brigatinib
Sources réglementaires consultées
Indications approuvées
- Adultes atteints de CBNPC métastatique ALK positif confirmé par test.
Contre-indications
Absolues
- CIMA : hypersensibilité à la substance active ou aux excipients ; l’étiquette FDA n’établit aucune contre-indication formelle.
Mises en garde cliniques
- La PID/pneumopathie peut survenir durant la première semaine. En cas de symptômes respiratoires, suspendre et explorer ; réduire ou arrêter selon gravité et récidive. — OpenFDA, set_id 0fe9ff20-d402-41f3-bc1e-7002ea7007db
- Contrôler la pression artérielle au départ, à 2 semaines puis mensuellement. Surveiller bradycardie, vision, CPK, amylase/lipase et glycémie. — OpenFDA, set_id 0fe9ff20-d402-41f3-bc1e-7002ea7007db
Interactions médicamenteuses
- SévèreModulateurs du CYP3A
Mécanisme: Ils modifient l’exposition au brigatinib.
Recommandation: Éviter les inhibiteurs puissants/modérés du CYP3A : si inévitables, réduire de 50 % avec un inhibiteur puissant (180→90 ; 90→60 mg) ou de 40 % avec un modéré (180→120 ; 120→90 ; 90→60 mg). Éviter les inducteurs puissants/modérés ; avec un inducteur modéré inévitable, augmenter de 30 mg après 7 jours tolérés à chaque palier jusqu’à 2 fois la dose antérieure, puis revenir à la dose antérieure après arrêt.
OpenFDA, set_id 0fe9ff20-d402-41f3-bc1e-7002ea7007db
Effets indésirables
Communs (≥1%)
diarrhée · fatigue · nausées · éruption cutanée · toux · myalgie · céphalées
Grossesse et allaitement
Les femmes doivent utiliser une contraception non hormonale pendant et 4 mois après ; les hommes pendant et 3 mois après. Ne pas allaiter pendant ni 1 semaine après. Peut altérer la fertilité masculine.
Bibliographie récente (PubMed)
In the phase 3 study entitled ALK in Lung cancer Trial of brigAtinib in 1st Line (ALTA-1L), which is a study of brigatinib in ALK inhibitor-naive advanced ALK-positive NSCLC, brigatinib exhibited superior progression-free survival (PFS) versus crizotinib in the two planned interim analyses. Here, we report the final efficacy, safety, and exploratory results. Patients were randomized to brigatinib 180 mg once daily (7-d lead-in at 90 mg once daily) or crizotinib 250 mg twice daily. The primary end point was a blinded independent review committee-assessed PFS. Genetic alterations in plasma cell-free DNA were assessed in relation to clinical efficacy. A total of 275 patients were enrolled (brigatinib, n = 137; crizotinib, n = 138). At study end, (brigatinib median follow-up = 40.4 mo), the 3-year PFS by blinded independent review committee was 43% (brigatinib) versus 19% (crizotinib; median = 24.0 versus 11.1 mo, hazard ratio [HR] = 0.48, 95% confidence interval [CI]: 0.35-0.66). The median overall survival was not reached in either group (HR = 0.81, 95% CI: 0.53-1.22). Posthoc analyses suggested an overall survival benefit for brigatinib in patients with baseline brain metastases (HR = 0.43, 95% CI: 0.21-0.89). Detectable baseline EML4-ALK fusion variant 3 and TP53 mutation in plasma were associated with poor PFS. Brigatinib exhibited superior efficacy compared with crizotinib regardless of EML4-ALK variant and TP53 mutation. Emerging secondary ALK mutations were rare in patients progressing on brigatinib. No new safety signals were observed. In the ALTA-1L final analysis, with longer follow-up, brigatinib continued to exhibit superior efficacy and tolerability versus crizotinib in patients with or without poor prognostic biomarkers. The suggested survival benefit with brigatinib in patients with brain metastases warrants future study.
Next-generation anaplastic lymphoma kinase (ALK) tyrosine kinase inhibitors (TKIs) (alectinib, brigatinib, and lorlatinib) demonstrate superior progression-free survival (PFS) over chemotherapy or crizotinib as first-line (1L) treatment of ALK-positive advanced non-smallcell lung cancer (NSCLC). We conducted network meta-analyses (NMAs) comparing the relative efficacy of lorlatinib with other ALK TKIs in this indication. Evidence identified from a systematic literature review and subsequent updates formed the basis of our evidence. The primary analysis investigated PFS by independent review committee (IRC) in the intent-to-treat (ITT) population. Secondary outcomes included PFS among subgroups, intracranial time to progression (IC TTP), adverse events, and discontinuation due to adverse events. For each of the outcomes, Bayesian proportional hazards NMAs estimated the relative treatment effects. Additionally, we compared the design and results of eight published NMAs conducted for 1L ALK + advanced NSCLC to date. We formed a network of 10 trials, allowing indirect treatment comparisons. Two trials directly compared alectinib (600 mg twice daily) to crizotinib and one trial directly compared lorlatinib to crizotinib. The results of the NMA show that the hazard ratios (95 % credible interval [CrI]) for ITT PFS IRC were 0.61 (95 % CrI: 0.39, 0.97) when comparing lorlatinib with alectinib (600 mg twice daily) and 0.57 (95 % CrI: 0.35, 0.93) when comparing lorlatinib with brigatinib. In the review of published NMAs, HRs for lorlatinib versus alectinib (600 mg twice daily) and brigatinib were compared. This comparison confirmed that each published NMA yielded similar results. Our NMA analysis adds to existing findings and supplements data gaps from other published NMAs. Findings from eight published NMAs consistently supported lorlatinib as a clinically effective 1L treatment for ALK + advanced NSCLC patients compared to other TKIs.
