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Published on: June 17, 2022
Sequential drug treatment targeting cell cycle and cell fate regulatory programs blocks non-genetic cancer evolution
Alena Malyukova1, Mari Lahnalampi2, Ton Falqués-Costa3
1Department of Cell and Molecular Biology, Karolinska Institutet, Biomedicum, Solnavägen 9, 171 77, Stockholm, Sweden. aljona.maljukova@ki.se.
Background:
Targeted therapies exploiting vulnerabilities of cancer cells hold promise for improving patient outcome and reducing side-effects of chemotherapy. However, efficacy of precision therapies is limited in part because of tumor cell heterogeneity. A better mechanistic understanding of how drug effect is linked to cancer cell state diversity is crucial for identifying effective combination therapies that can prevent disease recurrence.
Results:
Here, we characterize the effect of G2/M checkpoint inhibition in acute lymphoblastic leukemia (ALL) and demonstrate that WEE1 targeted therapy impinges on cell fate decision regulatory circuits. We find the highest inhibition of recovery of proliferation in ALL cells with KMT2A-rearrangements. Single-cell RNA-seq and ATAC-seq of RS4;11 cells harboring KMT2A::AFF1, treated with the WEE1 inhibitor AZD1775, reveal diversification of cell states, with a fraction of cells exhibiting strong activation of p53-driven processes linked to apoptosis and senescence, and disruption of a core KMT2A-RUNX1-MYC regulatory network. In this cell state diversification induced by WEE1 inhibition, a subpopulation transitions to a drug tolerant cell state characterized by activation of transcription factors regulating pre-B cell fate, lipid metabolism, and pre-BCR signaling in a reversible manner. Sequential treatment with BCR-signaling inhibitors dasatinib, ibrutinib, or perturbing metabolism by fatostatin or AZD2014 effectively counteracts drug tolerance by inducing cell death and repressing stemness markers.
Conclusions:
Collectively, our findings provide new insights into the tight connectivity of gene regulatory programs associated with cell cycle and cell fate regulation, and a rationale for sequential administration of WEE1 inhibitors with low toxicity inhibitors of pre-BCR signaling or metabolism.
Insights
Targeting WEE1 in acute lymphoblastic leukemia (ALL) disrupts cancer cell states, revealing drug tolerance mechanisms. Sequential therapy combining WEE1 inhibitors with BCR signaling or metabolism inhibitors overcomes this tolerance, offering new treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Cell Biology
Background:
- Targeted therapies offer improved outcomes but face limitations due to tumor heterogeneity.
- Understanding drug effects across diverse cancer cell states is key for effective combination therapies and preventing recurrence.
Purpose of the Study:
- To investigate the impact of WEE1 inhibition on cell fate regulation in acute lymphoblastic leukemia (ALL).
- To identify mechanisms of drug tolerance induced by WEE1 inhibition and explore strategies to overcome it.
Main Methods:
- Utilized single-cell RNA-seq and ATAC-seq to analyze cell state diversification in ALL cells treated with WEE1 inhibitor AZD1775.
- Investigated the role of KMT2A-RUNX1-MYC regulatory network and p53-driven processes.
- Evaluated sequential treatment strategies using BCR-signaling inhibitors (dasatinib, ibrutinib) or metabolic inhibitors (fatostatin, AZD2014).
Main Results:
- WEE1 inhibition in ALL cells, particularly those with KMT2A-rearrangements, induced cell state diversification.
- A fraction of cells developed drug tolerance via activation of pre-B cell fate, lipid metabolism, and pre-BCR signaling.
- Sequential treatment with BCR inhibitors or metabolic modulators effectively counteracted drug tolerance, inducing cell death and reducing stemness markers.
Conclusions:
- WEE1 inhibition impacts gene regulatory programs controlling cell cycle and cell fate in ALL.
- Sequential administration of WEE1 inhibitors with low-toxicity BCR signaling or metabolism inhibitors is a promising therapeutic strategy.
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