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CYP2C19 Phenotype and Risk of Proton Pump Inhibitor-Associated Infections
Christiana J Bernal1, Ida Aka1, Robert J Carroll2
1Departments of Pediatrics.
Insights
Children with normal CYP2C19 function taking proton pump inhibitors (PPIs) had higher infection rates. Increased CYP2C19 function may reduce PPI-associated infections in pediatric patients.
Area of Science:
- Pharmacogenomics
- Pediatric Gastroenterology
- Infectious Diseases
Background:
- Proton pump inhibitors (PPIs) are widely used in children for gastrointestinal issues.
- Concerns exist regarding increased infection risk associated with PPI use in pediatric populations.
- CYP2C19 enzyme activity influences PPI metabolism; genetic variants affecting its function are of interest.
Purpose of the Study:
- To investigate the association between CYP2C19 metabolizer phenotypes and infection rates in children exposed to PPIs.
- To determine if genetic variations in CYP2C19 impact the risk of infections in pediatric PPI users.
Main Methods:
- Retrospective cohort study of 670 children (0-36 months) exposed to PPIs.
- Infection events (respiratory, gastrointestinal) identified via ICD codes within one year of PPI exposure.
- CYP2C19 genetic variants (*2, *3, *4, *8, *9, *17) genotyped to classify metabolizer phenotypes (poor, intermediate, normal, rapid, ultrarapid).
Main Results:
- Children with normal CYP2C19 metabolizer function (NMs) had a higher infection rate compared to rapid/ultrarapid metabolizers (RM/UMs) (2 vs 1 infection/person/year, P=.03).
- No significant difference in infection rates was observed between poor/intermediate metabolizers and NMs.
- In multivariable analysis, CYP2C19 metabolizer status remained a significant factor for infection risk (OR 0.70 for RM/UMs vs NMs).
Conclusions:
- PPI therapy is linked to elevated infection rates in pediatric patients with normal CYP2C19 function.
- Individuals with increased CYP2C19 function (RM/UMs) experienced fewer PPI-associated infections.
- CYP2C19 genotype may be relevant for guiding PPI therapeutic decisions in children.
Objectives:
Proton pump inhibitors (PPIs) are often used in pediatrics to treat common gastrointestinal disorders, and there are growing concerns for infectious adverse events. Because CYP2C19 inactivates PPIs, genetic variants that increase CYP2C19 function may decrease PPI exposure and infections. We tested the hypothesis that CYP2C19 metabolizer phenotypes are associated with infection event rates in children exposed to PPIs.
Methods:
This retrospective biorepository cohort study included individuals aged 0 to 36 months at the time of PPI exposure. Respiratory tract and gastrointestinal tract infection events were identified by using International Classification of Diseases codes in the year after the first PPI mention. Variants defining CYP2C19 *2, *3, *4, *8, *9, and *17 were genotyped, and all individuals were classified as CYP2C19 poor or intermediate, normal metabolizers (NMs), or rapid or ultrarapid metabolizers (RM/UMs). Infection rates were compared by using univariate and multivariate analyses.
Results:
In all, 670 individuals were included (median age 7 months; 44% girls). CYP2C19 NMs (n = 267; 40%) had a higher infection rate than RM/UMs (n = 220; 33%; median 2 vs 1 infections per person per year; P = .03). There was no difference between poor or intermediate (n = 183; 27%) and NMs. In multivariable analysis of NMs and RM/UMs adjusting for age, sex, PPI dose, and comorbidities, CYP2C19 metabolizer status remained a significant risk factor for infection events (odds ratio 0.70 [95% confidence interval 0.50-0.97] for RM/UMs versus NMs).
Conclusions:
PPI therapy is associated with higher infection rates in children with normal CYP2C19 function than in those with increased CYP2C19 function, highlighting this adverse effect of PPI therapy and the relevance of CYP2C19 genotypes to PPI therapeutic decision-making.
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