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Delivery of In Vivo Acute Intermittent Hypoxia in Neonatal Rodents to Prime Subventricular Zone-derived Neural Progenitor Cell Cultures
Published on: November 2, 2015
Ontogenetic development of cardiac tolerance to oxygen deprivation - possible mechanisms
B Ošťádal1, I Ošťádalová, F Kolář
1Center for Cardiovascular Research, Prague, Czech Republic. ostadal@biomed.cas.cz
Insights
The immature heart tolerates oxygen deficiency better than the adult heart, likely due to developmental changes in cardiac energy metabolism and mitochondrial function. Understanding these mechanisms is key for treating cardiovascular diseases.
Area of Science:
- Cardiovascular Research
- Developmental Biology
- Metabolic Physiology
Background:
- Cyanotic congenital heart defects are a leading cause of mortality.
- Ischemic heart disease risk factors emerge early in life.
- Adults operated for congenital heart disease face increased cardiovascular risks.
Purpose of the Study:
- Investigate the mechanisms behind the immature heart's tolerance to hypoxia.
- Explore developmental changes in cardiac energy metabolism and mitochondrial function.
- Identify factors influencing myocardial resistance to oxygen deprivation.
Main Methods:
- Experimental studies comparing immature and adult myocardium.
- Analysis of cardiac energy metabolism pathways.
- Assessment of mitochondrial function under hypoxic conditions.
Main Results:
- The immature heart exhibits significantly higher tolerance to oxygen deficiency compared to adult myocardium.
- Protective mechanisms like ischemic preconditioning develop with decreasing tolerance during maturation.
- Perinatal hypoxia can influence adult myocardial resistance to oxygen deprivation.
Conclusions:
- Developmental changes in cardiac energy metabolism and mitochondrial function underlie hypoxia tolerance in the immature heart.
- The developmental trajectory offers novel insights into cardiovascular disease pathogenesis and prevention.
- Targeting developmental pathways may provide new therapeutic strategies for critical cardiovascular diseases.
Abstract:
Our present focus on the hypoxic immature heart is driven by clinical urgency: cyanotic congenital cardiac malformations remain the single largest cause of mortality from congenital defects and ischemic heart disease is no more the disease of the fifth and older decades but its origin as well as risk factors are present already during early ontogeny. Moreover, the number of adult patients operated for cyanotic congenital heart disease during infancy steadily increases. This group approaches the age of the rising risk of serious cardiovascular diseases, particularly ischemic heart disease. Experimental results have clearly shown that the immature heart is significantly more tolerant to oxygen deficiency than the adult myocardium. However, the mechanisms of this difference have not yet been satisfactorily clarified; they are likely the result of developmental changes in cardiac energy metabolism, including mitochondrial function. The high resistance of the newborn heart cannot be further increased by ischemic preconditioning or adaptation to chronic hypoxia; these protective mechanisms appear only with decreasing tolerance during development. Resistance of the adult myocardium to acute oxygen deprivation may be significantly influenced by perinatal hypoxia. These results suggest that the developmental approach offers new possibilities in the studies of pathogenesis, prevention and therapy of critical cardiovascular diseases.
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