore closure.

Conclusions:

  • The study provides a mechanistic explanation for VDI deceleration in TS mutations.
  • Cav1.2 channelopathies, including TS and long QT syndrome, share common mechanistic pathways involving interdomain interactions.
  • Findings suggest potential therapeutic targets for calcium channelopathies.

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