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Updated: Apr 26, 2026

Murine Model of Leukemia Relapse to Induction Chemotherapy for Acute Lymphoblastic Leukemia
Published on: October 17, 2025
Multi-agent chemotherapy overcomes glucocorticoid resistance conferred by a BIM deletion polymorphism in pediatric
Sheila Xinxuan Soh1, Joshua Yew Suang Lim2, John W J Huang1
1Cancer and Stem Cell Biology Program, Duke-NUS Graduate Medical School, Singapore, Singapore.
Abstract:
A broad range of anti-cancer agents, including glucocorticoids (GCs) and tyrosine kinase inhibitors (TKIs), kill cells by upregulating the pro-apoptotic BCL2 family member, BIM. A common germline deletion in the BIM gene was recently shown to favor the production of non-apoptotic BIM isoforms, and to predict inferior responses in TKI-treated chronic myeloid leukemia (CML) and EGFR-driven lung cancer patients. Given that both in vitro and in vivo GC resistance are predictive of adverse outcomes in acute lymphoblastic leukemia (ALL), we hypothesized that this polymorphism would mediate GC resistance, and serve as a biomarker of poor response in ALL. Accordingly, we used zinc finger nucleases to generate ALL cell lines with the BIM deletion, and confirmed the ability of the deletion to mediate GC resistance in vitro. In contrast to CML and lung cancer, the BIM deletion did not predict for poorer clinical outcome in a retrospective analysis of 411 pediatric ALL patients who were uniformly treated with GCs and chemotherapy. Underlying the lack of prognostic significance, we found that the chemotherapy agents used in our cohort (vincristine, L-asparaginase, and methotrexate) were each able to induce ALL cell death in a BIM-independent fashion, and resensitize BIM deletion-containing cells to GCs. Together, our work demonstrates how effective therapy can overcome intrinsic resistance in ALL patients, and suggests the potential of using combinations of drugs that work via divergent mechanisms of cell killing to surmount BIM deletion-mediated drug resistance in other cancers.
Insights
A common BIM gene deletion confers resistance to certain cancer drugs. However, in acute lymphoblastic leukemia (ALL), standard chemotherapy overcomes this resistance, indicating combination therapy potential.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Anti-cancer agents like glucocorticoids (GCs) and tyrosine kinase inhibitors (TKIs) induce cancer cell death by upregulating BIM.
- A BIM gene deletion promotes non-apoptotic BIM isoforms, predicting poor response to TKIs in chronic myeloid leukemia (CML) and lung cancer.
- GC resistance in acute lymphoblastic leukemia (ALL) correlates with adverse outcomes.
Purpose of the Study:
- To investigate if the BIM deletion mediates GC resistance and serves as a biomarker for poor ALL response.
- To determine the prognostic significance of the BIM deletion in pediatric ALL patients treated with GCs and chemotherapy.
Main Methods:
- Generated ALL cell lines with the BIM deletion using zinc finger nucleases.
- Confirmed BIM deletion-mediated GC resistance in vitro.
- Conducted a retrospective analysis of 411 pediatric ALL patients.
Main Results:
- The BIM deletion mediated GC resistance in vitro.
- In contrast to CML and lung cancer, the BIM deletion did not predict poorer clinical outcomes in pediatric ALL patients.
- Chemotherapy agents (vincristine, L-asparaginase, methotrexate) induced BIM-independent ALL cell death and resensitized BIM deletion cells to GCs.
Conclusions:
- Effective chemotherapy can overcome intrinsic BIM deletion-mediated drug resistance in ALL.
- Combination therapies targeting divergent cell-killing mechanisms may overcome BIM deletion resistance in other cancers.
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