NF2-related schwannomatosis (NF2-SWN, formerly called neurofibromatosis type 2) is a tumor predisposition syndrome that is manifested by multiple vestibular schwannomas, nonvestibular schwannomas, meningiomas, and ependymomas. The condition is relentlessly progressive with no approved therapies. On the basis of preclinical activity of brigatinib (an inhibitor of multiple tyrosine kinases) in NF2-driven nonvestibular schwannoma and meningioma, data were needed on the use of brigatinib in patients with multiple types of progressive NF2-SWN tumors. In this phase 2 platform trial with a basket design, patients who were 12 years of age or older with NF2-SWN and progressive tumors were treated with oral brigatinib at a dose of 180 mg daily. A central review committee evaluated one target tumor and up to five nontarget tumors in each patient. The primary outcome was radiographic response in target tumors. Key secondary outcomes were safety, response rate in all tumors, hearing response, and patient-reported outcomes. A total of 40 patients (median age, 26 years) with progressive target tumors (10 vestibular schwannomas, 8 nonvestibular schwannomas, 20 meningiomas, and 2 ependymomas) received treatment with brigatinib. After a median follow-up of 10.4 months, the percentage of tumors with a radiographic response was 10% (95% confidence interval [CI], 3 to 24) for target tumors and 23% (95% CI, 16 to 30) for all tumors; meningiomas and nonvestibular schwannomas had the greatest benefit. Annualized growth rates decreased for all tumor types during treatment. Hearing improvement occurred in 35% (95% CI, 20 to 53) of eligible ears. Exploratory analyses suggested a decrease in self-reported pain severity during treatment (-0.013 units per month; 95% CI, -0.002 to -0.029) on a scale from 0 (no pain) to 3 (severe pain). No grade 4 or 5 treatment-related adverse events were reported. Brigatinib treatment resulted in radiographic responses in multiple tumor types and clinical benefi
To compare the efficacy, safety and effects on quality of life of different ALK-inhibitors for global and Asian patients with advanced ALK-positive non-small-cell lung cancer (NSCLC). The included RCTs were identified through a systematic search of PubMed, EMBASE, Cochrane Library, Clinical Trials.gov, and major cancer conferences. The assessment of progression-free survival (PFS), intracranial PFS, overall survival (OS), and patient-reported outcomes (PROs) was carried out using restricted mean survival time (RMST) model, fractional polynomial model and Royston-Parmar model. Time-invariant hazard ratio (HR) models were also used to validate and supplement the primary analysis. Objective response rate (ORR) and adverse events with any grade, grade 3-5 were assessed through a Bayesian network meta-analysis. The primary measures for OS, PFS, and PROs were HR and RMST. The odds ratio was the metric for evaluating safety, ORR, 12-month PFS rate, 24-month OS rate, and the 12-month non-deterioration rate of PROs. Subgroup analyses based on patient characteristics were performed. A total of fourteen studies (ten for first-line, four for second-line) consisting of nine treatments (chemotherapy, crizotinib, alectinib [600mg BID], low-dose alectinib [300mg BID], brigatinib, ceritinib, ensartinib, envonalkib, and lorlatinib) were included. In the first-line setting, alectinib showed a significant advantage over crizotinib and had the longest OS among all ALK-inhibitors. Compared to crizotinib, lorlatinib had the best efficacy regarding PFS for global patients, followed closely by alectinib and brigatinib. For Asian patients, alectinib significantly improved PFS compared to other treatments. In second-line, alectinib had the highest PFS for patients pretreated with crizotinib, followed by brigatinib, ceritinib and chemotherapy. Alectinib, irrespective of the dose, was the safest first-line option, whereas lorlatinib, brigatinib, and ceritinib showed poorer safety profiles. Alec
The comparative efficacy and safety of lorlatinib, a third-generation anaplastic lymphoma kinase (ALK) tyrosine kinase inhibitor (TKI), versus second-generation ALK TKIs as a first-line treatment for ALK+ advanced/metastatic nonsmall cell lung cancer (NSCLC) remains uncertain as there are no head-to-head clinical trials. Matching-adjusted indirect comparisons (MAICs) were conducted using phase III trial data demonstrating superior efficacy over crizotinib, a first-generation ALK TKI. MAICs were conducted to compare lorlatinib (CROWN) versus alectinib (ALEX and ALESIA) and brigatinib (ALTA-1L) with matching based on prespecified effect modifiers. Efficacy outcomes included progression-free survival (PFS), objective response (OR), and time to progression in the central nervous system (TTP-CNS). Safety outcomes included Grade ≥3 adverse events (AEs) and AEs leading to treatment discontinuation, dose reduction, or dose interruption. Lorlatinib was estimated to improve PFS compared to alectinib (ALEX) (HR: 0.54 [95% CI: 0.33, 0.88]) and brigatinib (ALTA-1L) (HR: 0.51 [95% CI: 0.31, 0.82]). Lorlatinib was estimated to improve TTP-CNS compared with brigatinib (HR: 0.19 [95% CI: 0.05, 0.71]). The estimated Grade ≥3 AE rate was higher with lorlatinib than with alectinib (RR: 1.48 [95% CI: 1.13, 1.94]); however, no differences were observed in other safety endpoints (ie, AEs leading to discontinuation, dose reduction, or interruption) or compared to brigatinib. Lorlatinib was estimated to have superior efficacy over first- and second-generation ALK-TKIs, but a higher rate of Grade ≥3 AEs compared to alectinib. These data support the use of lorlatinib as a first-line treatment for ALK+ advanced/metastatic NSCLC.