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Differential activation of mitogen-activated protein kinases in ischemic and anesthetic preconditioning
Rafaela da Silva1, Thomas Grampp, Thomas Pasch
1Institute of Pharmacology and Toxicology, University of Zurich, Switzerland.
Background:
Accumulating evidence pinpoints to the pivotal role of mitogen-activated protein kinases (MAPKs) in the signal transduction underlying cardiac preconditioning.
Methods:
PD98059, an inhibitor of extracellular signal-regulated protein kinase (MEK-ERK1/2), and SB203580, an inhibitor of p38 MAPK, were used to evaluate the role of MAPKs with respect to postischemic functional recovery in isolated perfused rat hearts subjected to ischemic preconditioning (IPC) and anesthetic preconditioning (APC). Western blot analyses were used to determine the degree of ERK1/2 and p38 MAPK activation after the application of the preconditioning stimulus and after ischemia-reperfusion. Immunohistochemical staining served to visualize subcellular localization of activated MAPKs.
Results:
PD98059 and SB203580 abolished postischemic functional recovery in IPC but not in APC. IPC but not APC markedly activated ERK1/2 and p38 MAPK, which were abrogated by coadministration of the specific blockers. Conversely, IPC and APC enhanced ERK1/2 activity after ischemia-reperfusion as compared to nonpreconditioned hearts, and IPC in addition enhanced p38 MAPK activity. Coadministration of PD98059 and SB203580 during IPC but not during APC inhibited postischemically enhanced MAPK activities. Moreover, chelerythrine and 5-hydroxydecanoate, effective blockers of IPC and APC, annihilated IPC- and APC-induced enhanced postischemic responses of MAPKs. Finally, administration of PD98059 during ischemia-reperfusion diminished the protective effects of IPC and APC. Immunohistochemistry revealed increased ERK1/2 activity primarily in intercalated discs and nuclei and increased p38 MAPK activity in the sarcolemma and nuclei of IPC-treated hearts.
Conclusions:
Although MAPKs may orchestrate cardioprotection as triggers and mediators in IPC, they are devoid of triggering, but they may have mediator effects in APC.
Insights
Mitogen-activated protein kinases (MAPKs) play a role in cardiac preconditioning. While MAPKs are crucial triggers and mediators in ischemic preconditioning (IPC), they primarily act as mediators in anesthetic preconditioning (APC).
Area of Science:
- Cardiovascular Research
- Molecular Cardiology
- Signal Transduction
Background:
- Mitogen-activated protein kinases (MAPKs) are critical in the signal transduction pathways governing cardiac preconditioning.
- Understanding the specific roles of different MAPK pathways in various preconditioning methods is essential for developing cardioprotective strategies.
Purpose of the Study:
- To investigate the involvement of extracellular signal-regulated kinase (ERK1/2) and p38 MAPK in ischemic preconditioning (IPC) and anesthetic preconditioning (APC).
- To elucidate the role of MAPKs as triggers and mediators in postischemic functional recovery following different preconditioning stimuli.
Main Methods:
- Utilized PD98059 (MEK-ERK1/2 inhibitor) and SB203580 (p38 MAPK inhibitor) in isolated perfused rat hearts.
- Assessed postischemic functional recovery after IPC and APC.
- Employed Western blot analysis to quantify MAPK activation and immunohistochemistry to determine subcellular localization.
Main Results:
- PD98059 and SB203580 abolished functional recovery in IPC but not APC, indicating differential MAPK involvement.
- IPC significantly activated ERK1/2 and p38 MAPK, whereas APC enhanced ERK1/2 activity post-ischemia/reperfusion.
- MAPK activation was primarily observed in intercalated discs, nuclei, and sarcolemma in preconditioned hearts.
Conclusions:
- MAPKs function as both triggers and mediators in IPC-induced cardioprotection.
- In APC, MAPKs appear to act primarily as mediators rather than triggers for cardioprotection.
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