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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
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.
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.
Background:
Cardioplegic arrest (CP) followed by reperfusion after cardiopulmonary bypass induces coronary microvascular dysfunction. We investigated the role of calcium-activated potassium (K(Ca)) channels in this dysfunction in the human coronary microvasculature.
Methods And Results:
Human atrial tissue was harvested before CP from a nonischemic segment and after CP from an atrial segment exposed to hyperkalemic cold blood CP (mean CP time, 58 minutes) followed by 10-minute reperfusion. In vitro relaxation responses of precontracted arterioles (80 to 180 mum in diameter) in a pressurized no-flow state were examined in the presence of K(Ca) channel activators/blockers and several other vasodilators. We also examined expression and localization of K(Ca) channel gene products in the coronary microvasculature using reverse transcriptase-polymerase chain reaction, immunoblot, and immunofluorescence photomicroscopy. Post-CP reperfusion relaxation responses to the activator of intermediate and small conductance K(Ca) channels (IK(Ca)/SK(Ca)), NS309 (10(-5) M), and to the endothelium-dependent vasodilators, substance P (10(-8) M) and adenosine 5diphosphate (10(-5) M), were significantly reduced compared with pre-CP responses (P<0.05, n=8/group). In contrast, relaxation responses to the activator of large conductance K(Ca) channels (BK(Ca)), NS1619 (10(-5) M), and to the endothelium-independent vasodilator, sodium nitroprusside (10(-4) M), were unchanged pre- and post-CP reperfusion (n=8/group). Endothelial denudation significantly diminished NS309-induced vasodilatation and abolished substance P- or adenosine 5 diphosphate-induced relaxation (P<0.05), but had no effect on relaxation induced by either NS1619 or sodium nitroprusside. The total polypeptide levels of BK(Ca), IK(Ca), and SK(Ca) and the expression of IK(Ca) mRNA were not altered post-CP reperfusion.
Conclusions:
Cardioplegic arrest followed by reperfusion after cardiopulmonary bypass causes microvascular dysfunction associated with and likely in part due to impaired function of SK(Ca) and IK(Ca) channels in the coronary microcirculation. These results suggest novel mechanisms of endothelial and smooth muscle microvascular dysfunction after cardiac surgery.
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