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Perinatal Nutritional and Metabolic Pathways: Early Origins of Chronic Lung Diseases
Celien Kuiper-Makris1, Jaco Selle1, Eva Nüsken2
1Department of Pediatric and Adolescent Medicine, Translational Experimental Pediatrics-Experimental Pulmonology, Faculty of Medicine and University Hospital Cologne, University of Cologne, Cologne, Germany.
Insights
Perinatal nutrition significantly impacts lung development and susceptibility to chronic lung diseases. Understanding these metabolic programming mechanisms is crucial for developing new prevention and treatment strategies.
Area of Science:
- Developmental biology
- Neonatal medicine
- Nutritional science
Background:
- Lung development extends beyond infancy, making it vulnerable to injury during critical growth periods.
- Perinatal programming links early life exposures to long-term chronic disease, including bronchopulmonary dysplasia (BPD).
- While factors like oxygen and ventilation are studied, the role of perinatal nutrition in lung health is less understood.
Purpose of the Study:
- To provide a comprehensive overview of how perinatal metabolism and nutrition affect lung development and function.
- To explore the mechanisms underlying the link between perinatal nutrition and chronic lung diseases (CLD).
- To highlight the importance of understanding perinatal metabolic programming for future therapeutic interventions.
Main Methods:
- Review of existing clinical and experimental evidence on perinatal nutrition and lung health.
- Analysis of factors such as intrauterine growth restriction (IUGR) and maternal/childhood obesity.
- Exploration of inflammatory and nutrient-sensing pathways involved in lung development.
Main Results:
- Intrauterine growth restriction (IUGR) is linked to BPD and impaired lung function.
- Perinatal nutritional surplus (obesity) is associated with wheezing and adverse asthma outcomes.
- Inflammatory and nutrient-sensing processes are implicated in alveolarization and angiogenesis.
Conclusions:
- Perinatal nutrition is a critical determinant of lung health and susceptibility to CLD.
- Understanding the mechanisms of perinatal metabolic programming is essential for developing preventive strategies.
- Further research into these pathways can lead to novel therapeutic approaches for early-life lung conditions.
Abstract:
Lung development is not completed at birth, but expands beyond infancy, rendering the lung highly susceptible to injury. Exposure to various influences during a critical window of organ growth can interfere with the finely-tuned process of development and induce pathological processes with aberrant alveolarization and long-term structural and functional sequelae. This concept of developmental origins of chronic disease has been coined as perinatal programming. Some adverse perinatal factors, including prematurity along with respiratory support, are well-recognized to induce bronchopulmonary dysplasia (BPD), a neonatal chronic lung disease that is characterized by arrest of alveolar and microvascular formation as well as lung matrix remodeling. While the pathogenesis of various experimental models focus on oxygen toxicity, mechanical ventilation and inflammation, the role of nutrition before and after birth remain poorly investigated. There is accumulating clinical and experimental evidence that intrauterine growth restriction (IUGR) as a consequence of limited nutritive supply due to placental insufficiency or maternal malnutrition is a major risk factor for BPD and impaired lung function later in life. In contrast, a surplus of nutrition with perinatal maternal obesity, accelerated postnatal weight gain and early childhood obesity is associated with wheezing and adverse clinical course of chronic lung diseases, such as asthma. While the link between perinatal nutrition and lung health has been described, the underlying mechanisms remain poorly understood. There are initial data showing that inflammatory and nutrient sensing processes are involved in programming of alveolarization, pulmonary angiogenesis, and composition of extracellular matrix. Here, we provide a comprehensive overview of the current knowledge regarding the impact of perinatal metabolism and nutrition on the lung and beyond the cardiopulmonary system as well as possible mechanisms determining the individual susceptibility to CLD early in life. We aim to emphasize the importance of unraveling the mechanisms of perinatal metabolic programming to develop novel preventive and therapeutic avenues.
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