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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Cerebral ischemia elicits aberration in myocardium contractile function and intracellular calcium handling
Insights
Acute cerebral ischemia disrupts heart function by altering calcium handling. This involves increased calcium influx and reduced extrusion, leading to myocardial dysfunction.
Area of Science:
- Cardiology
- Neuroscience
- Calcium Signaling
Background:
- Mechanisms of myocardial dysfunction and calcium handling disturbance in cerebral ischemia are not well understood.
- Cerebral ischemia's impact on cardiac function requires further investigation.
Purpose of the Study:
- To investigate the effects of acute cerebral ischemia on cardiac function and intracellular calcium handling.
- To elucidate the molecular mechanisms underlying ischemia-induced myocardial dysfunction.
Main Methods:
- Assessed cardiac function using left ventricular pressure measurements.
- Utilized scanning confocal microscopy to measure intracellular calcium ([Ca2+](i)) in ventricular myocytes.
- Investigated the role of specific ion channel inhibitors (Verapamil, ryanodine, thapsigargin, SEA0400).
- Quantified cardiac gene expression of key calcium-handling proteins (Ca(v)1.2, SERCA2a, NCX, PLB).
Main Results:
- Acute cerebral ischemia increased LVEDP and decreased LVSP, +dP/dt, and -dP/dt.
- Significant increases in resting and KCl-induced [Ca2+](i) were observed in ventricular myocytes.
- Cardiac expression of Ca(v)1.2 was upregulated, while SERCA2a and NCX expression was downregulated.
- Phospholamban (PLB) expression was elevated at 2 hours post-ischemia, returning to normal by 24 hours.
Conclusions:
- Acute cerebral ischemia disturbs cardiac function and calcium homeostasis.
- Upregulation of Ca(v)1.2 and PLB, coupled with downregulation of SERCA2a and NCX, contributes to intracellular calcium overload.
- Enhanced calcium influx and impaired calcium extrusion mechanisms lead to myocardial dysfunction following cerebral ischemia.
Abstract:
The mechanisms of myocardial dysfunction and calcium handling disturbance underlying cerebral ischemia remain obscure. Here we for the first time report that acute cerebral ischemia significantly increased left ventricular end diastolic pressure (LVEDP), but decreased +dP/dt, -dP/dt, and left ventricular systolic pressure (LVSP). Significant increase in either the resting or KCl-induced [Ca2+](i)in ventricular myocytes was also detected by scanning confocal microscopy at 2 and 24 hours after cerebral ischemia. Verapamil as a blocker of I(Ca,L), ryanodine as a specific inhibitor of RyR, thapsigargin as a highly specific inhibitor of sarco(endo)plasmic reticulum Ca(2+)-ATPase 2a (SERCA2a) and SEA0400 as a selective NCX inhibitor changed the area under the curve of averaged ratio of fluorescence (FI/F(0)I) induced by KCl. Cardiac expression of Ca(v)1.2 was significantly up-regulated at 2 and 24 hours after cerebral ischemia, whereas cardiac expression of SERCA2a and Na(+)-Ca(2+) exchanger (NCX) was significantly down-regulated at the same time period after cerebral ischemia. Cardiac expression of phospholamban (PLB) was significantly elevated at 2 hours after cerebral ischemia but was restored to about normal level at 24 hours after injury. These data suggest that acute cerebral ischemia may specifically disturb cardiac function and calcium homeostasis, which are related to increase of Ca(v)1.2 and decrease of through up-regulating Ca(v)1.2 and PLB, down-regulating SERCA2a and NCX, subsequently leading to Ca2+ overload by the enhancement of Ca2+ influx and inhibition of intracellular Ca2+ extrusion and cerebral ischemia-induced myocardial dysfunction.
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