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Evaluating Cell Death Signaling by Immunofluorescence in a Rat Model of Ischemic Stroke
Published on: January 3, 2025
Protein kinase C delta mediates cerebral reperfusion injury in vivo
Rachel Bright1, Ami P Raval, Jeffrey M Dembner
1Department of Molecular Pharmacology, Stanford Stroke Center, Stanford University School of Medicine, Stanford, California 94305-5174, USA.
Abstract:
Protein kinase C (PKC) has been implicated in mediating ischemic and reperfusion damage in multiple organs. However, conflicting reports exist on the role of individual PKC isozymes in cerebral ischemic injury. Using a peptide inhibitor selective for deltaPKC, deltaV1-1, we found that deltaPKC inhibition reduced cellular injury in a rat hippocampal slice model of cerebral ischemia [oxygen-glucose deprivation (OGD)] when present both during OGD and for the first 3 hr of reperfusion. We next demonstrated peptide delivery to the brain parenchyma after in vivo delivery by detecting biotin-conjugateddeltaV1-1 and by measuring inhibition of intracellular deltaPKC translocation, an indicator of deltaPKC activity. Delivery of deltaV1-1 decreased infarct size in an in vivo rat stroke model of transient middle cerebral artery occlusion. Importantly, deltaV1-1 had no effect when delivered immediately before ischemia. However, delivery at the onset, at 1 hr, or at 6 hr of reperfusion reduced injury by 68, 47, and 58%, respectively. Previous work has implicated deltaPKC in mediating apoptotic processes. We therefore determined whether deltaPKC inhibition altered apoptotic cell death or cell survival pathways in our models. We found that deltaV1-1 reduced numbers of terminal deoxynucleotidyl transferase-mediated biotinylated UTP nick end labeling-positive cells, indicating decreased apoptosis, increased levels of phospho-Akt, a kinase involved in cell survival pathways, and inhibited BAD (Bcl-2-associated death protein) protein translocation from the cell cytosol to the membrane, indicating inhibition of proapoptotic signaling. These data support a deleterious role for deltaPKC during reperfusion and suggest that deltaV1-1 delivery, even hours after commencement of reperfusion, may provide a therapeutic advantage after cerebral ischemia.
Insights
Inhibition of delta Protein Kinase C (PKC) reduces brain injury after stroke. A specific peptide inhibitor, deltaV1-1, decreased cell damage and apoptosis, even when given hours after reperfusion begins.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Protein Kinase C (PKC) isozymes play a role in organ damage from ischemia and reperfusion.
- The specific role of deltaPKC in cerebral ischemic injury is debated.
- Previous research suggests deltaPKC mediates apoptotic processes.
Purpose of the Study:
- To investigate the role of deltaPKC in cerebral ischemic injury.
- To evaluate the therapeutic potential of a deltaPKC-selective inhibitor, deltaV1-1, in stroke models.
Main Methods:
- Used a rat hippocampal slice model with oxygen-glucose deprivation (OGD) to mimic cerebral ischemia.
- Administered deltaV1-1 peptide inhibitor during OGD and reperfusion.
- Demonstrated in vivo peptide delivery and deltaPKC inhibition.
- Utilized a rat stroke model of transient middle cerebral artery occlusion (MCAO).
- Assessed infarct size, apoptosis (TUNEL assay), and cell survival pathways (phospho-Akt, BAD translocation).
Main Results:
- deltaPKC inhibition reduced cellular injury in the OGD model.
- deltaV1-1 successfully delivered to the brain and inhibited deltaPKC activity in vivo.
- deltaV1-1 administration significantly decreased infarct size in the MCAO stroke model.
- Therapeutic benefit observed even when deltaV1-1 was delivered hours after reperfusion onset.
- deltaV1-1 reduced apoptosis and promoted cell survival pathways by increasing phospho-Akt and inhibiting BAD translocation.
Conclusions:
- DeltaPKC plays a detrimental role during the reperfusion phase of ischemic stroke.
- The deltaPKC inhibitor deltaV1-1 shows therapeutic potential for treating stroke.
- Late administration of deltaV1-1, hours after reperfusion, can still mitigate ischemic brain injury.
