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Updated: Mar 10, 2026

Author Spotlight: Advanced Integrated Model for Sepsis-Induced Myopathy and Single-Cell Metabolic Analysis
Published on: June 14, 2024
Abnormal Mitochondrial cAMP/PKA Signaling Is Involved in Sepsis-Induced Mitochondrial and Myocardial Dysfunction
Remi Neviere1,2, Florian Delguste3, Arthur Durand4,5
1Département de Physiologie, Faculté de Médecine, Université Lille, 1 Place de Verdun, F-59000 Lille CEDEX 59045, France. rneviere@univ-lille2.fr.
Abstract:
Adrenergic receptors couple to Gs-proteins leading to transmembrane adenylyl cyclase activation and cytosolic cyclic adenosine monophosphate (cAMP) production. Cyclic AMP is also produced in the mitochondrial matrix, where it regulates respiration through protein kinase A (PKA)-dependent phosphorylation of respiratory chain complexes. We hypothesized that a blunted mitochondrial cAMP-PKA pathway would participate in sepsis-induced heart dysfunction. Adult male mice were subjected to intra-abdominal sepsis. Mitochondrial respiration of cardiac fibers and myocardial contractile performance were evaluated in response to 8Br-cAMP, PKA inhibition (H89), soluble adenylyl cyclase inhibition (KH7), and phosphodiesterase inhibition (IBMX; BAY60-7550). Adenosine diphosphate (ADP)-stimulated respiratory rates of cardiac fibers were reduced in septic mice. Compared with controls, stimulatory effects of 8Br-cAMP on respiration rates were enhanced in septic fibers, whereas inhibitory effects of H89 were reduced. Ser-58 phosphorylation of cytochrome c oxidase subunit IV-1 was reduced in septic hearts. In vitro, incubation of septic cardiac fibers with BAY60-7550 increased respiratory control ratio and improved cardiac MVO₂ efficiency in isolated septic heart. In vivo, BAY60-7550 pre-treatment of septic mice have limited impact on myocardial function. Mitochondrial cAMP-PKA signaling is impaired in the septic myocardium. PDE2 phosphodiesterase inhibition by BAY60-7550 improves mitochondrial respiration and cardiac MVO₂ efficiency in septic mice.
Insights
Sepsis impairs mitochondrial cyclic adenosine monophosphate (cAMP) signaling in the heart. Inhibiting phosphodiesterase 2 (PDE2) with BAY60-7550 improved mitochondrial respiration and cardiac efficiency in septic mice.
Area of Science:
- Mitochondrial physiology
- Cardiovascular research
- Sepsis pathophysiology
Background:
- Adrenergic receptors activate cyclic adenosine monophosphate (cAMP) production, impacting cellular respiration.
- Mitochondrial cAMP-protein kinase A (PKA) signaling regulates respiratory chain complexes.
- Sepsis-induced heart dysfunction may involve a blunted mitochondrial cAMP-PKA pathway.
Purpose of the Study:
- To investigate the role of mitochondrial cAMP-PKA signaling in sepsis-induced heart dysfunction.
- To evaluate the effects of phosphodiesterase inhibition on mitochondrial respiration and cardiac function during sepsis.
Main Methods:
- Adult male mice underwent intra-abdominal sepsis induction.
- Cardiac fiber mitochondrial respiration and myocardial contractile performance were assessed.
- Responses to cAMP analogs, PKA inhibitors, adenylyl cyclase inhibitors, and phosphodiesterase inhibitors (BAY60-7550) were evaluated.
Main Results:
- Septic mice exhibited reduced ADP-stimulated cardiac fiber respiration.
- Mitochondrial cAMP-PKA pathway responsiveness was altered in septic hearts.
- Phosphodiesterase 2 inhibition with BAY60-7550 enhanced mitochondrial respiration and cardiac MVO₂ efficiency in vitro.
- In vivo BAY60-7550 treatment showed limited effects on myocardial function in septic mice.
Conclusions:
- Mitochondrial cAMP-PKA signaling is impaired in the septic myocardium.
- Targeting PDE2 with BAY60-7550 demonstrates potential for improving mitochondrial respiration and cardiac efficiency in sepsis.
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