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PKC and AKT Modulate cGMP/PKG Signaling Pathway on Platelet Aggregation in Experimental Sepsis
M Elisa Lopes-Pires1, Ana C Antunes Naime1, Nádia J Almeida Cardelli1
1Department of Pharmacology, Faculty of Medical Sciences, University of Campinas (UNICAMP), Campinas (SP), Brazil.
Insights
Sepsis inhibits platelet aggregation via increased nitric oxide (NO) and cyclic GMP (cGMP) pathways. Protein kinase C (PKC) and AKT signaling modulate this platelet inhibition in sepsis.
Area of Science:
- Biochemistry
- Hematology
- Pathophysiology
Background:
- Sepsis is linked to platelet dysfunction, potentially due to elevated nitric oxide (NO) and cyclic GMP (cGMP).
- The roles of Protein Kinase C (PKC), Src kinases, PI3K, and AKT in sepsis-induced platelet aggregation remain unstudied.
Purpose of the Study:
- To investigate the hypothesis that in sepsis, specific enzymes modulate the NO-cGMP pathway, leading to platelet inhibition.
- To elucidate the upstream mechanisms regulating platelet aggregation in a sepsis model.
Main Methods:
- Rats were injected with lipopolysaccharide (LPS) to induce sepsis.
- Platelet aggregation was measured after ADP stimulation.
- Western blotting and enzyme immunoassay were used to analyze protein activation and cGMP levels.
Main Results:
- LPS injection significantly increased intraplatelet cGMP levels and reduced ADP-induced platelet aggregation.
- Inhibition of guanylyl cyclase and Protein Kinase G (PKG) reversed LPS-induced platelet inhibition.
- PKC and AKT inhibitors altered cGMP levels and platelet aggregation, suggesting their upstream roles.
Conclusions:
- Sepsis-induced inhibition of platelet aggregation is mediated by cGMP/PKG-dependent mechanisms.
- PKC and AKT signaling pathways act upstream to upregulate the cGMP pathway, contributing to platelet inhibition in sepsis.
Abstract:
Sepsis severity has been positively correlated with platelet dysfunction, which may be due to elevations in nitric oxide (NO) and cGMP levels. Protein kinase C, Src kinases, PI3K and AKT modulate platelet activity in physiological conditions, but no studies evaluated the role of these enzymes in platelet aggregation in sepsis. In the present study we tested the hypothesis that in sepsis these enzymes positively modulate upstream the NO-cGMP pathway resulting in platelet inhibition. Rats were injected with lipopolysaccharide (LPS, 1 mg/kg, i.p.) and blood was collected after 6 h. Platelet aggregation was induced by ADP (10 μM). Western blotting assays were carried out to analyze c-Src and AKT activation in platelets. Intraplatelet cGMP levels were determined by enzyme immunoassay kit. Phosphorylation of c-SRC at Tyr416 was the same magnitude in platelets of control and LPS group. Incubation of the non-selective Src inhibitor PP2 (10 μM) had no effect on platelet aggregation of LPS-treated rats. LPS increased intraplatelet cGMP levels by 5-fold compared with control group, which was accompanied by 76% of reduction in ADP-induced platelet aggregation. The guanylyl cyclase inhibitor ODQ (25 μM) and the PKG inhibitor Rp-8-Br-PET-cGMPS (25 μM) fully reversed the inhibitory effect of LPS on platelet aggregation. Likewise, the PKC inhibitor GF109203X (10 μM) reversed the inhibition by LPS of platelet aggregation and decreased cGMP levels in platelets. AKT phosphorylation at Thr308 was significantly higher in platelets of LPS compared with control group, which was not reduced by PI3K inhibition. The AKT inhibitor API-1 (20 μM) significantly increased aggregation and reduced cGMP levels in platelets of LPS group. However, the PI3K inhibitor wortmannin and LY29004 had no effect on platelet aggregation of LPS-treated rats. Therefore, inhibition of ADP-induced platelet aggregation after LPS injection is mediated by cGMP/PKG-dependent mechanisms, and PKC and AKT act upstream upregulating this pathway.
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