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3. Senescence of lung mesenchymal stem cells of preterm infants by cyclic stretch and hyperoxia via p21.

4. Wedelolactone inhibits ferroptosis and alleviates hyperoxia-induced acute lung injury via the Nrf2/HO-1 signaling pathway.

5. Deciphering regulatory patterns in a mouse model of hyperoxia-induced acute lung injury.

6. Acute psycho-physiological responses to submaximal constant-load cycling under intermittent hypoxia-hyperoxia vs . hypoxia-normoxia in young males.

7. PPARγ drives mitochondrial stress signaling and the loss of atrial cardiomyocytes in newborn mice exposed to hyperoxia.

8. Pulmonary Events in ICU patients with hyperoxia: is it possible to relate arterial partial pressure of oxygen to coded diseases? A retrospective analysis.

9. Arterial hyperoxia and mortality in the cardiac intensive care unit.

10. Post-traumatic hyperoxia after pediatric TBI.

11. Electronic Nose Analysis of Exhaled Breath Volatile Organic Compound Profiles during Normoxia, Hypoxia, and Hyperoxia.

12. Therapeutic characteristics of alveolar-like macrophages in mouse models of hyperoxia and LPS-induced lung inflammation.

13. Bax expression impacts postnatal retinal vascular development and hyperoxia sensitivity.

15. Macrophage extracellular vesicle-packaged miR-23a-3p impairs maintenance and angiogenic capacity of human endothelial progenitor cells in neonatal hyperoxia-induced lung injury.

16. Effect of endothelin-1 on the blood pressure response to acute hypoxia and hyperoxia in healthy young men.

19. Melatonin alleviates hyperoxia-induced lung injury through elevating MSC exosomal miR-18a-5p expression to repress PUM2 signaling.

21. [Role of reactive oxygen species/silent information regulator 1 in hyperoxia-induced bronchial epithelial cell injury].

22. Calcitonin gene‑related peptide alleviates hyperoxia‑induced human alveolar cell injury via the CGRPR/TRPV1/Ca2 + axis.

26. Aryl hydrocarbon receptor (AhR) is regulated by hyperoxia in premature infants.

27. Hyperoxia exposure induces ferroptosis and apoptosis by downregulating PLAGL2 and repressing HIF-1α/VEGF signaling pathway in newborn alveolar typeII epithelial cell.

28. Mitochondrial function in lungs of rats with different susceptibilities to hyperoxia-induced acute lung injury.

29. PC (16:0/14:0) ameliorates hyperoxia-induced bronchopulmonary dysplasia by upregulating claudin-1 and promoting alveolar type II cell repair.

30. BMAL1 sex-specific effects in the neonatal mouse airway exposed to moderate hyperoxia.

31. Influence of age and sex on physical, cardiac electrical and functional alterations in progressive hyperoxia treatment: A time course study in a murine model.

32. Effects of acute hyperoxia on autonomic function and coronary tone in patients with peripheral artery disease.

36. Normobaric Hyperoxia Combined With Intravenous Thrombolysis for Acute Ischemic Stroke (OPENS-3)

37. Normobaric Hyperoxia Combined With Intravenous Thrombolysis for Acute Ischemic Stroke:Longterm Outcome (OPENS-3L)

39. Bioinformatic analysis reveals the relationship between macrophage infiltration and Cybb downregulation in hyperoxia-induced bronchopulmonary dysplasia.

40. Static and dynamic responses to hyperoxia of normal placenta across gestation with T2*-weighted MRI sequences.

41. Neonatal hyperoxia exposure leads to developmental programming of cardiovascular and renal disease in adult rats.

42. [Role and mechanism of epithelial-mesenchymal transition in a rat model of bronchopulmonary dysplasia induced by hyperoxia exposure].

43. Translational 3D-Cell Culture Model to Assess Hyperoxia Effects on Human Neonatal Airway Epithelial Cells.

44. Association of Hyperoxia During Cardiopulmonary Bypass and Postoperative Delirium in the Pediatric Cardiac ICU.

45. The Mechanism of Hyperoxia-Induced Neonatal Renal Injury and the Possible Protective Effect of Resveratrol.

46. Resveratrol Attenuates Hyperoxia Lung Injury in Neonatal Rats by Activating SIRT1/PGC-1α Signaling Pathway.

47. Itaconic acid regulation of TFEB-mediated autophagy flux alleviates hyperoxia-induced bronchopulmonary dysplasia.

48. Quercetin alleviates hyperoxia-induced bronchopulmonary dysplasia by inhibiting ferroptosis through the MAPK/PTGS2 pathway: Insights from network pharmacology, molecular docking, and experimental evaluations.

49. Protective effect of recombinant interleukin-10 on newborn rat lungs exposed to short-term sublethal hyperoxia

50. Occurrence of hyperoxia during iNO treatment for persistent pulmonary hypertension of the newborn: a cohort study.

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