bendamustine
Sources réglementaires consultées
Indications approuvées
- Traitement de la leucémie lymphoïde chronique, de certains lymphomes non hodgkiniens indolents et du myélome multiple selon les schémas approuvés.
Contre-indications
Absolues
- Hypersensibilité ou allaitement ; ictère ou bilirubine >3 mg/dl ; leucocytes <3 000/µl ou plaquettes <75 000/µl.
- Chirurgie majeure dans les 30 jours précédents ; infection, surtout avec leucocytopénie ; vaccination contre la fièvre jaune.
Mises en garde cliniques
- Ne pas débuter si leucocytes <3 000/µl ou plaquettes <75 000/µl. Différer en cas de baisse et ne reprendre qu’au-delà de 4 000/µl et 100 000/µl, respectivement. Surveiller la numération entre les cycles. — CIMA/AEMPS, ficha técnica 84595
- Surveiller infections et réactivations, LEMP, syndrome de lyse tumorale, anaphylaxie et SCAR. — CIMA/AEMPS, ficha técnica 84595
Interactions médicamenteuses
- SévèreInhibiteurs du CYP1A2
Mécanisme: Fluvoxamine, ciprofloxacine, aciclovir et cimétidine peuvent augmenter exposition et toxicité.
Recommandation: Éviter si possible ou renforcer la surveillance.
CIMA/AEMPS, ficha técnica 84595
- SévèreCiclosporine ou tacrolimus
Mécanisme: L’immunosuppression additive augmente le risque infectieux et lymphoprolifératif.
Recommandation: Éviter ou surveiller étroitement selon le protocole.
CIMA/AEMPS, ficha técnica 84595
- SévèreVaccins vivants
Mécanisme: L’immunosuppression peut provoquer une infection vaccinale disséminée.
Recommandation: Ils ne sont pas recommandés pendant l’immunosuppression ; planifier la vaccination avec l’équipe soignante.
CIMA/AEMPS, ficha técnica 84595
Grossesse et allaitement
Ne pas utiliser la bendamustine pendant la grossesse sauf nécessité claire. Les femmes doivent utiliser une contraception efficace avant et pendant le traitement ; les hommes ne doivent pas procréer pendant le traitement ni pendant 6 mois après et doivent recevoir un conseil de conservation du sperme. L’allaitement est contre-indiqué.
Bibliographie récente (PubMed)
Whether fixed-duration acalabrutinib-venetoclax (with or without obinutuzumab) would result in better progression-free survival than chemoimmunotherapy in patients with untreated chronic lymphocytic leukemia (CLL) is unknown. In this phase 3, open-label trial, we included patients 18 years of age or older who had an Eastern Cooperative Oncology Group performance-status score of 0 to 2 (range, 0 to 5, with higher numbers indicating greater disability) and who did not have a 17p deletion or TP53 mutation. Patients were randomly assigned, in a 1:1:1 ratio, to receive acalabrutinib-venetoclax (acalabrutinib, cycles 1 to 14; venetoclax, cycles 3 to 14), acalabrutinib-venetoclax-obinutuzumab (as above, plus obinutuzumab, cycles 2 to 7), or chemoimmunotherapy with the investigator's choice of fludarabine-cyclophosphamide-rituximab or bendamustine-rituximab (cycles 1 to 6). The primary end point was progression-free survival (acalabrutinib-venetoclax vs. chemoimmunotherapy) in the intention-to-treat population, assessed by blinded independent central review. A total of 867 patients underwent randomization: 291 were assigned to receive acalabrutinib-venetoclax, 286 acalabrutinib-venetoclax-obinutuzumab, and 290 chemoimmunotherapy (of whom 143 received fludarabine-cyclophosphamide-rituximab and 147 bendamustine-rituximab). The median age of the patients was 61 years (range, 26 to 86), 64.5% were men, and 58.6% had unmutated IGHV. Estimated 36-month progression-free survival at a median follow-up of 40.8 months was 76.5% with acalabrutinib-venetoclax, 83.1% with acalabrutinib-venetoclax-obinutuzumab, and 66.5% with chemoimmunotherapy (hazard ratio for disease progression or death with acalabrutinib-venetoclax vs. chemoimmunotherapy, 0.65 [95% confidence interval {CI}, 0.49 to 0.87], P = 0.004; for the comparison of acalabrutinib-venetoclax-obinutuzumab with chemoimmunotherapy, P<0.001). Estimated 36-month overall survival was 94.1% with acalabrutinib-venetoclax, 87.7% with aca
