atazanavir and cobicistat
Sources réglementaires consultées
Indications approuvées
- Traitement combiné du VIH-1 chez l’adulte et l’adolescent d’au moins 12 ans et 35 kg sans résistance pertinente à l’atazanavir.
Contre-indications
Absolues
- Hypersensibilité cliniquement significative à l’atazanavir, au cobicistat ou aux excipients.
- Insuffisance hépatique modérée ou sévère.
- Utilisation de substrats CYP3A à marge étroite ou d’inducteurs puissants contre-indiqués.
Mises en garde cliniques
- Elle peut provoquer allongement PR, hyperbilirubinémie, lithiase biliaire et néphrolithiase. — CIMA/AEMPS, ficha técnica 1151025001
- Mise en garde majeure · Le cobicistat augmente la créatinine et peut aggraver la toxicité rénale avec certains antirétroviraux. — CIMA/AEMPS, ficha técnica 1151025001
- Peut provoquer des réactions cutanées graves, notamment SJS/TEN, ainsi qu’une néphrite interstitielle ou une maladie rénale chronique ; arrêter et évaluer en cas de signes évocateurs. — CIMA/AEMPS, ficha técnica 1151025001
Interactions médicamenteuses
- SévèreInhibiteurs de la pompe à protons, antagonistes H2 et antiacides
Mécanisme: La réduction de l’acidité diminue l’absorption de l’atazanavir.
Recommandation: Espacer les antiacides d’au moins 2 heures avant ou après. Administrer les antagonistes H2 simultanément avec EVOTAZ ou au moins 10 heures avant, dans les limites posologiques selon les antécédents thérapeutiques. Chez les personnes naïves de traitement, limiter l’oméprazole à 20 mg et administrer EVOTAZ au moins 12 heures après l’IPP ; éviter les IPP chez les personnes prétraitées.
CIMA/AEMPS, ficha técnica 1151025001
Effets indésirables
Communs (≥1%)
Ictère, nausées et diarrhée
Rares mais graves
Bloc cardiaque, néphrolithiase, lithiase biliaire et hépatotoxicité
Grossesse et allaitement
Elle n’est pas recommandée pendant la grossesse en raison d’une exposition plus faible ; utiliser un autre schéma. Ne pas allaiter pendant le traitement du VIH.
Bibliographie récente (PubMed)
HIV reverse transcriptase (RT) inhibitors are the important components of highly active antiretroviral therapies (HAARTs) for anti-HIV treatment and pre-exposure prophylaxis in clinical practice. Many RT inhibitors and their combination regimens have been approved in the past ten years, but a review on their drug discovery, pharmacology, and clinical efficacy is lacking. Here, we provide a comprehensive review of RT inhibitors (tenofovir alafenamide, rilpivirine, doravirine, dapivirine, azvudine and elsulfavirine) approved in the past decade, regarding their drug discovery, pharmacology, and clinical efficacy in randomized controlled trials. Novel RT inhibitors such as islatravir, MK-8504, MK-8507, MK8583, IQP-0528, and MIV-150 will be also highlighted. Future development may focus on the new generation of novel antiretroviral inhibitors with higher bioavailability, longer elimination half-life, more favorable side-effect profiles, fewer drug-drug interactions, and higher activities against circulating drug-resistant strains.
Viruses cause a variety of diseases in the human body. Antiviral agents are used to prevent the production of disease-causing viruses. These agents obstruct and kill the virus's translation and replication. Because viruses share the metabolic processes of the majority of host cells, finding targeted medicines for the virus is difficult. In the ongoing search for better antiviral agents, the USFDA approved EVOTAZ, a new drug discovered for the treatment of Human Immunodeficiency Virus (HIV). It is a once-daily (OD) fixed-dose combination of Cobicistat, a cytochrome P450 (CYP) enzyme inhibitor, and Atazanavir, a protease inhibitor. The combination drug was created in such a way that it can inhibit both CYP enzymes and proteases at the same time, resulting in the virus's death. The drug is not effective in children under the age of 18; however, it is still being studied for various parameters. This review article focuses on EVOTAZ's preclinical and clinical aspects, as well as its efficacy and safety profiles.
In addition to antiretroviral therapy (ART), people with HIV often take medications to treat comorbidities. It is therefore important to assess these medications for potential drug-drug interactions, which may affect the safety and efficacy of ART. Three phase I studies were conducted in adult participants without HIV. The pharmacokinetics (PK) and safety of bictegravir (administered alone or as bictegravir/emtricitabine/tenofovir alafenamide fumarate [TAF]) were assessed when co-administered with inducers (rifampin, rifabutin, and rifapentine) or inhibitors (atazanavir ± cobicistat, darunavir + cobicistat, and voriconazole) of cytochrome P450 3A4 (CYP3A4), uridine diphosphate glucuronosyltransferase 1A1 (UGT1A1), and/or P-glycoprotein (P-gp). PK parameters were compared using analysis of variance to calculate geometric least-square mean ratios and 90% confidence intervals. Overall, 172 participants were enrolled. CYP3A4 inhibition (voriconazole) moderately increased bictegravir exposure (61% increase in area under the concentration-time curve extrapolated to infinity [AUCinf]), whereas dual CYP3A4 and UGT1A1 inhibition (atazanavir) led to a 315% increase in AUCinf. P-gp inhibition had a minimal effect on bictegravir exposure. Induction of CYP3A4, UGT1A1, and/or P-gp by rifampin, rifabutin, and rifapentine led to decreases in bictegravir exposure and/or trough concentration (Ctrough). Bictegravir and bictegravir/emtricitabine/TAF were well tolerated alone and in combination with other drugs. Inhibition of CYP3A4 or UGT1A1 alone is unlikely to cause clinically meaningful changes in bictegravir exposure; only potent inhibitors of both pathways are expected to significantly affect bictegravir PK. Induction of CYP3A4 with/without UGT1A1 significantly influenced bictegravir PK, although Ctrough remained above the protein-adjusted 95% effective concentration. These findings should be considered when co-administering medications with bictegravir.
Anti-epileptic drugs (AEDs) are an important group of drugs of several generations, ranging from the oldest phenobarbital (1912) to the most recent cenobamate (2019). Cannabidiol (CBD) is increasingly used to treat epilepsy. The outbreak of the SARS-CoV-2 pandemic in 2019 created new challenges in the effective treatment of epilepsy in COVID-19 patients. The purpose of this review is to present data from the last few years on drug-drug interactions among of AEDs, as well as AEDs with other drugs, nutrients and food. Literature data was collected mainly in PubMed, as well as google base. The most important pharmacokinetic parameters of the chosen 29 AEDs, mechanism of action and clinical application, as well as their biotransformation, are presented. We pay a special attention to the new potential interactions of the applied first-generation AEDs (carbamazepine, oxcarbazepine, phenytoin, phenobarbital and primidone), on decreased concentration of some medications (atazanavir and remdesivir), or their compositions (darunavir/cobicistat and lopinavir/ritonavir) used in the treatment of COVID-19 patients. CBD interactions with AEDs are clearly defined. In addition, nutrients, as well as diet, cause changes in pharmacokinetics of some AEDs. The understanding of the pharmacokinetic interactions of the AEDs seems to be important in effective management of epilepsy.