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Updated: Aug 14, 2025

Biochemical Measurement of Neonatal Hypoxia
Published on: August 24, 2011
Relationships among biochemical measures in children with diabetic ketoacidosis
Nicole S Glaser1, Michael J Stoner2, Maria Y Kwok3
1Department of Pediatrics, University of California, Davis Health, University of California Davis, School of Medicine, Sacramento, USA.
Insights
Diabetic ketoacidosis (DKA) in children shows glucose levels correlate with kidney function. Respiratory responses to acidosis in DKA vary, indicating complex physiological changes.
Area of Science:
- Pediatric Endocrinology
- Metabolic Disorders
- Clinical Chemistry
Background:
- Diabetic ketoacidosis (DKA) is a serious complication of diabetes in children.
- Understanding the interrelationships of laboratory markers in DKA is crucial for managing physiological disturbances.
- Previous research has explored various aspects of DKA, but empirical relationships among key lab values require further investigation.
Purpose of the Study:
- To investigate empirical relationships among key laboratory measures in pediatric patients presenting with DKA.
- To determine if observed laboratory alterations during DKA align with theoretical physiological predictions.
- To assess the consistency of laboratory findings in children experiencing recurrent DKA episodes.
Main Methods:
- Utilized Pearson correlation statistics and linear regression analysis.
- Examined correlations between blood glucose, electrolytes, pH, and partial pressure of carbon dioxide (PCO2).
- Analyzed data from 1,681 pediatric DKA episodes and compared laboratory measures in children with repeat DKA events.
Main Results:
- Strong correlation observed between pH and bicarbonate levels (r=0.64).
- Weak correlation found between pH and PCO2 (r=0.17), suggesting variable respiratory compensation.
- Blood glucose levels correlated with markers of dehydration and renal function, including blood urea nitrogen (BUN) (r=0.44) and creatinine (r=0.42).
- In repeat DKA episodes, PCO2 levels were more consistent (r=0.34) than pH levels (r=0.19).
Conclusions:
- Elevated glucose levels in DKA are primarily associated with changes in glomerular filtration rate.
- The weak correlation between pH and PCO2 indicates that individual respiratory responses to acidosis in DKA are inconsistent.
- Variability in respiratory response may be influenced by pulmonary and central nervous system effects of DKA.
Objectives:
Investigating empirical relationships among laboratory measures in children with diabetic ketoacidosis (DKA) can provide insights into physiological alterations occurring during DKA. We determined whether alterations in laboratory measures during DKA conform to theoretical predictions.
Methods:
We used Pearson correlation statistics and linear regression to investigate correlations between blood glucose, electrolytes, pH and PCO2 at emergency department presentation in 1,681 pediatric DKA episodes. Among children with repeat DKA episodes, we also assessed correlations between laboratory measures at the first vs. second episode.
Results:
pH and bicarbonate levels were strongly correlated (r=0.64), however, pH and PCO2 were only loosely correlated (r=0.17). Glucose levels were correlated with indicators of dehydration and kidney function (blood urea nitrogen (BUN), r=0.44; creatinine, r=0.42; glucose-corrected sodium, r=0.32). Among children with repeat DKA episodes, PCO2 levels tended to be similar at the first vs. second episode (r=0.34), although pH levels were only loosely correlated (r=0.19).
Conclusions:
Elevated glucose levels at DKA presentation largely reflect alterations in glomerular filtration rate. pH and PCO2 are weakly correlated suggesting that respiratory responses to acidosis vary among individuals and may be influenced by pulmonary and central nervous system effects of DKA.
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