The combination of the Bruton tyrosine kinase inhibitor ibrutinib with bendamustine-rituximab for first-line treatment of mantle cell lymphoma (MCL) prolonged progression-free survival (PFS), but without improvement in overall survival (OS), likely because of toxicity. Acalabrutinib was shown to be efficacious and less toxic than ibrutinib in a head-to-head trial in chronic lymphocytic leukemia and therefore might lead to better outcomes in MCL. Patients 65 years and older with previously untreated MCL received acalabrutinib (100 mg twice daily) or placebo (until disease progression or unacceptable toxicity), plus six cycles of bendamustine (90 mg/m2 once daily; days 1 and 2) and rituximab (375 mg/m2 as a single dose; day 1) followed by rituximab maintenance in responding patients for 2 years. Crossover to acalabrutinib at disease progression was permitted. The primary end point was PFS per the independent review committee; overall response rate and OS were secondary end points. In total, 598 patients were randomly assigned, with 299 in each arm. At a median follow-up of 49.8 months using the reverse Kaplan-Meier method, the median PFS was 66.4 months in the acalabrutinib arm and 49.6 months in the placebo arm (hazard ratio [HR], 0.73 [95% CI, 0.57 to 0.94]; P = .0160). Benefit was seen across all subgroups, including those with high-risk features. Overall response/complete response rates were 91.0%/66.6% and 88.0%/53.5% in the acalabrutinib and placebo arms, respectively. OS was not significantly different (HR, 0.86 [95% CI, 0.65 to 1.13]; P = .27). Grade 3 or greater adverse events were reported in 88.9% and 88.2% in the acalabrutinib and placebo arms, respectively. The combination of acalabrutinib with bendamustine-rituximab significantly improved PFS. Clinical benefit of acalabrutinib with bendamustine-rituximab was achieved with manageable toxicity.
Waldenström macroglobulinemia (WM) is a lymphoplasmacytic lymphoma with immunoglobulin M (IgM) monoclonal protein. Clinical features include anemia, thrombocytopenia, hepatosplenomegaly, lymphadenopathy, and rarely hyperviscosity. The presence of IgM monoclonal protein associated with ≥ 10% clonal lymphoplasmacytic cells in bone marrow confirms the diagnosis. The L265P mutation in MYD88 is detectable in more than 90% of patients and is found in most IgM MGUS patients. MYD88 is not required for the diagnosis. Age, albumin, hemoglobin level, platelet count, β2 microglobulin, Lactate dehydrogenase (LDH), and monoclonal IgM concentrations are characteristics that are predictive of outcomes. Not all patients who fulfill WM criteria require therapy; these patients can be observed until symptoms develop. Rituximab-monotherapy is inferior to combination regimens. Recommended first-line therapy can be chemoimmunotherapy or a covalent Bruton tyrosine kinase inhibitor. The preferred Mayo Clinic induction is either rituximab and bendamustine (without rituximab maintenance) or zanubrutinib. Bortezomib, cyclophosphamide, fludarabine, thalidomide, everolimus, pirtobrutinib, carfilzomib, lenalidomide, bendamustine, and venetoclax have all been shown to have activity in relapsed WM. Given WM's natural history, the reduction of therapy toxicity is an important part of treatment selection. Most patients succumb to causes unrelated to macroglobulinemia.
