Oxygen for the Newborn: Friend or Foe?
Abstract
1. Introduction
2. Methods
2.1. Research Strategy
2.2. Study Selection
3. Reactive Oxygen and Nitrogen Species
Functions of ROS
4. Antioxidants
4.1. Enzymatic Antioxidants
4.2. Non-Enzymatic Antioxidants
5. Newborn Susceptibility to Oxidants
6. Free Radical Disease in Newborn
6.1. Retinopathy of Prematurity
6.2. Periventricular Leukomalacia
6.3. Bronchopulmonary Dysplasia
6.4. Necrotizing Enterocolitis
6.5. Patent Ductus Arteriosus
7. Discussion
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Disease | Reference | Population | OS Biomarker | Results |
---|---|---|---|---|
ROP | Pierce 1996 [56] | Neonatal mice exposed to hyperoxia | VEGF | The expression of VEGF in the peripheral retina was down-regulated by hyperoxia in conjunction with the arrest of growth and the loss of some of the developing vasculature. |
Banjac 2018 [51] | Preterm newborns | TOS, TAS, MDA and PON1 | TOS and MDA were significantly higher in infants with ROP as compared to infants without ROP | |
WMI | Coviello 2021 [54] | Preterm newborns | Cord blood and plasma IPs | Cord blood IPs were not correlated with white matter injury score, whereas higher plasma IPs and lower gestational age predicted higher white matter injury score |
Coviello 2022 [55] | Preterm newborns | IPs | Higher plasma IPs levels are associated with decreased functional brain activity. | |
BPD | Carnesecchi 2009 [57] | Wild-type and NOX1- and NOX2-deficient mice | ROS | ROS production was reduced in lung from NOX1-deficient mice. |
Hou 2015 [58] | Newborn rats | AEC I (aquaporin 5, T1α) and AEC II markers (SP-C, SP-B) | Authors found an increase in AEC II-to-AEC I transdifferentiation in a hyperoxia-induced, BPD-like model at both the tissue and cellular levels. | |
NEC | Baregamian 2011 [59] | Rat and human fetal intestinal epithelial cells | ROS | OS leads to increased intracellular ROS production by mitochondria and activation of mitochondrial apoptotic signaling pathways in both human fetal and rat intestinal epithelial cells. |
Perrone 2012 [60] | Preterm newborns | NPBI, AOPP and TH | AOPP, TH and NPBI cord blood levels were significantly higher in babies with NEC | |
PDA | Longini 2010 [61] | Preterm newborns (<33 weeks of gestational age) | urinary IPs | Ibuprofen therapy for PDA closure reduces the risk of OS, inducing a decrease of urinary IPs. |
Chen 2012 [62] | Newborn mouse | IPs | IPs levels are increased shortly after birth in response to increased oxygen tension and this may serve as a novel physiological signal to stimulate postnatal PDA closure. Authors found that IPs have both vasoconstrictive and vasodilatory effects. |
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Perrone, S.; Manti, S.; Petrolini, C.; Dell’Orto, V.G.; Boscarino, G.; Ceccotti, C.; Bertini, M.; Buonocore, G.; Esposito, S.M.R.; Gitto, E. Oxygen for the Newborn: Friend or Foe? Children 2023, 10, 579. https://doi.org/10.3390/children10030579
Perrone S, Manti S, Petrolini C, Dell’Orto VG, Boscarino G, Ceccotti C, Bertini M, Buonocore G, Esposito SMR, Gitto E. Oxygen for the Newborn: Friend or Foe? Children. 2023; 10(3):579. https://doi.org/10.3390/children10030579
Chicago/Turabian StylePerrone, Serafina, Sara Manti, Chiara Petrolini, Valentina Giovanna Dell’Orto, Giovanni Boscarino, Chiara Ceccotti, Mattia Bertini, Giuseppe Buonocore, Susanna Maria Roberta Esposito, and Eloisa Gitto. 2023. "Oxygen for the Newborn: Friend or Foe?" Children 10, no. 3: 579. https://doi.org/10.3390/children10030579
APA StylePerrone, S., Manti, S., Petrolini, C., Dell’Orto, V. G., Boscarino, G., Ceccotti, C., Bertini, M., Buonocore, G., Esposito, S. M. R., & Gitto, E. (2023). Oxygen for the Newborn: Friend or Foe? Children, 10(3), 579. https://doi.org/10.3390/children10030579