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Cortisol-cortisone ratios in small for gestational age (SGA) children without postnatal catch-up growth
Christian Plank1, Udo Meissner, Manfred Rauh
1Department of Paediatrics, University of Erlangen-Nürnberg, Loschgestrasse 15, 91054 Erlangen, Germany.
Insights
Prenatal programming does not alter systemic cortisol-cortisone ratios in children born small for gestational age (SGA). Studies in SGA rats also showed no changes in corticosterone-dehydrocorticosterone ratios, suggesting no widespread disruption of this metabolic pathway.
Area of Science:
- Endocrinology
- Developmental Biology
- Metabolic Disorders
Background:
- Low birth weight is linked to adult metabolic and cardiovascular issues.
- 11beta-hydroxysteroid dehydrogenase type 2 (11beta-HSD2) enzyme activity and cortisol/cortisone balance are implicated in these effects.
- Investigating prenatal programming's impact on these ratios is crucial.
Purpose of the Study:
- To determine if prenatal programming alters systemic cortisol (F) to cortisone (E) ratios.
- To assess the 11beta-hydroxysteroid dehydrogenase (11beta-HSD) system in children born small for gestational age (SGA).
- To investigate species-specific effects using a rat model of SGA.
Main Methods:
- Cross-sectional, retrospective analysis of serum samples from 132 SGA children and 25 appropriate for gestational age (AGA) children.
- Measurement of serum cortisol (F) and cortisone (E) concentrations using tandem mass spectrometry.
- Assessment of the corticosterone (B)/dehydrocorticosterone (11OH-B) ratio in SGA rats born from protein-restricted dams.
Main Results:
- No significant differences in serum F, E, or F/E ratios were observed between SGA and AGA children.
- These ratios were independent of birth weight, length SDS, and gestational age.
- SGA rats did not exhibit altered B/11OH-B ratios compared to controls at various ages.
Conclusions:
- Systemic cortisol-cortisone conversion is not altered in short children born SGA or in SGA rats.
- The 11beta-HSD system's systemic function appears unaffected by SGA in this study.
- Local modifications in 11beta-HSD activity within specific tissues cannot be ruled out.
Objective:
Low birthweight is a risk factor for metabolic and cardiovascular disorders in later adult life. Changes in the activity of 11beta-hydroxysteroid dehydrogenase type 2 (11beta-HSD2) and the consequent disequilibrium between cortisol (F) and cortisone (E) are thought to be a key mechanism for these effects. We investigated whether prenatal programming leads to alterations in F/E ratios on a systemic level.
Design, Patients And Methods:
In a cross-sectional, retrospective study we analysed sera of 132 children born small for gestational age (SGA) (aged 2-13 years) with persistent short stature [< -2 standard deviation score (SDS)] and of 25 children born appropriate for gestational age (AGA) (aged 4-11 years) with normal body height. Thirty-one per cent of the SGA and 44% of the AGA children were born preterm. Serum E and F concentrations were measured using tandem mass spectrometry. To exclude species-specific effects, we studied the 11beta-HSD system by measuring the ratio of corticosterone (B) to dehydrocorticosterone (11OH-B) in rats that were born SGA after protein restriction of the female dams during pregnancy.
Results:
F, E and the F/E ratio in serum did not differ in these children when comparing SGA to children who were born AGA and had normal height. The concentrations were independent of weight and length SDS at birth as well as gestational age. In rats born SGA, the B/11OH-B ratio was not different to that in normal control animals at 6, 11 and 15 weeks of life.
Conclusion:
We found no alterations in systemic cortisol-cortisone conversion either in short children born SGA or in SGA rats. However, local modifications of the 11beta-HSD system may be possible.
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