A Single-Center Observational Clinical Study on Factors Associated with Regional Cerebral Oxygen Saturation in

Weiqiao Zhang1, Fei Ge2, Chaohui Lian3

  • 1Department of Anesthesiology, Zhejiang Provincial Hospital of Traditional Chinese Medicine, Hangzhou, Zhejiang, China (mainland).

Insights

Regional cerebral oxygen saturation (CrSO₂) in newborns correlates with pulse oxygen saturation (SpO₂) and end-tidal carbon dioxide (EtCO₂). However, CrSO₂ showed no significant link to newborn weight, pulse rate, or respiratory rate during birth transition.

Area of Science:

  • Neonatal physiology
  • Clinical monitoring
  • Cerebral oxygenation

Background:

  • Hypoxic hypoperfusion poses risks to newborns.
  • Monitoring regional cerebral oxygen saturation (CrSO₂) is crucial during neonatal birth transition.
  • Understanding factors influencing CrSO₂ aids in preventing potential injury.

Purpose of the Study:

  • To investigate factors associated with regional cerebral oxygen saturation (CrSO₂) in full-term newborns during birth transition.
  • To determine the correlation between CrSO₂ and SpO₂, EtCO₂, neonatal weight, PR, and RR.
  • To provide insights for optimizing neonatal care during the critical birth period.

Main Methods:

  • Observational clinical study involving 84 full-term newborns delivered via cesarean section.
  • CrSO₂, SpO₂, PR, EtCO₂, and RR were recorded at 2, 5, and 10 minutes post-umbilical cord clamping.
  • Statistical analysis, including Pearson correlation, was used to assess relationships between variables.

Main Results:

  • Significant positive correlation found between CrSO₂ and SpO₂ at all measured time points (P<0.01).
  • Significant negative correlation observed between CrSO₂ and EtCO₂ at 2 and 5 minutes (P<0.05).
  • No significant correlation was found between CrSO₂ and neonatal weight, PR, or RR.

Conclusions:

  • CrSO₂ is correlated with SpO₂ and EtCO₂ during the birth transition in full-term infants born via C-section.
  • Neonatal weight, pulse rate, and respiratory rate were not significantly correlated with CrSO₂ in this cohort.
  • Findings highlight the importance of monitoring SpO₂ and EtCO₂ for assessing cerebral oxygenation in newborns.

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