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Quantification of the Immunosuppressant Tacrolimus on Dried Blood Spots Using LC-MS/MS
Published on: November 8, 2015
Sirolimus pharmacokinetics in early postmyeloablative pediatric blood and marrow transplantation
Rakesh K Goyal1, Kelong Han, Donna A Wall
1Division of Blood and Marrow Transplantation and Cellular Therapies, Children's Hospital of Pittsburgh of UPMC, Pittsburgh, PA, USA. goyark@chp.edu
Insights
Sirolimus pharmacokinetics in pediatric blood and marrow transplant (BMT) recipients show significant variability. Concomitant fluconazole increased sirolimus levels, while younger children and Caucasian patients had different exposures, supporting dose adjustments for optimal outcomes.
Area of Science:
- Pharmacology
- Hematology
- Immunology
Background:
- Sirolimus is crucial for graft-versus-host disease prophylaxis in pediatric blood and marrow transplantation (BMT).
- Understanding sirolimus pharmacokinetics is essential for optimizing therapeutic efficacy and minimizing toxicity in this vulnerable population.
Purpose of the Study:
- To investigate the pharmacokinetics of sirolimus in pediatric BMT recipients.
- To evaluate the impact of concomitant fluconazole therapy on sirolimus exposure.
- To identify factors influencing sirolimus disposition, including race, age, and acute graft-versus-host disease (aGVHD).
Main Methods:
- Pharmacokinetic profiles of sirolimus were determined in 40 pediatric BMT recipients.
- Whole-blood sirolimus concentrations were measured using HPLC/mass spectrometry.
- Noncompartmental and nonlinear mixed-effects modeling were employed to analyze pharmacokinetic parameters.
Main Results:
- Significant interindividual variability in sirolimus exposure was observed.
- Concomitant fluconazole therapy led to higher dose-normalized sirolimus trough concentrations (C0 and C24).
- Caucasian patients exhibited higher C24 and AUC0-24 compared to Hispanic patients. Younger children (≤12 years) had greater oral clearance and volume of distribution.
- Lower C24 levels were noted in patients with grade III-IV aGVHD.
Conclusions:
- Sirolimus pharmacokinetics in pediatric BMT recipients are influenced by fluconazole, race, age, and aGVHD severity.
- Therapeutic drug monitoring is vital, as 79% of trough levels could be maintained within the target range (3-12 ng/mL).
- These findings support individualized sirolimus dosing strategies based on steady-state concentrations to optimize patient outcomes.
Abstract:
This study examined the pharmacokinetics of sirolimus in pediatric allogeneic blood and marrow transplantation (BMT) recipients in the presence and absence of concomitant fluconazole. Forty pediatric BMT recipients received a daily oral dose of sirolimus and a continuous i.v. infusion of tacrolimus for graft-versus-host disease prophylaxis. Fluconazole was administered i.v. to 19 patients and orally to 6 patients. Full pharmacokinetic profiles of sirolimus within a single dosing interval were collected. Whole-blood sirolimus concentrations were measured by HPLC/mass spectrometry. Noncompartmental analysis was performed using WinNonlin. Nonlinear mixed-effects pharmacokinetic models were developed using NONMEM following standard procedures. The mean ± SD sirolimus trough level before the dose (C0) was 8.0 ± 4.6 ng/mL (range, 1.8-21.6 ng/mL). The peak concentration was 19.9 ± 11.8 ng/mL (range, 3.9-46.1 ng/mL), and the trough level 24 hours later (C24) was 9.1 ± 5.3 ng/mL (range, 1.0-19.1 ng/mL). The terminal disposition half-life (T1/2) was 24.5 ± 11.2 hours (range, 5.8-53.2 hours), and the area under the concentration-versus-time curve (AUC0-24) was 401.1 ± 316.3 ng·h/mL (range, 20.7-1332.3 ng·h/mL). In patients at steady state, C0 and C24 were closely correlated (R(2) = 0.77) with a slope of 0.99, indicating the achievement of steady state. C24 was 1.7-fold greater (P = .036) and AUC0-24 was 2-fold greater (P = .012) in Caucasian patients (n = 22) compared with Hispanic patients (n = 9). The average apparent oral clearance was 3-fold greater (P = .001) and the apparent oral volume of distribution was 2-fold greater (P = .018) in patients age ≤12 years compared with those age >12 years. C24 was significantly lower in patients (n = 10) who developed grade III-IV aGVHD (n = 10) than in those with grade 0-II aGVHD (n = 22) (6.1 ± 2.9 ng/mL versus 9.4 ± 5.5 ng/mL; P = .044). Dose-normalized sirolimus trough concentrations were significantly higher in patients receiving concomitant fluconazole therapy compared with those not receiving fluconazole (C0: 3.9 ± 2.5 versus 2.4 ± 1.5 ng/mL/mg, P = .030; C24: 4.8 ± 3.3 versus 2.5 ± 1.7 ng/mL/mg, P = .018). This pharmacokinetic study of sirolimus in pediatric patients documents a large interindividual variability in the exposure of sirolimus. Steady-state trough blood concentrations were correlated with drug exposure. Trough concentrations were higher with a concomitant use of fluconazole and were higher in Caucasian patients than in Hispanic patients. Oral clearance was greater in children age ≤12 years than in older children and adolescents. With therapeutic drug monitoring, the majority (79%) of sirolimus trough levels could be maintained within the target range (3-12 ng/mL). This study provides a rationale and support for dose adjustments of sirolimus based on steady-state blood concentrations aimed at achieving a target concentration to minimize toxicity and maximize therapeutic benefits in pediatric BMT recipients.
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