Literature DB >> 16940065

Population pharmacokinetics of atazanavir in patients with human immunodeficiency virus infection.

Sara Colombo1, Thierry Buclin, Matthias Cavassini, Laurent A Décosterd, Amalio Telenti, Jérôme Biollaz, Chantal Csajka.   

Abstract

Atazanavir (ATV) is a new azapeptide protease inhibitor recently approved and currently used at a fixed dose of either 300 mg once per day (q.d.) in combination with 100 mg ritonavir (RTV) or 400 mg q.d. without boosting. ATV is highly bound to plasma proteins and extensively metabolized by CYP3A4. Since ATV plasma levels are highly variable and seem to be correlated with both viral response and toxicity, dosage individualization based on plasma concentration monitoring might be indicated. This study aimed to assess the ATV pharmacokinetic profile in a target population of HIV patients, to characterize interpatient and intrapatient variability, and to identify covariates that might influence ATV disposition. A population analysis was performed with NONMEM with 574 plasma samples from a cohort of 214 randomly selected patients receiving ATV. A total of 346 randomly collected ATV plasma levels and 19 full concentration-time profiles at steady state were available. The pharmacokinetic parameter estimates were an oral clearance (CL) of 12.9 liters/h (coefficient of variation [CV], 26%), a volume of distribution of 88.3 liters (CV, 29%), an absorption rate constant of 0.405 h(-1) (CV, 122%), and a lag time of 0.88 h. A relative bioavailability value was introduced to account for undercompliance due to infrequent follow-ups (0.81; CV, 45%). Among the covariates tested, only RTV significantly reduced CL by 46%, thereby increasing the ATV elimination half-life from 4.6 h to 8.8 h. The pharmacokinetic parameters of ATV were adequately described by a one-compartment population model. The concomitant use of RTV improved the pharmacokinetic profile. However, the remaining high interpatient variability suggests the possibility of an impact of unmeasured covariates, such as genetic traits or environmental influences. This population pharmacokinetic model, together with therapeutic drug monitoring and Bayesian dosage adaptation, can be helpful in the selection and adaptation of ATV doses.

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Year:  2006        PMID: 16940065      PMCID: PMC1635184          DOI: 10.1128/AAC.00098-06

Source DB:  PubMed          Journal:  Antimicrob Agents Chemother        ISSN: 0066-4804            Impact factor:   5.191


  19 in total

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Journal:  J Pharmacokinet Biopharm       Date:  1981-08

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Journal:  Antimicrob Agents Chemother       Date:  2003-04       Impact factor: 5.191

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Authors:  David R Goldsmith; Caroline M Perry
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2.  Model-based approach for optimization of atazanavir dose recommendations for HIV-infected pediatric patients.

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4.  Effect of adherence as measured by MEMS, ritonavir boosting, and CYP3A5 genotype on atazanavir pharmacokinetics in treatment-naive HIV-infected patients.

Authors:  R M Savic; A Barrail-Tran; X Duval; G Nembot; X Panhard; D Descamps; C Verstuyft; B Vrijens; A-M Taburet; C Goujard; F Mentré
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5.  Genomewide association study of atazanavir pharmacokinetics and hyperbilirubinemia in AIDS Clinical Trials Group protocol A5202.

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Review 6.  Targeted therapies to treat non-AIDS-defining cancers in patients with HIV on HAART therapy: treatment considerations and research outlook.

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9.  Population pharmacokinetic modelling of the changes in atazanavir plasma clearance caused by ritonavir plasma concentrations in HIV-1 infected patients.

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Authors:  Pablo Rivas; Judit Morello; Carolina Garrido; Sonia Rodríguez-Nóvoa; Vincent Soriano
Journal:  Ther Clin Risk Manag       Date:  2009-03-26       Impact factor: 2.423

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