Calcium-activated potassium channels contribute to human coronary microvascular dysfunction after cardioplegic arrest

Jun Feng1, Yuhong Liu, Richard T Clements

  • 1Division of Cardiothoracic Surgery, BIDMC, LMOB 2A, 110 Francis Street, Boston, MA 02215, USA.

Circulation
|October 10, 2008
PubMed

Insights

Cardioplegic arrest impairs coronary microvascular function by affecting calcium-activated potassium channels (K(Ca)). Specifically, small and intermediate conductance K(Ca) channels (SK(Ca)/IK(Ca)) show reduced function post-cardiac surgery.

Area of Science:

  • Cardiovascular Physiology
  • Vascular Biology
  • Surgical Research

Background:

  • Cardiopulmonary bypass with cardioplegic arrest (CP) can lead to coronary microvascular dysfunction.
  • Calcium-activated potassium (K(Ca)) channels are implicated in regulating vascular tone and function.

Purpose of the Study:

  • To investigate the role of K(Ca) channels in human coronary microvascular dysfunction after CP and reperfusion.
  • To determine the specific subtypes of K(Ca) channels involved in post-CP microvascular impairment.

Main Methods:

  • Human atrial tissue was collected before and after CP.
  • In vitro pressurized arteriole relaxation assays were performed using K(Ca) channel modulators and vasodilators.
  • Expression of K(Ca) channel gene products was analyzed via RT-PCR, immunoblot, and immunofluorescence.

Main Results:

  • Post-CP reperfusion significantly reduced relaxation to SK(Ca)/IK(Ca) channel activators (NS309) and endothelium-dependent vasodilators.
  • Relaxation to large conductance K(Ca) channel (BK(Ca)) activators (NS1619) and sodium nitroprusside remained unchanged.
  • Endothelial denudation abolished relaxation to NS309 and endothelium-dependent agents but not to NS1619 or sodium nitroprusside.
  • K(Ca) channel polypeptide and IK(Ca) mRNA levels were unaltered post-CP.

Conclusions:

  • CP followed by reperfusion causes coronary microvascular dysfunction.
  • Impaired function of SK(Ca) and IK(Ca) channels contributes significantly to this dysfunction.
  • These findings reveal novel mechanisms underlying endothelial and smooth muscle microvascular dysfunction post-cardiac surgery.
Abstract

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