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Targeting MCL1-driven anti-apoptotic pathways to overcome hypomethylating agent resistance in RAS -mutated chronic
Abstract:
RAS pathway mutations, which are present in 30% of patients with chronic myelomonocytic leukemia (CMML) at diagnosis, confer a high risk of resistance to and progression after hypomethylating agent (HMA) therapy, the current standard of care for the disease. Using single-cell, multi-omics technologies, we sought to dissect the biological mechanisms underlying the initiation and progression of RAS pathway-mutated CMML. We found that RAS pathway mutations induced the transcriptional reprogramming of hematopoietic stem and progenitor cells (HSPCs), which underwent proliferation and monocytic differentiation in response to cell-intrinsic and -extrinsic inflammatory signaling that also impaired immune cells' functions. HSPCs expanded at disease progression and relied on the NF- K B pathway effector MCL1 to maintain their survival, which explains why patients with RAS pathway- mutated CMML do not benefit from BCL2 inhibitors such as venetoclax. Our study has implications for developing therapies to improve the survival of patients with RAS pathway- mutated CMML.
Insights
RAS pathway mutations in chronic myelomonocytic leukemia (CMML) drive disease progression and resistance to standard therapies. Targeting the NF-κB pathway effector MCL1 may offer new therapeutic strategies for these high-risk patients.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Chronic myelomonocytic leukemia (CMML) affects 30% of patients at diagnosis with RAS pathway mutations.
- RAS pathway mutations confer resistance to hypomethylating agent (HMA) therapy, the current standard of care.
Approach:
- Utilized single-cell, multi-omics technologies to investigate the biological mechanisms of RAS pathway-mutated CMML.
- Analyzed transcriptional reprogramming in hematopoietic stem and progenitor cells (HSPCs).
Key Points:
- RAS mutations induce HSPC proliferation and monocytic differentiation via inflammatory signaling.
- HSPCs rely on NF-κB pathway effector MCL1 for survival during disease progression.
- This explains the lack of benefit from BCL2 inhibitors like venetoclax in RAS-mutated CMML.
Conclusions:
- Understanding RAS-mutated CMML's molecular drivers is crucial for therapeutic development.
- Targeting MCL1 presents a potential strategy to improve outcomes for high-risk CMML patients.
- Further research into inflammatory signaling and HSPC regulation can inform novel treatment approaches.
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