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Published on: June 11, 2012
Hyperglycaemia results from beta-cell dysfunction in critically ill children with respiratory and cardiovascular
Catherine M Preissig1, Mark R Rigby
1Department of Pediatrics, Division of Pediatric Critical Care Medicine, Emory University School of Medicine, Children's Healthcare of Atlanta at Egleston, Atlanta, GA 30322, USA. catherine.preissig@choa.org
Insights
Critical illness hyperglycemia in children has two main causes: beta-cell dysfunction in those with severe organ failure, and insulin resistance in those with respiratory issues only. This highlights different mechanisms for managing blood sugar in critically ill children.
Area of Science:
- Pediatric Endocrinology
- Critical Care Medicine
- Metabolic Disorders
Background:
- Hyperglycemia is common in critical illness and linked to adverse outcomes.
- Insulin therapy may reduce morbidity and mortality in critically ill patients.
- The endocrinological basis of pediatric critical illness hyperglycemia (CIH) requires further investigation.
Purpose of the Study:
- To investigate the endocrinological basis of hyperglycemia in critically ill children.
- To differentiate the causes of CIH based on organ failure severity.
Main Methods:
- Assessed C-peptide and blood glucose (BG) levels in 41 children (2-18 years) in a pediatric intensive care unit (PICU).
- Defined CIH as persistent BG > 7.7 mmol/L; treated with insulin infusion (target BG 4.4-7.7 mmol/L).
- Compared C-peptide levels based on CIH development and degree of respiratory/cardiovascular failure.
Main Results:
- CIH developed in 9/18 with respiratory failure only and 10/11 with both respiratory and cardiovascular failure.
- Children with CIH and both failures had low C-peptide (4.4 ng/mL) and high BG (10.8 mmol/L).
- Children with CIH and respiratory failure only had high C-peptide (11.5 ng/mL) and elevated BG (9.9 mmol/L). Low endogenous insulin production correlated with illness severity and longer PICU stay.
Conclusions:
- Primary beta-cell dysfunction is prevalent in critically ill children with CIH and combined respiratory/cardiovascular failure.
- Elevated insulin resistance appears to be the primary cause of CIH in children with respiratory failure only.
- Findings challenge adult study assertions, indicating beta-cell dysfunction in a subset of pediatric CIH cases.
Introduction:
Hyperglycaemia is common in critical illness and associated with poor outcome. Glycaemic control using insulin may decrease morbidity and mortality. Many questions remain about the cause of critical illness hyperglycaemia (CIH). Our objective was to investigate the endocrinological basis of paediatric CIH.
Methods:
C-peptide and blood glucose (BG) levels were assessed in 41 children aged 2 to 18 years old who were admitted to our paediatric intensive care unit (PICU). Patients who developed CIH, defined as persistent BG above 7.7 mmol/L, were treated with insulin infusion to achieve BG levels between 4.4 and 7.7 mmol/L. C-peptide levels were compared with respect to CIH development and degree of organ failure in all patients. Respiratory and cardiovascular failure were defined as need for mechanical ventilation and need for vasoactive infusions, respectively. Clinical and laboratory parameters, including c-peptide levels, were assessed.
Results:
Of 41 children enrolled, 18 had respiratory failure only, 11 had both respiratory and cardiovascular failure, and 12 had neither respiratory or cardiovascular failure. Nine patients with respiratory failure only, 10 with both respiratory and cardiovascular failure, and none with no respiratory or cardiovascular failure developed CIH. Patients with CIH and respiratory and cardiovascular failure (n = 10) had very low c-peptide levels (4.4 ng/mL) despite significantly elevated mean BG levels (10.8 mmol/L), while those with CIH and respiratory failure only had very high c-peptide levels (11.5 ng/mL) with mean BG of 9.9 mmol/L. Low endogenous insulin production in those with respiratory and cardiovascular failure was associated with rapid onset of CIH, illness severity, higher insulin requirement and longer mechanical ventilation days, PICU length of stay and CIH duration.
Conclusions:
Primary beta-cell dysfunction as defined by low endogenous c-peptide production appears to be prevalent in critically ill children with both respiratory and cardiovascular failure who develop CIH, whereas elevated insulin resistance appears to be the prominent cause of CIH in children with respiratory failure only. Our finding that beta-cell dysfunction is present in a subset of critically ill children with CIH challenges the assertion from adult studies that CIH is primarily the result of elevated insulin resistance.
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