nelarabine
Regulatory sources consulted
Approved indications
- T-cell acute lymphoblastic leukemia and T-cell lymphoblastic lymphoma that failed to respond or relapsed after at least two regimens.
Contraindications
Absolute
- Hypersensitivity to nelarabine or excipients.
Clinical warnings
- Neurotoxicity is dose-limiting and may be irreversible: somnolence, seizures, neuropathy, demyelination, or paralysis. Permanently discontinue for grade ≥2. — CIMA/AEMPS, ficha técnica 07403001
- Do not give concurrent intrathecal therapy or craniospinal irradiation. Monitor blood counts and tumor lysis syndrome. Give intravenous hydration to prevent hyperuricemia and tumor lysis syndrome. — CIMA/AEMPS, ficha técnica 07403001
Drug interactions
- HighLive vaccines
Mechanism: Immunosuppression may cause disseminated vaccine infection.
Recommendation: Live vaccines are not recommended during immunosuppression.
CIMA/AEMPS, ficha técnica 07403001
- HighPentostatin or other adenosine-deaminase inhibitors
Mechanism: They may reduce nelarabine efficacy and alter its toxicity profile.
Recommendation: Concomitant administration is not recommended.
CIMA/AEMPS, ficha técnica 07403001
Pregnancy and lactation
It may cause fetal harm; verify pregnancy status before treatment. Use during pregnancy only if clearly necessary. Women must use effective contraception during treatment; men must use condoms during treatment and for at least 3 months afterward. Do not breastfeed.
Recent literature (PubMed)
Acute lymphoblastic leukemia (ALL) is a disease of lymphoid progenitor cells arising in the bone marrow and extramedullary sites. While it is the most common pediatric cancer, ALL is a rare disease overall, with approximately 6500 new cases diagnosed in the United States, in 2024. Current treatment relies on multiagent chemotherapy administered over 2-3 years, resulting in long-term survival in 80%-90% in pediatric patients compared to 40%-50% in adult patients, depending upon patient- and disease-specific characteristics. Historically considered a poor risk ALL subtype, the treatment and outcome of Philadelphia chromosome (Ph)-positive B-cell ALL were drastically changed with the advent of the BCR::ABL1 tyrosine kinase inhibitors (TKIs). The combination of a TKI with a backbone of multiagent chemotherapy, or more recently blinatumomab, is the mainstay of therapy, resulting in 5-year survival rates of 80+%. Achieving a complete molecular remission, particularly by next generation sequencing, is an important prognostic indicator, which may identify patients who may avoid allogeneic stem cell transplantation (SCT). The treatment approach for patients with Ph-negative B-cell ALL was historically composed of a chemotherapy backbone (either pediatric-inspired, or Hyper-CVAD based). Novel agents including inotuzumab ozogamicin and blinatumomab are being incorporated into these regimens to improve the rates of measurable residual disease negativity and long-term outcomes. While differences in long-term survival rates differ between age groups, such as adolescents and young adults compared to older adults (≥ 60 years), with these immunotherapy-chemotherapy regimens, the 4-year survival rates have improved to 80%-85% among patients who are able to receive these treatments. Elderly patients represent a difficult population to treat due to poor chemotherapy tolerance, high-risk disease features, and increased risk of developing therapy-related myeloid neoplasms. The use of ino
T-cell acute lymphoblastic leukemia or lymphoblastic lymphoma (T-ALL/LBL) is a rare hematologic malignancy most commonly affecting adolescent and young adult males. Outcomes are dismal for patients who relapse, thus, improvement in treatment is needed. Nelarabine, a prodrug of the deoxyguanosine analog 9-β-arabinofuranosylguanine, is uniquely toxic to T lymphoblasts, compared with B lymphoblasts and normal lymphocytes, and has been developed for the treatment of T-ALL/LBL. Based on phase 1 and 2 trials in children and adults, single-agent nelarabine is approved for treatment of patients with relapsed or refractory T-ALL/LBL, with the major adverse effect being central and peripheral neurotoxicity. Since its approval in 2005, nelarabine has been studied in combination with other chemotherapy agents for relapsed disease and is also being studied as a component of initial treatment in pediatric and adult patients. Here, we review current data on nelarabine and present our approach to the use of nelarabine in the treatment of patients with T-ALL/LBL.
