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Pediatric development of glucuronidation: the ontogeny of hepatic UGT1A4
Shogo J Miyagi1, Abby C Collier
1Department of Tropical Medicine, Medical Microbiology and Pharmacology, John A. Burns School of Medicine, University of Hawaii at Manoa, Honolulu, Hawaii, USA.
Insights
This study details the development of UDP-glucuronosyltransferase (UGT) enzyme activity in children. UGT1A4 activity matures slowly, reaching adult levels by late adolescence, impacting drug metabolism in pediatric populations.
Area of Science:
- Pharmacology
- Biochemistry
- Pediatric Medicine
Background:
- Drug metabolism in children is not well understood.
- UDP-glucuronosyltransferase (UGT) enzymes play a key role in drug detoxification.
- Understanding UGT development is crucial for pediatric drug therapy.
Purpose of the Study:
- To characterize the developmental trajectory of UGT enzyme activity in pediatric livers.
- To investigate the maturation of general glucuronidation and specific UGT1A4 activity.
- To determine the developmental profile of hepatic beta-glucuronidase.
Main Methods:
- Assessed UGT activity using 4-methylumbelliferone (4MU) and trifluoperazine (TFP) as substrates.
- Measured hepatic beta-glucuronidase activity.
- Utilized allometric scaling to model hepatic clearance of TFP by UGT1A4.
Main Results:
- UGT activity toward 4MU peaked by 20 months; beta-glucuronidase activity was highest neonatally, declining by 4 months.
- UGT1A4 Vmax was low in pediatric samples, but Km was comparable to adult values.
- Hepatic clearance of TFP by UGT1A4 reached maximal levels around 18.9 years of age.
Conclusions:
- UGT1A4 activity shows a prolonged developmental period in children, distinct from other UGT isoforms.
- This research provides the first description of a single UGT isoform's development in childhood.
- Findings are vital for predicting pediatric drug responses and optimizing medication development for children.
Abstract:
This article reports on the development of UDP-glucuronosyltransferase (UGT) enzyme activity in pediatric livers. The substrates 4-methylumbelliferone (4MU) and trifluoperazine (TFP) were used as probes for general glucuronidation and specific UGT1A4 activity, respectively. The activity of hepatic beta-glucuronidase enzymes was also determined so as to investigate the balance between glucuronide clearance and systemic recirculation. UGT activity toward 4MU reached maximum levels by 20 months of age, whereas the activity of beta-glucuronidase was highest in the neonatal liver and decreased to steady-state adult levels by 4 months. The average V(max) and K(m) values for UGT1A4 in pediatric samples were 151.9 +/- 63.5 pmol/min/mg protein and 14.4 +/- 9.6 muM, respectively. Average V(max) was understandably low because of developmental dynamics, but K(m) was similar to values reported elsewhere. When a constant rate of enzyme development is assumed, maximum activity of UGT1A4 occurs at 1.4 years of age. When the intrinsic hepatic clearance of TFP was scaled with an allometric model, hepatic clearance of TFP by UGT1A4 did not reach maximum levels until 18.9 years of age and scaled results underestimated reported in vivo clearances in adult males. No significant differences in UGT activities or hepatic clearance were observed with gender or ethnicity. The developmental dynamics of most drug-metabolizing enzymes are unknown, and this article contains, to our knowledge, the first description of the development of a single UGT isoform in childhood. Ultimately, work such as this is important for predicting drug responses and for developing and evaluating new medications in children.
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