DOT1L inhibitors block abnormal self-renewal induced by cohesin loss
Katelyn E Heimbruch1,2, Joseph B Fisher1,3, Cary T Stelloh1
1Blood Research Institute, Versiti, 8727 West Watertown Plank Road, Milwaukee, WI, 53226, USA.
Abstract:
Acute myeloid leukemia (AML) is a high-risk malignancy characterized by a diverse spectrum of somatic genetic alterations. The mechanisms by which these mutations contribute to leukemia development and how this informs the use of targeted therapies is critical to improving outcomes for patients. Importantly, how to target loss-of-function mutations has been a critical challenge in precision medicine. Heterozygous inactivating mutations in cohesin complex genes contribute to AML in adults by increasing the self-renewal capacity of hematopoietic stem and progenitor cells (HSPCs) by altering PRC2 targeting to induce HOXA9 expression, a key self-renewal transcription factor. Here we sought to delineate the epigenetic mechanism underpinning the enhanced self-renewal conferred by cohesin-haploinsufficiency. First, given the substantial difference in the mutational spectrum between pediatric and adult AML patients, we first sought to identify if HOXA9 was also elevated in children. Next, using primary HSPCs as a model we demonstrate that abnormal self-renewal due to cohesin loss is blocked by DOT1L inhibition. In cohesin-depleted cells, DOT1L inhibition is associated with H3K79me2 depletion and a concomitant increase in H3K27me3. Importantly, we find that there are cohesin-dependent gene expression changes that promote a leukemic profile, including HoxA overexpression, that are preferentially reversed by DOT1L inhibition. Our data further characterize how cohesin mutations contribute to AML development, identifying DOT1L as a potential therapeutic target for adult and pediatric AML patients harboring cohesin mutations.
Insights
Cohesin mutations in acute myeloid leukemia (AML) enhance cancer stem cell self-renewal. DOT1L inhibition reverses this effect, offering a potential targeted therapy for both adult and pediatric AML patients with cohesin mutations.
Area of Science:
- Hematology
- Cancer Biology
- Epigenetics
Background:
- Acute myeloid leukemia (AML) is a complex cancer driven by diverse genetic mutations.
- Targeting loss-of-function mutations, common in AML, remains a challenge in precision medicine.
- Cohesin gene mutations impairing function are found in adult AML, increasing cancer stem cell self-renewal.
Purpose of the Study:
- To investigate the epigenetic mechanisms behind enhanced self-renewal in cohesin-mutated AML.
- To determine if HOXA9 is elevated in pediatric AML, similar to adults.
- To identify potential therapeutic targets for cohesin-mutated AML.
Main Methods:
- Analysis of HOXA9 expression in pediatric AML.
- Using primary hematopoietic stem and progenitor cells (HSPCs) to model cohesin loss.
- Assessing the effect of DOT1L inhibition on epigenetic marks and gene expression in cohesin-depleted HSPCs.
Main Results:
- Cohesin loss in HSPCs leads to increased self-renewal and HOXA9 expression.
- DOT1L inhibition effectively blocks abnormal self-renewal in cohesin-mutated cells.
- DOT1L inhibition reverses cohesin-dependent gene expression changes promoting a leukemic profile, including HoxA overexpression.
Conclusions:
- Cohesin mutations contribute to AML pathogenesis by altering epigenetic regulation and promoting HSPC self-renewal.
- DOT1L inhibition demonstrates efficacy in reversing these leukemogenic changes.
- DOT1L is identified as a promising therapeutic target for AML patients with cohesin mutations.
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