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A Murine Model of Fetal Exposure to Maternal Inflammation to Study the Effects of Acute Chorioamnionitis on Newborn Intestinal Development
Published on: June 24, 2020
Influence of innate immune activation on endocrine and metabolic pathways in infancy
K M O'Connor1, M Ashoori1,2, M L Dias1
1Department of Physiology, School of Medicine, College of Medicine and Health, University College Cork, Cork, Ireland.
Insights
Neonatal sepsis, an infection in newborns, causes significant harm and death. Early identification and targeted treatments are crucial to prevent long-term health issues and reduce mortality in premature infants.
Area of Science:
- Neonatal immunology
- Infectious diseases
- Endocrinology
- Metabolic disorders
Background:
- Prematurity is a primary cause of newborn illness and death globally.
- Premature infants face higher infection risks during extended hospital stays.
- Innate immune system activation in newborns can lead to severe, lasting health problems.
Purpose of the Study:
- To review sepsis-induced changes in neuroendocrine and metabolic pathways in neonates.
- To identify knowledge gaps in neonatal sepsis research.
- To explore novel biomarkers for early sepsis detection in newborns.
Main Methods:
- Literature review of established and emerging sepsis biomarkers.
- Analysis of human and animal models of neonatal sepsis.
- Examination of neuroendocrine and metabolic alterations.
Main Results:
- Sepsis triggers widespread detrimental effects on newborn physiology.
- Existing biomarkers for sepsis are discussed, alongside novel candidates.
- Neonatal sepsis can induce long-term health alterations.
Conclusions:
- There is a critical need for improved diagnosis and treatment of neonatal sepsis.
- Biomarker-guided precision medicine can enhance empirical and adjunctive therapies.
- Reducing sepsis-related morbidity and mortality in neonates is a key clinical goal.
Abstract:
Prematurity is the leading cause of neonatal morbidity and mortality worldwide. Premature infants often require extended hospital stays, with increased risk of developing infection compared with term infants. A picture is emerging of wide-ranging deleterious consequences resulting from innate immune system activation in the newborn infant. Those who survive infection have been exposed to a stimulus that can impose long-lasting alterations into later life. In this review, we discuss sepsis-driven alterations in integrated neuroendocrine and metabolic pathways and highlight current knowledge gaps in respect of neonatal sepsis. We review established biomarkers for sepsis and extend the discussion to examine emerging findings from human and animal models of neonatal sepsis that propose novel biomarkers for early identification of sepsis. Future research in this area is required to establish a greater understanding of the distinct neonatal signature of early and late-stage infection, to improve diagnosis, curtail inappropriate antibiotic use, and promote precision medicine through a biomarker-guided empirical and adjunctive treatment approach for neonatal sepsis. There is an unmet clinical need to decrease sepsis-induced morbidity in neonates, to limit and prevent adverse consequences in later life and decrease mortality.
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