Muscle KATP channels: recent insights to energy sensing and myoprotection.

Thomas P Flagg, Decha Enkvetchakul, Joseph C Koster, Colin G Nichols
Author Information
  1. Thomas P Flagg: Department of Cell Biology and Physiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA. Thomas.Flagg@usuhs.mil

Abstract

ATP-sensitive potassium (K(ATP)) channels are present in the surface and internal membranes of cardiac, skeletal, and smooth muscle cells and provide a unique feedback between muscle cell metabolism and electrical activity. In so doing, they can play an important role in the control of contractility, particularly when cellular energetics are compromised, protecting the tissue against calcium overload and fiber damage, but the cost of this protection may be enhanced arrhythmic activity. Generated as complexes of Kir6.1 or Kir6.2 pore-forming subunits with regulatory sulfonylurea receptor subunits, SUR1 or SUR2, the differential assembly of K(ATP) channels in different tissues gives rise to tissue-specific physiological and pharmacological regulation, and hence to the tissue-specific pharmacological control of contractility. The last 10 years have provided insights into the regulation and role of muscle K(ATP) channels, in large part driven by studies of mice in which the protein determinants of channel activity have been deleted or modified. As yet, few human diseases have been correlated with altered muscle K(ATP) activity, but genetically modified animals give important insights to likely pathological roles of aberrant channel activity in different muscle types.

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Grants

  1. R01 HL045742/NHLBI NIH HHS
  2. HL-45742/NHLBI NIH HHS
  3. R01 HL095010/NHLBI NIH HHS
  4. R01 HL095010-02/NHLBI NIH HHS
  5. R01 HL045742-18/NHLBI NIH HHS
  6. HL-95010/NHLBI NIH HHS

MeSH Term

ATP-Binding Cassette Transporters
Animals
Cardiovascular Diseases
Heart
Humans
KATP Channels
Molecular Structure
Muscle, Skeletal
Muscle, Smooth
Muscle, Smooth, Vascular
Mutation
Myocardium
Potassium Channels, Inwardly Rectifying
Receptors, Drug
Sulfonylurea Receptors
Vasomotor System
Viscera

Chemicals

ABCC8 protein, human
ABCC9 protein, human
ATP-Binding Cassette Transporters
Abcc8 protein, mouse
KATP Channels
Potassium Channels, Inwardly Rectifying
Receptors, Drug
Sulfonylurea Receptors

Word Cloud

Created with Highcharts 10.0.0muscleactivityKATPchannelsinsightsimportantrolecontrolcontractilityKir6subunitsdifferenttissue-specificpharmacologicalregulationchannelmodifiedATP-sensitivepotassiumpresentsurfaceinternalmembranescardiacskeletalsmoothcellsprovideuniquefeedbackcellmetabolismelectricalcanplayparticularlycellularenergeticscompromisedprotectingtissuecalciumoverloadfiberdamagecostprotectionmayenhancedarrhythmicGeneratedcomplexes12pore-formingregulatorysulfonylureareceptorSUR1SUR2differentialassemblytissuesgivesrisephysiologicalhencelast10yearsprovidedlargepartdrivenstudiesmiceproteindeterminantsdeletedyethumandiseasescorrelatedalteredgeneticallyanimalsgivelikelypathologicalrolesaberranttypesMuscleKATPchannels:recentenergysensingmyoprotection

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