cidofovir
Sources réglementaires consultées
Indications approuvées
- Rétinite à cytomégalovirus chez l’adulte atteint de SIDA sans atteinte rénale lorsque les autres options ne conviennent pas.
Contre-indications
Absolues
- Insuffisance rénale ou marqueurs rénaux dépassant les seuils d’initiation ; hypersensibilité au cidofovir ; impossibilité de recevoir probénécide ou autres sulfamides ; administration intraoculaire directe.
- Utilisation concomitante avec d’autres médicaments potentiellement néphrotoxiques.
Mises en garde cliniques
- Il peut provoquer néphrotoxicité sévère, syndrome de Fanconi et insuffisance rénale ; hydratation et probénécide sont obligatoires sans supprimer le risque. — CIMA/AEMPS, ficha técnica 81303
- Il peut provoquer neutropénie, uvéite/iritis et hypotonie oculaire ; surveiller numération et examen ophtalmologique. — CIMA/AEMPS, ficha técnica 81303
Interactions médicamenteuses
- ModéréeMédicaments néphrotoxiques
Mécanisme: Ils augmentent le risque d’atteinte rénale sévère.
Recommandation: Arrêter les médicaments néphrotoxiques au moins 7 jours avant le cidofovir, selon la notice.
CIMA/AEMPS, ficha técnica 81303
- SévèreProbénécide
Mécanisme: Il réduit la captation tubulaire rénale du cidofovir et protège partiellement le rein, mais ajoute ses propres interactions.
Recommandation: Administrer le schéma obligatoire et vérifier ses contre-indications et interactions.
CIMA/AEMPS, ficha técnica 81303
- SévèreZidovudine pendant le schéma de probénécide
Mécanisme: Le probénécide réduit la clairance métabolique de la zidovudine et augmente son exposition.
Recommandation: Suspendre temporairement la zidovudine ou réduire sa dose de 50 % uniquement le jour de la perfusion de cidofovir.
FDA label, set_id 44966a7e-d777-40fb-956f-d0f31f737848
Effets indésirables
Communs (≥1%)
Protéinurie, nausées, vomissements, fièvre, asthénie et neutropénie
Rares mais graves
Insuffisance rénale, syndrome de Fanconi, neutropénie sévère, uvéite et hypotonie oculaire
Grossesse et allaitement
Le cidofovir est embryotoxique et potentiellement cancerogene. Eviter la grossesse : les femmes doivent utiliser une contraception efficace pendant le traitement et pendant 1 mois après ; les hommes doivent utiliser un preservatif pendant le traitement et pendant 3 mois après. Ne pas allaiter pendant le traitement.
Bibliographie récente (PubMed)
BK polyomavirus (BKPyV) remains a significant challenge after kidney transplantation. International experts reviewed current evidence and updated recommendations according to Grading of Recommendations, Assessment, Development, and Evaluations (GRADE). Risk factors for BKPyV-DNAemia and biopsy-proven BKPyV-nephropathy include recipient older age, male sex, donor BKPyV-viruria, BKPyV-seropositive donor/-seronegative recipient, tacrolimus, acute rejection, and higher steroid exposure. To facilitate early intervention with limited allograft damage, all kidney transplant recipients should be screened monthly for plasma BKPyV-DNAemia loads until month 9, then every 3 mo until 2 y posttransplant (3 y for children). In resource-limited settings, urine cytology screening at similar time points can exclude BKPyV-nephropathy, and testing for plasma BKPyV-DNAemia when decoy cells are detectable. For patients with BKPyV-DNAemia loads persisting >1000 copies/mL, or exceeding 10 000 copies/mL (or equivalent), or with biopsy-proven BKPyV-nephropathy, immunosuppression should be reduced according to predefined steps targeting antiproliferative drugs, calcineurin inhibitors, or both. In adults without graft dysfunction, kidney allograft biopsy is not required unless the immunological risk is high. For children with persisting BKPyV-DNAemia, allograft biopsy may be considered even without graft dysfunction. Allograft biopsies should be interpreted in the context of all clinical and laboratory findings, including plasma BKPyV-DNAemia. Immunohistochemistry is preferred for diagnosing biopsy-proven BKPyV-nephropathy. Routine screening using the proposed strategies is cost-effective, improves clinical outcomes and quality of life. Kidney retransplantation subsequent to BKPyV-nephropathy is feasible in otherwise eligible recipients if BKPyV-DNAemia is undetectable; routine graft nephrectomy is not recommended. Current studies do not support the usage of leflunomide, cidofovir, quinolones,
Therapies for refractory cytomegalovirus infections (with or without resistance [R/R]) in transplant recipients are limited by toxicities. Maribavir has multimodal anti-cytomegalovirus activity through the inhibition of UL97 protein kinase. In this phase 3, open-label study, hematopoietic-cell and solid-organ transplant recipients with R/R cytomegalovirus were randomized 2:1 to maribavir 400 mg twice daily or investigator-assigned therapy (IAT; valganciclovir/ganciclovir, foscarnet, or cidofovir) for 8 weeks, with 12 weeks of follow-up. The primary endpoint was confirmed cytomegalovirus clearance at end of week 8. The key secondary endpoint was achievement of cytomegalovirus clearance and symptom control at end of week 8, maintained through week 16. 352 patients were randomized (235 maribavir; 117 IAT). Significantly more patients in the maribavir versus IAT group achieved the primary endpoint (55.7% vs 23.9%; adjusted difference [95% confidence interval (CI)]: 32.8% [22.80-42.74]; P < .001) and key secondary endpoint (18.7% vs 10.3%; adjusted difference [95% CI]: 9.5% [2.02-16.88]; P = .01). Rates of treatment-emergent adverse events (TEAEs) were similar between groups (maribavir, 97.4%; IAT, 91.4%). Maribavir was associated with less acute kidney injury versus foscarnet (8.5% vs 21.3%) and neutropenia versus valganciclovir/ganciclovir (9.4% vs 33.9%). Fewer patients discontinued treatment due to TEAEs with maribavir (13.2%) than IAT (31.9%). One patient per group had fatal treatment-related TEAEs. Maribavir was superior to IAT for cytomegalovirus viremia clearance and viremia clearance plus symptom control maintained post-therapy in transplant recipients with R/R cytomegalovirus. Maribavir had fewer treatment discontinuations due to TEAEs than IAT. Clinical Trials Registration. NCT02931539 (SOLSTICE).
