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Published on: January 7, 2013
Is creatine kinase a target for AMP-activated protein kinase in the heart?
1Division of Cardiovascular Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115, USA. jingwall@rics.bwh.harvard.edu
Insights
AMP-activated protein kinase (AMPK) does not consistently inhibit creatine kinase (CK) activity in the heart. This study found a positive correlation under normal conditions and a modest effect during low oxygen, revealing complex AMPK regulation.
Area of Science:
- Cardiology
- Biochemistry
- Cellular Metabolism
Background:
- AMP-activated protein kinase (AMPK) regulates cellular energy by inhibiting ATP-utilizing proteins and activating ATP-synthesis.
- AMPK is hypothesized to inhibit creatine kinase (CK), a key enzyme in cellular energy buffering.
Purpose of the Study:
- To investigate the hypothesis that AMPK inactivates CK activity under conditions of increased AMP levels and AMPK activation.
- To examine AMPK-CK interactions in rat hearts during increased workload, hypoxia, and ischemia.
Main Methods:
- Measured CK reaction velocity using (31)P magnetization transfer in intact rat hearts.
- Determined AMP and ATP pools via (31)P NMR spectroscopy.
- Calculated AMP-dependent AMPK velocity using Michaelis-Menten kinetics.
Main Results:
- A positive linear relationship was observed between CK and AMPK velocities under normoxic conditions with increased workload.
- CK velocity decreased 2-4 fold during hypoxia and ischemia, while AMPK activation was only modest.
- Findings suggest complex regulation of AMPK in cardiac energy metabolism.
Conclusions:
- AMPK does not appear to consistently inhibit CK activity in the heart.
- The relationship between AMPK and CK is complex and context-dependent, particularly under hypoxic or ischemic conditions.
- Further research is needed to fully elucidate AMPK's role in cardiac energy homeostasis.
Abstract:
By phosphorylating target proteins, AMP-activated protein kinase (AMPK) inhibits ATP-utilizing proteins and activates ATP-synthesizing proteins, thereby increasing ATP synthesis under conditions such as hypoxia and ischemia. It has been proposed that AMPK also phosphorylates and inhibits creatine kinase (CK), the enzyme which catalyzes the reversible transfer of a phosphoryl group between creatine and ADP. Here, we examine the hypothesis that AMPK inactivates CK activity under three conditions where [AMP] and AMP-dependent AMPK velocity increase: increased workload both in the isolated rat heart and in the living rat, hypoxia in the living rat heart and low-flow ischemia in the isolated red blood cell perfused rat heart. For the experiments varying workload in the isolated rat heart (both ejecting and isovolumic models), we also changed oxidizable substrate available to the isolated heart in order to vary the [AMP]/[ATP]. CK reaction velocity in the intact rat heart was directly measured using (31)P magnetization transfer. The metabolically active AMP and ATP pools were determined from (31)P NMR measurements and we calculate AMP-dependent AMPK velocity from the Michaelis-Menten relationship. We found that under normoxic conditions where [AMP] and AMPK velocity increase, the linear relationship between CK and AMPK velocities is positive, not inverse. Under conditions of low pO(2) (hypoxia and low-flow ischemia), CK velocity fell 2-4-fold while the increase in AMP-activated AMPK activity was modest. This analysis illustrates the complex nature of AMPK regulation in the heart.
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