Related Experiment Video
Updated: Mar 11, 2026

Neurodevelopmental Reflex Testing in Neonatal Rat Pups
Published on: April 24, 2017
Consequences of maternal omega-3 polyunsaturated fatty acid supplementation on respiratory function in rat pups
Luana Tenorio-Lopes1, Cécile Baldy1, Alexandra Jochmans-Lemoine1
1Department of Pediatrics, Université Laval, Centre de Recherche du CHU de Québec, Québec, QC, Canada.
Insights
Omega-3 polyunsaturated fatty acids (n-3 PUFA) supplementation improved neonatal rat pup respiration by enhancing lung development and hypoxic responses. While n-3 PUFA increased apnea duration, it also improved respiratory function and reduced brainstem inflammation.
Area of Science:
- Neonatal physiology
- Neuroscience
- Nutritional science
Background:
- Pre-term infants often experience respiratory disorders due to underdeveloped neural breathing circuits.
- Omega-3 polyunsaturated fatty acids (n-3 PUFA) are known to benefit brain development.
Purpose of the Study:
- To investigate if maternal n-3 PUFA supplementation improves respiratory function in neonatal rat pups.
- To assess the impact of n-3 PUFA on breathing stability, lung morphology, and brainstem neuroinflammation.
Main Methods:
- Rat dams received either an n-3 PUFA-enriched diet or a standard diet from birth.
- Offspring respiratory function was measured using whole-body plethysmography during rest and hypoxia.
- Apnea duration was assessed during laryngeal chemoreflex stimulation.
- Lung morphology and brainstem microglia density were analyzed.
Main Results:
- Maternal n-3 PUFA supplementation increased n-3 PUFA levels in pups' blood and brainstem.
- Hypoxia-induced hyperventilation increased by 23% and the drop in body temperature was reduced by 1°C in supplemented pups.
- Laryngeal chemoreflex-induced apneas were shortened by 32%, and relative pulmonary surface area increased by 12%.
- Microglia cell density in the brainstem was reduced.
Conclusions:
- n-3 PUFA supplementation shows potential benefits for neonatal respiration, including improved lung architecture and enhanced responses to respiratory challenges.
- The treatment may offer a protective effect against respiratory inhibition and neuroinflammation.
- Further research is needed to confirm the overall safety and efficacy of n-3 PUFA supplementation in neonates.
Key Points:
Incomplete development of the neural circuits that control breathing contributes to respiratory disorders in pre-term infants. Manifestations include respiratory instability, prolonged apnoeas and poor ventilatory responses to stimuli. Based on evidence suggesting that omega-3 polyunsaturated fatty acids (n-3 PUFA) improves brain development, we determined whether n-3 PUFA supplementation (via the maternal diet) improves respiratory function in 10-11-day-old rat pups. n-3 PUFA treatment prolonged apnoea duration but augmented the relative pulmonary surface area and the ventilatory response to hypoxia. During hypoxia, the drop in body temperature measured in treated pups was 1 °C less than in controls. n-3 PUFA treatment also reduced microglia cell density in the brainstem. Although heterogeneous, the results obtained in rat pups constitute a proof of concept that n-3 PUFA supplementation can have positive effects on neonatal respiration. This includes a more sustained hypoxic ventilatory response and a decreased respiratory inhibition during laryngeal chemoreflex.
Abstract:
Most pre-term infants present respiratory instabilities and apnoeas as a result of incomplete development of the neural circuits that control breathing. Because omega-3 polyunsaturated fatty acids (n-3 PUFA) benefit brain development, we hypothesized that n-3 PUFA supplementation (via the maternal diet) improves respiratory function in rat pups. Pups received n-3 PUFA supplementation from an enriched diet (13 g kg-1 of n-3 PUFA) administered to the mother from birth until the experiments were performed (postnatal days 10-11). Controls received a standard diet (0.3 g kg-1 of n-3 PUFA). Breathing was measured in intact pups at rest and during hypoxia (FiO2 = 0.12; 20 min) using whole body plethysmography. The duration of apnoeas induced by stimulating the laryngeal chemoreflex (LCR) was measured under anaesthesia. Lung morphology was compared between groups. Maternal n-3 PUFA supplementation effectively raised n-3 PUFA levels above control levels both in the blood and brainstem of pups. In intact, resting pups, n-3 PUFA increased the frequency and duration of apnoeas, especially in females. During hypoxia, n-3 PUFA supplemented pups hyperventilated 23% more than controls; their anapyrexic response was 1 °C less than controls. In anaesthetized pups, n-3 PUFA shortened the duration of LCR-induced apnoeas by 32%. The relative pulmonary surface area of n-3 PUFA supplemented pups was 12% higher than controls. Although n-3 PUFA supplementation augments apnoeas, there is no clear evidence of deleterious consequences on these pups. Based on the improved lung architecture and responses to respiratory challenges, this neonatal treatment appears to be beneficial to the offspring. However, further experiments are necessary to establish its overall safety.
More Related Videos
05:13Preclinical Model of Prenatal Delta-9-Tetrahydrocannabinol Exposure to Assess Its Impact on Neurodevelopmental Outcomes
Published on: February 28, 2025
08:50A Murine Model of Fetal Exposure to Maternal Inflammation to Study the Effects of Acute Chorioamnionitis on Newborn Intestinal Development
Published on: June 24, 2020