Mpox, is a zoonotic disease caused by the monkeypox virus and is primarily endemic to Africa. As countries gradually stop smallpox vaccination, resistance to the smallpox virus is declining, increasing the risk of infection with mpox and other viruses. On 14 August 2024, the World Health Organization announced that the spread of mpox constituted a public health emergency of international concern. Mpox's transmission routes and symptoms are complex and pose new challenges to global health. Several vaccines (such as ACAM2000, JYNNEOS, LC16m8, and genetically engineered vaccines) and antiviral drugs (such as tecovirimat, brincidofovir, cidofovir, and varicella immunoglobulin intravenous injection) have been developed and marketed to prevent and control this disease. This review aims to introduce the epidemic situation, epidemiological characteristics, physiological and pathological characteristics, and preventive measures for mpox in detail, to provide a scientific basis for the prevention and control of mpox viruses worldwide. No information is available on the use of cidofovir during breastfeeding. Until more safety data become available, an alternate drug is preferred. Individuals with smallpox are recommended to not breastfeed their infant because of the risk of passing variola virus to the infant through direct contact. Providing pumped milk to the infant may be possible if no lesions are near the breast and adequate precautions are taken with respect to cleaning hands, breasts, breast pumps and any other apparatuses used to provide milk to the infant. Individuals with Mpox should feed their infants with pasteurized donor milk or infant formula until all of their lesions are healed. Numerous other safety precautions are advised for mothers with Mpox.[1]
The present guidelines aim to provide comprehensive information on genital condyloma acuminata, including the epidemiology, clinical features, diagnosis and management. The guidelines provide evidence-based recommendations on the diagnosis, prevention and treatment of genital condyloma acuminata in adults in Asia, including patients with HIV co-infection. A PubMed search was performed, using the keywords "condyloma acuminata", "anal wart", "anogenital wart", "genital wart" and "genital HPV". A total of 3031 results were found in publications during last six years. A careful review of the titles and abstracts was done to find all the studies pertaining to epidemiology, clinical features, diagnosis, treatment and prevention of condyloma acuminata. Various diagnostic procedures described are: 1. PCR (LE: 2b). 2. Serology (LE: 2b). 3. In-situ hybridization (LE: 3). 1. Vaccination (LE: 1a): Quadrivalent vaccine reduced the frequency of anogenital warts in both vaccinated and unvaccinated contacts. According to the update Advisory Committee on Immunization Practices (ACIP) recommendations, the following protocol is recommended: (a). HPV vaccination at age 11 or 12 years for both males and females. (b). Catch-up vaccination for all persons through age 26 years. (c). Shared clinical decision-making regarding potential HPV vaccination for persons aged 27-45 years, who are at risk of new HPV infection. 2. Male circumcision (LE: 2a): conflicting evidence. In HIV-affected individuals, the course of HPV is more aggressive, with a greater risk of treatment resistance, increased chances of intraepithelial neoplasia as well as cancers. Physician administered. 1. Photodynamic therapy (LE: 1a). 2. Laser (LE: 2b). 3. Surgery (LE: 1a). 4. Electrosurgery (LE: 2c). 5. Cryotherapy (LE: 1b). 6. Immunotherapy (LE: 1b). 7. Podophyllin (LE: 1b). Provider administered. 1. Imiquimod 5%(LE: 1a). 2. Podophyllotoxin (LE: 1b). 3. Sinecatechins (LE: 1a). 4. Cidofovir (LE: 3). 5. 5- Fluorouracil (LE: