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Updated: May 8, 2026

Remote Limb Ischemic Preconditioning: A Neuroprotective Technique in Rodents
Published on: June 2, 2015
Nociceptive-induced myocardial remote conditioning is mediated by neuronal gamma protein kinase C
Eric R Gross1, Anna K Hsu, Travis J Urban
1Department of Anesthesiology, School of Medicine, Stanford University, Stanford, CA 94305, USA. ergross@stanford.edu
Abstract:
Deciphering the remote conditioning molecular mechanism may provide targets to develop therapeutics that can broaden the clinical application. To further investigate this, we tested whether two protein kinase C (PKC) isozymes, the ubiquitously expressed epsilon PKC (εPKC) and the neuronal-specific gamma PKC (γPKC), mediate nociceptive-induced remote myocardial conditioning. Male Sprague-Dawley rats were used for both in vivo and ex vivo myocardial ischemia-reperfusion protocols. For the in vivo studies, using a surgical abdominal incision for comparison, applying only to the abdomen either bradykinin or the εPKC activator (ψεRACK) reduced myocardial infarct size (45 ± 1, 44 ± 2 %, respectively, vs. incision: 43 ± 2 %, and control: 63 ± 2 %, P < 0.001). Western blot showed only εPKC, and not γPKC, is highly expressed in the myocardium. However, applying a selective γPKC inhibitor (γV5-3) to the abdominal skin blocked remote protection by any of these strategies. Using an ex vivo isolated heart model without an intact nervous system, only selective εPKC activation, unlike a selective classical PKC isozyme activator (activating α, β, βII, and γ), reduced myocardial injury. Importantly, the classical PKC isozyme activator given to the abdomen in vivo (with an intact nervous system including γPKC) during myocardial ischemia reduced infarct size as effectively as an abdominal incision or ψεRACK (45 ± 1 vs. 45 ± 2 and 47 ± 1 %, respectively). The classical PKC activator-induced protection was also blocked by spinal cord surgical transection. These findings identified potential remote conditioning mimetics, with these strategies effective even during myocardial ischemia. A novel mechanism of nociceptive-induced remote conditioning, involving γPKC, was also identified.
Insights
Remote conditioning protects the heart by activating specific protein kinase C (PKC) pathways. This study reveals a novel mechanism involving gamma PKC (γPKC) in nociceptive-induced remote myocardial conditioning, identifying potential therapeutic targets.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Remote conditioning is a protective phenomenon against ischemia-reperfusion injury.
- Protein kinase C (PKC) isozymes are implicated in cellular signaling pathways.
- Understanding the molecular mechanisms of remote conditioning can lead to novel therapeutic strategies.
Purpose of the Study:
- To investigate the roles of epsilon PKC (εPKC) and gamma PKC (γPKC) in nociceptive-induced remote myocardial conditioning.
- To identify potential molecular targets for developing remote conditioning mimetics.
- To elucidate the novel mechanism of nociceptive-induced remote conditioning.
Main Methods:
- In vivo and ex vivo myocardial ischemia-reperfusion protocols in male Sprague-Dawley rats.
- Application of bradykinin, εPKC activator (ψεRACK), and classical PKC isozyme activator to the abdomen.
- Administration of selective γPKC inhibitor (γV5-3) and spinal cord transection.
- Western blot analysis to assess PKC isozyme expression in the myocardium.
Main Results:
- Abdominal application of bradykinin or ψεRACK significantly reduced myocardial infarct size.
- Only εPKC was highly expressed in the myocardium, but γPKC inhibition blocked remote protection.
- Ex vivo studies showed εPKC activation, but not classical PKC activation, reduced myocardial injury.
- Classical PKC activator-induced protection in vivo was blocked by spinal cord transection, implicating γPKC in a novel mechanism.
Conclusions:
- Nociceptive-induced remote myocardial conditioning involves both εPKC and a novel γPKC-dependent pathway.
- Selective εPKC activation and classical PKC activation show potential as remote conditioning mimetics.
- These strategies are effective even during myocardial ischemia, offering therapeutic promise.
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