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Updated: Jun 22, 2026

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Elucidating the role of reversible protein phosphorylation in sepsis-induced myocardial dysfunction
Angela Lorts1, Timothy Burroughs, Thomas P Shanley
1Division of Pediatric Cardiology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio 45229, USA. Angela.Lorts@cchmc.org
Insights
Pediatric septic shock involves heart muscle dysfunction, distinct from adults. Understanding calcium signaling in heart cells is key to improving treatments and reducing child mortality from sepsis.
Area of Science:
- Pediatric Cardiology
- Critical Care Medicine
- Molecular Cardiology
Background:
- Sepsis mortality in children is often due to cardiovascular collapse, characterized by diminished cardiac output and impaired oxygen delivery.
- Pediatric septic shock typically presents with intrinsic myocardial dysfunction and high systemic vascular resistance, differing from adult sepsis profiles.
- Myocardial dysfunction in pediatric sepsis stems from cardiomyocyte abnormalities, not solely from hypoperfusion due to low systemic vascular resistance.
Purpose of the Study:
- To investigate the role of intracellular calcium flux and signaling pathways in sepsis-induced myocardial dysfunction.
- To identify potential therapeutic targets within cardiomyocyte calcium handling mechanisms to improve outcomes in pediatric septic shock.
Main Methods:
- Review of existing data on sepsis-induced intracellular alterations in calcium flux within cardiomyocytes.
- Emphasis on changes in contractile protein phosphorylation regulated by kinases and phosphatases.
Main Results:
- Sepsis significantly alters myocardial calcium flux and cardiomyocyte contractility.
- Kinase and phosphatase activity plays a crucial role in regulating these sepsis-induced changes.
Conclusions:
- Targeting key signaling pathways that control myocardial calcium handling offers a promising strategy for improving cardiovascular support in pediatric sepsis.
- Modulating kinase and phosphatase activity may enhance calcium handling and myocardial contractility, potentially altering clinical outcomes in sepsis.
Abstract:
Mortality in children with sepsis is most often related to diminished cardiac output with cardiovascular collapse, resulting in impaired oxygen delivery and, ultimately, end-organ failure. Although cardiovascular "collapse" is commonly observed in individuals with septic shock, the hemodynamic causes of this differ greatly. In children, intrinsic myocardial dysfunction is most commonly present, whereas the systemic vascular resistance is typically high. This pattern is distinct from adults with sepsis where the principal hemodynamic profile shows elevated cardiac output, but substantially reduced systemic vascular resistance. Various studies support the concept that myocardial dysfunction, as occurs in pediatric septic patients, is due to intrinsic abnormalities in cardiomyocyte function and is not related to hypoperfusion as a result of low systemic vascular resistance. Importantly, when examined more closely, data from adults with septic shock also reveal that intrinsic myocardial dysfunction may play a larger role than previously appreciated. As a result, cardiovascular support, especially in pediatric sepsis, requires a treatment strategy directed at the underlying mechanism(s) responsible for this dysfunction. Thus, it is imperative to gain a better understanding of the myocardial derangements that occur during sepsis to identify targets that will ultimately influence the management of children with septic shock and favorably alter the associated mortality. We hypothesize that key signaling pathways that control myocardial calcium flux, regulated to key kinases and phosphatases, influence myocyte contractility in sepsis. Thus, we review the data relevant to the sepsis-induced intracellular alterations in calcium flux in the cardiomyocyte, with an emphasis on changes in the phosphorylation state of the contractile proteins regulated by the balance between kinases and phosphatases. We believe that therapies modulating the activity of these key proteins may provide an improvement in calcium handling and myocardial contractility and alter the clinical outcomes in sepsis.
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