Immunotherapy is a milestone in the treatment of poor-prognosis pediatric acute lymphoblastic leukemia (ALL) and is expected to improve treatment outcomes and reduce doses of conventional chemotherapy without compromising the effectiveness of the therapy. However, both chemotherapy and immunotherapy cause side effects, including neurological ones. Acute neurological complications occur in 3.6-11% of children treated for ALL. The most neurotoxical chemotherapeutics are L-asparaginase (L-ASP), methotrexate (MTX), vincristine (VCR), and nelarabine (Ara-G). Neurotoxicity associated with methotrexate (MTX-NT) occurs in 3-7% of children treated for ALL and is characterized by seizures, stroke-like symptoms, speech disturbances, and encephalopathy. Recent studies indicate that specific polymorphisms in genes related to neurogenesis may have a predisposition to MTX toxicity. One of the most common complications associated with CAR T-cell therapy is immune effector cell-associated neurotoxicity syndrome (ICANS). Mechanisms of neurotoxicity in CAR T-cell therapy are still unknown and may be due to disruption of the blood-brain barrier and the effects of elevated cytokine levels on the central nervous system (CNS). In this review, we present an analysis of the current knowledge on the mechanisms of neurotoxicity of standard chemotherapy and the targeted therapy in children with ALL.
T-cell acute lymphoblastic leukaemia has distinct biological characteristics and a poorer prognosis than B-cell precursor acute lymphoblastic leukaemia. This trial aimed to reduce the rate of radiation and haematopoietic stem-cell transplantation (HSCT) while improving outcomes by adding nelarabine, intensified L-asparaginase, and protracted intrathecal therapy in the Berlin-Frankfurt-Münster (BFM)-type treatment. In this nationwide, multicenter, phase 2 trial, we enrolled patients with newly diagnosed T-cell acute lymphoblastic leukaemia (age <25 years at diagnosis) conducted by Japan Children's Cancer Group and Japan Adult Leukemia Study Group. Patients were stratified into standard-risk, high-risk, and very-high-risk groups according to prednisolone response, CNS status, and end-of-consolidation minimal residual disease. We used the Associazione Italiana di Ematologia Oncologia Pediatrica (AIEOP)-BFM-ALL 2000-backbone chemotherapy. Nelarabine (650 mg/m2 per day for 5 days) was given to high-risk and very high-risk patients. All patients received, until the measurement of end-of-consolidation minimal residual disease, an identical therapy schedule, which included the prednisolone pre-phase remission induction therapy with dexamethasone (10 mg/m2 per day, for 3 weeks [for patients <10 years] or for 2 weeks including a 7-day off interval [for patients ≥10 years]) instead of prednisolone, and consolidation therapy added with Escherichia coli-derived L-asparaginase. On the basis of the stratification, patients received different intensities of treatment; L-asparaginase-intensified standard BFM-type therapy for standard risk and nelarabine-added high risk BFM-type therapy for high risk. In the very high-risk group, patients were randomly assigned (1:1) to group A (BFM-based block therapy) and group B (another block therapy, including high-dose dexamethasone) stratified by hospital, age (≥18 years or <18 years), and end-of-induction bone marrow blast percentage of M1 (<
Optimal frontline use of active agents in T-cell acute lymphoblastic leukemia/lymphoma (T-ALL/LBL) is prudent to improve outcomes. We report the long-term follow-up of the phase 2 trial of HyperCVAD with nelarabine and pegylated asparaginase (Original cohort). In the latest protocol iteration venetoclax was added to the induction/consolidation regimen (Venetoclax cohort). Eligible patients were adults with untreated T-ALL/LBL or after minimal therapy and with adequate organ function. Primary endpoint of this analysis was improvement in 2-year progression free survival (PFS) and overall survival (OS) with venetoclax. From Aug 2007 to Dec 2024, 145 patients, at a median age of 35.4 years, were treated; 46 (33.8%) were in the venetoclax cohort. At median follow-up (mFU) of 62.4 months, 5-year PFS, duration of response (DOR), and OS were 63.7%, 72.0% and 66.2% respectively. In the venetoclax cohort (mFU 24.4 months) 2-year PFS (87.9% versus 64.1%, p = 0.03) and 2-year DOR (93.6% versus 69.2%, p = 0.005) were superior to the original cohort (mFU 89.4 months) and 2-year OS appeared better (87.8% versus 73.9%, p = 0.16). Febrile neutropenia was the most common serious adverse event, seen in 60% patients. The addition of venetoclax to HyperCVAD-nelarabine-pegylated asparaginase was tolerable and led to improvement in DOR and PFS.