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Updated: Feb 6, 2026

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Published on: July 18, 2025
Vitamin A Protects the Preterm Lamb Diaphragm Against Adverse Effects of Mechanical Ventilation
Yong Song1,2,3,4, MarJanna Dahl5, Wendy Leavitt5
1School of Human Sciences, The University of Western Australia, Crawley, WA, Australia.
Insights
Mechanical ventilation harms preterm infant diaphragms, causing muscle changes and oxidative stress. Vitamin A supplementation protects against these effects, supporting diaphragm health in vulnerable newborns.
Area of Science:
- Neonatal physiology
- Respiratory medicine
- Biochemistry
Background:
- Preterm infants often have vitamin A deficiency, crucial for diaphragm development.
- Mechanical ventilation (MV) is necessary for preterm infants with respiratory distress but can cause diaphragm dysfunction.
- Adult studies link MV to diaphragm dysfunction and weaning difficulties.
Purpose of the Study:
- To investigate the impact of MV on the preterm lamb diaphragm.
- To evaluate the protective effects of vitamin A during MV in preterm lambs.
Main Methods:
- Preterm lambs underwent 3 days of synchronized intermittent mandatory ventilation.
- One group received daily enteral vitamin A and retinoic acid (VARA); controls received saline.
- Diaphragm tissues were analyzed for gene expression, proteasome activity, protein carbonyls, and metabolic signaling.
Main Results:
- MV altered myosin heavy chain (MHC) gene expression and increased proteasome activity, MuRF1 expression, and protein carbonyls.
- VARA supplementation reduced proteasome activity, FOXO1 signaling, MuRF1 expression, and reactive oxygen production.
- MV led to abnormal myofibrillar composition, proteolytic pathway activation, and oxidative injury.
Conclusions:
- Mechanical ventilation induces diaphragm injury in preterm lambs.
- Enteral vitamin A (VARA) administration protects the preterm diaphragm from MV-induced damage.
- VARA may be a promising therapeutic strategy for mechanically ventilated preterm infants.
Abstract:
Background: Preterm infants are deficient in vitamin A, which is essential for growth and development of the diaphragm. Preterm infants often require mechanical ventilation (MV) for respiratory distress. In adults, MV is associated with the development of ventilation-induced diaphragm dysfunction and difficulty weaning from the ventilator. We assessed the impact of MV on the preterm diaphragm and the protective effect of vitamin A during MV. Methods: Preterm lambs delivered operatively at ∼131 days gestation (full gestation: 150 days) received respiratory support by synchronized intermittent mandatory ventilation for 3 days. Lambs in the treated group received daily (24 h) enteral doses of 2500 IU/kg/day vitamin A combined with 250 IU/kg/day retinoic acid (VARA) during MV, while MV control lambs received saline. Unventilated fetal reference lambs were euthanized at birth, without being allowed to breathe. The fetal diaphragm was collected to quantify mRNA levels of myosin heavy chain (MHC) isoforms, atrophy genes, antioxidant genes, and pro-inflammatory genes; to determine ubiquitin proteasome pathway activity; to measure the abundance of protein carbonyl, and to investigate metabolic signaling. Results: Postnatal MV significantly decreased expression level of the neonatal MHC gene but increased expression level of MHC IIx mRNA level (p < 0.05). Proteasome activity increased after 3 days MV, accompanied by increased MuRF1 mRNA level and accumulated protein carbonyl abundance. VARA supplementation decreased proteasome activity and FOXO1 signaling, down-regulated MuRF1 expression, and reduced reactive oxidant production. Conclusion: These findings suggest that 3 days of MV results in abnormal myofibrillar composition, activation of the proteolytic pathway, and oxidative injury of diaphragms in mechanically ventilated preterm lambs. Daily enteral VARA protects the preterm diaphragm from these adverse effects.
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