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Development of a Neonatal Piglet Acute Lung Injury Model Recreating the Early Environment of Preterm Infant Lungs
Published on: October 31, 2025
Early-life lung injury and the developing brain: a lung-brain axis perspective on neurodevelopmental disorders
Chengwei Li1, Fei Wang1, Xiaoyi Tang1
1Department of Anesthesiology, Qilu Hospital (Qingdao), Cheeloo College of Medicine, Shandong University, Qingdao, 266035, People's Republic of China.
Insights
Early lung injuries like asthma increase neurodevelopmental disorder risk. The lung-brain axis explains how lung problems impact brain development, affecting cognition and behavior.
Area of Science:
- Pediatric Pulmonology
- Neurodevelopmental Biology
- Environmental Health
Background:
- Early-life lung injuries, including bronchopulmonary dysplasia and asthma, are linked to neurodevelopmental disorders.
- The developing brain is highly susceptible to insults during infancy and childhood.
- Pulmonary insults can disrupt neurodevelopment via the lung-brain axis.
Purpose of the Study:
- To elucidate the mechanisms connecting early-life lung injuries to neurodevelopmental disorders.
- To highlight the significance of the lung-brain axis in understanding this comorbidity.
- To advocate for integrated care for early-life lung diseases.
Main Methods:
- Review of emerging evidence on lung-brain axis mechanisms.
- Identification of pathways linking pulmonary insults to neurodevelopmental outcomes.
- Analysis of neurodevelopmental disorders associated with early lung disease.
Main Results:
- Hypoxia-oxidative stress impairs oligodendrocyte maturation and myelination.
- Pulmonary microvascular injury disrupts neuronal energy metabolism.
- Systemic inflammation and pulmonary inflammation trigger neuroinflammation, affecting synapses and myelination.
Conclusions:
- The lung-brain axis provides a framework for understanding early-life lung injury-neurodevelopmental disorder links.
- Integrated neurodevelopmental risk assessment is crucial for managing early-life lung diseases.
- Future research should focus on longitudinal studies and targeted therapies for integrated pulmonary and neurological health.
Abstract:
Emerging evidence indicates that early-life lung injuries-including bronchopulmonary dysplasia, childhood asthma, recurrent respiratory infections, and environmental tobacco smoke exposure-are significantly associated with an increased risk of neurodevelopmental disorders such as cognitive impairment, autism spectrum disorder, attention-deficit/hyperactivity disorder, and emotional or behavioral affections. The developing brain is particularly vulnerable during infancy and childhood, and pulmonary insults during this critical window may disrupt normal neurodevelopment through multiple interconnected mechanisms along the lung-brain axis. These mechanisms include the hypoxia-oxidative stress axis, which impairs oligodendrocyte maturation and myelination; pulmonary microvascular injury leading to neuronal energy metabolism dysregulation; systemic inflammation-mediated disruption of the blood-brain barrier; and a cascade from pulmonary inflammation to neuroinflammation, characterized by microglial activation, synaptic dysfunction, and impaired myelination. Together, these pathways converge to produce long-lasting neurodevelopmental consequences. Understanding the lung-brain axis provides a novel theoretical framework for explaining this comorbidity and highlights the need to integrate neurodevelopmental risk assessment and early intervention into the clinical management of early-life lung diseases. Future research should focus on longitudinal cohorts, identification of critical developmental windows, and targeted therapeutic strategies that address both pulmonary and neurological health.
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