Pirtobrutinib, a noncovalent, Bruton tyrosine kinase inhibitor (BTKi), has shown clinical efficacy and a favorable safety profile. BRUIN CLL-321 was an open-label, randomized phase III study conducted exclusively in patients with R/R chronic lymphocytic leukemia (CLL)/small lymphocytic lymphoma (SLL) previously treated with cBTKi, and compared pirtobrutinib with investigator's choice (IC) of idelalisib/rituximab (IdelaR) or bendamustine/rituximab (BR). Patients were randomly assigned 1:1 to receive pirtobrutinib (200 mg once daily) or IC of IdelaR or BR, and were stratified by previous use of venetoclax and del(17p). The primary end point was independent review committee-assessed progression-free survival (PFS). Secondary end points included time to next treatment or death (TTNT), overall survival (OS), and safety. The primary PFS end point was met at the time of the primary analysis (August 29, 2023), and updated results are reported from the final OS analysis (August 29, 2024). A total of 238 patients were randomly assigned to receive pirtobrutinib (n = 119) or IC (n = 119; IdelaR [n = 82], BR [n = 37]). The PFS hazard ratio (HR) was 0.54 ([95% CI, 0.39 to 0.75]; P = .0002), with a median PFS of 14 months (95% CI, 11.2 to 16.6) in the pirtobrutinib group and 8.7 months (95% CI, 8.1 to 10.4) with IC. The unadjusted OS HR was 1.09 ([95% CI, 0.68 to 1.75]; P = .7202), and 18-month OS rate was 73.4% (95% CI, 63.9 to 80.7) in the pirtobrutinib group and 70.8% (95% CI, 60.9 to 78.7) with IC. Median TTNT was 24 months (95% CI, 17.8 to 29.7) with pirtobrutinib versus 10.9 months (95% CI, 8.7 to 12.5) with IC (HR, 0.37 [95% CI, 0.25 to 0.52]). At a median follow-up of 17.2 months, grade ≥3 treatment-emergent adverse events (AEs) were lower with pirtobrutinib (57.7%) than IC (73.4%). Treatment discontinuation due to AE occurred in 20 (17.2%) patients receiving pirtobrutinib and 38 (34.9%) patients receiving IC. Pirtobrutinib improved PFS and TTNT, and demonstrated favorable
Randomized trials of venetoclax plus anti-CD20 antibodies as first-line treatment in fit patients (i.e., those with a low burden of coexisting conditions) with advanced chronic lymphocytic leukemia (CLL) have been lacking. In a phase 3, open-label trial, we randomly assigned, in a 1:1:1:1 ratio, fit patients with CLL who did not have TP53 aberrations to receive six cycles of chemoimmunotherapy (fludarabine-cyclophosphamide-rituximab or bendamustine-rituximab) or 12 cycles of venetoclax-rituximab, venetoclax-obinutuzumab, or venetoclax-obinutuzumab-ibrutinib. Ibrutinib was discontinued after two consecutive measurements of undetectable minimal residual disease or could be extended. The primary end points were undetectable minimal residual disease (sensitivity, <10-4 [i.e., <1 CLL cell in 10,000 leukocytes]) as assessed by flow cytometry in peripheral blood at month 15 and progression-free survival. A total of 926 patients were assigned to one of the four treatment regimens (229 to chemoimmunotherapy, 237 to venetoclax-rituximab, 229 to venetoclax-obinutuzumab, and 231 to venetoclax-obinutuzumab-ibrutinib). At month 15, the percentage of patients with undetectable minimal residual disease was significantly higher in the venetoclax-obinutuzumab group (86.5%; 97.5% confidence interval [CI], 80.6 to 91.1) and the venetoclax-obinutuzumab-ibrutinib group (92.2%; 97.5% CI, 87.3 to 95.7) than in the chemoimmunotherapy group (52.0%; 97.5% CI, 44.4 to 59.5; P<0.001 for both comparisons), but it was not significantly higher in the venetoclax-rituximab group (57.0%; 97.5% CI, 49.5 to 64.2; P = 0.32). Three-year progression-free survival was 90.5% in the venetoclax-obinutuzumab-ibrutinib group and 75.5% in the chemoimmunotherapy group (hazard ratio for disease progression or death, 0.32; 97.5% CI, 0.19 to 0.54; P<0.001). Progression-free survival at 3 years was also higher with venetoclax-obinutuzumab (87.7%; hazard ratio for disease progression or death, 0.42; 97.5% CI, 0.26 to