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PubMed · 15353575

Atazanavir.

Abstract

OBJECTIVE: To review the pharmacology, virology, pharmacokinetics, resistance profile, clinical efficacy, safety, and drug interactions of atazanavir. DATA SOURCES: A PubMed and NLMGateway search (1966-June 2004) utilizing the key words atazanavir and BMS-232632 was performed. Abstracts from scientific meetings, including the Conference on Retroviruses and Opportunistic Infections, International AIDS Society Conference on HIV Pathogenesis and Treatment, Interscience Conference on Antimicrobial Agents and Chemotherapy, and the Infectious Diseases Society of America, were also reviewed. STUDY SELECTION AND DATA EXTRACTION: All publications and meeting abstracts were reviewed, and information relevant to the formulary decision-making process was selected. DATA SYNTHESIS: Atazanavir is a once-daily protease inhibitor (PI) that received approval by the Food and Drug Administration in June 2003. In clinical trials in antiretroviral (ARV)-naïve patients, atazanavir had efficacy similar to that of efavirenz or nelfinavir. In ARV-experienced patients, atazanavir was inferior to lopinavir/ritonavir unless atazanavir was coadministered with low-dose ritonavir. Following failure of an atazanavir-containing regimen in ARV-naïve patients, a unique 150L mutation was seen. Atazanavir resistance is likely when resistance to >/=3 PIs is present. Atazanavir can cause increases in unconjugated bilirubin levels, which rarely leads to jaundice or scleral icterus. In contrast to comparators, atazanavir did not negatively impact the lipid profile. Similar to other PIs, atazanavir is metabolized by and inhibits CYP3A at clinically relevant concentrations; therefore, many potential drug interactions exist. CONCLUSIONS: Atazanavir is a once-daily PI that, unlike other PIs, does not negatively impact the lipid profile. Atazanavir may be particularly desirable in patients with hyperlipidemia or other coronary artery disease risk factors.

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BibTeXRIS

Joanne J Orrick, Corklin R Steinhart. 2004-09-07. Atazanavir.. https://doi.org/10.1345/aph.1d394

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Simultaneous determination of 8 HIV protease inhibitors in human plasma by isocratic high-performance liquid chromatography with combined use of UV and fluorescence detection: amprenavir, indinavir, atazanavir, ritonavir, lopinavir, saquinavir, nelfinavir and M8-nelfinavir metabolite.

A simple, accurate and fast method was developed for determination of the commonly used HIV protease inhibitors (PIs) amprenavir, indinavir, atazanavir, ritonavir, lopinavir, nelfinavir, M8-nelfinavir metabolite and saquinavir in human plasma. Liquid-liquid extraction was used with hexane/ethylacetate from buffered plasma samples with a borate buffer pH 9.0. Isocratic chromatographic separation of all components was performed on an Allsphere hexyl HPLC column with combined UV and fluorescence detection. Calibration curves were constructed in the range of 0.025-10 mg/l. Accuracy and precision of the standards were all below 15% and the lowest limit of quantitation was 0.025 mg/l. Stability of quality control samples at different temperature conditions was found to be below 20% of nominal values. The advantages of this method are: (1) inclusion and determination of the newly approved atazanavir, (2) simultaneous isocratic HPLC separation of all compounds and (3) increased specificity and sensitivity for amprenavir by using fluorescence detection. This method can be used for therapeutic drug monitoring of all PIs currently commercialised and is now part of current clinical practice.

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The introduction of human immunodeficiency virus type 1 (HIV-1) protease inhibitors (PIs) markedly improved the clinical outcome and control of HIV-1 infection. However, cross-resistance among PIs due to a wide spectrum of mutations in viral protease is a major factor limiting their broader clinical use. Here we report on the suppression of PI resistance using a covalent attachment of a phosphonic acid motif to a peptidomimetic inhibitor scaffold. The resulting phosphonate analogs maintain high binding affinity to HIV-1 protease, potent antiretroviral activity, and unlike the parent molecules, display no loss of potency against a panel of clinically important PI-resistant HIV-1 strains. As shown by crystallographic analysis, the phosphonate moiety is highly exposed to solvent with no discernable interactions with any of the enzyme active site or surface residues. We term this effect "solvent anchoring" and demonstrate that it is driven by a favorable change in the inhibitor binding entropy upon the interaction with mutant enzymes. This type of thermodynamic behavior, which was not found with the parent scaffold fully buried in the enzyme active site, is a result of the increased degeneracy of inhibitor binding states, allowing effective molecular adaptation to the expanded cavity volume of mutant proteases. This strategy, which is applicable to various PI scaffolds, should facilitate the design of novel PIs and potentially other antiviral therapeutics.

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