The mitochondrial ryanodine receptor in rat heart: a pharmaco-kinetic profile

Beth A Altschafl1, Gisela Beutner, Virendra K Sharma

  • 1Department of Physiology, University of Wisconsin Medical School, 601 Science Drive, Madison, WI 53711, USA.

Insights

Researchers identified a unique mitochondrial ryanodine receptor (mRyR) in inner mitochondrial membranes. This mRyR exhibits Ca(2+)-sensitive channel activity and pharmacological properties similar to sarcoplasmic reticulum RyRs, suggesting a novel role in mitochondrial calcium regulation.

Area of Science:

  • Mitochondrial physiology
  • Ion channel biophysics
  • Cardiovascular research

Background:

  • Mitochondria regulate cellular Ca(2+) homeostasis.
  • The mitochondrial ryanodine receptor (mRyR) is a recently identified protein in inner mitochondrial membranes.
  • mRyR's precise function and properties remain largely uncharacterized.

Purpose of the Study:

  • To characterize the fundamental pharmacological and electrophysiological properties of the mitochondrial ryanodine receptor (mRyR).
  • To compare the characteristics of mRyR with classical sarcoplasmic reticulum RyRs (SR-RyRs).

Main Methods:

  • Reconstitution of sucrose-purified mitochondrial fractions into lipid bilayers.
  • Single-channel electrophysiological recordings.
  • Pharmacological characterization using ryanodine and Imperatoxin A (IpTx(a)).
  • Analysis of [(3)H]ryanodine binding.

Main Results:

  • Reconstituted mRyR channels exhibited Ca(2+)-sensitive gating and large conductance (500-800 pS).
  • Cytosolic Ca(2+) modulated channel activity (bursting frequency, open time).
  • Ryanodine and IpTx(a) affected channel states, similar to SR-RyRs.
  • Cardiac mRyR showed Ca(2+) dependence in ryanodine binding akin to skeletal RyR1.

Conclusions:

  • The study provides the first direct evidence for a unique RyR in mitochondrial membranes.
  • mRyR shares functional and pharmacological similarities with SR-RyRs but possesses distinct characteristics.
  • mRyR likely plays a significant role in mitochondrial Ca(2+) handling.