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Inhibiting AGTR1 reduces AML burden and protects the heart from cardiotoxicity in mouse models
Yi Pan1,2, Chen Wang1,2, WenXuan Zhou1,2
1Center for Precision Medicine, Department of Medicine, University of Missouri School of Medicine, Columbia, MO 65212, USA.
Insights
Targeting angiotensin II receptor type 1 (AGTR1) sensitizes acute myeloid leukemia (AML) to chemotherapy and protects the heart from cardiotoxicity. This AGTR1-Notch1 axis pathway impacts AML stemness and treatment resistance.
Area of Science:
- Oncology
- Cardiology
- Molecular Biology
Background:
- Acute myeloid leukemia (AML) treatment relies on chemotherapy, but cardiotoxicity is a major limitation.
- Angiotensin II receptor type 1 (AGTR1) is implicated in both AML and cardiovascular disease (CVD).
Purpose of the Study:
- To investigate the role of the AGTR1-Notch1 axis in AML and chemotherapy-induced cardiotoxicity.
- To explore AGTR1 inhibition as a therapeutic strategy for AML and cardiotoxicity.
Main Methods:
- Utilized a human AML cell-transplanted mouse model and an MLL-AF9-driven AML mouse model.
- Investigated AGTR1 and Notch1 signaling in AML cells and cardiomyocytes.
- Employed multiomics to identify downstream signaling pathways and gene regulation.
Main Results:
- Inhibition of AGTR1 sensitized AML cells to chemotherapy and protected cardiomyocytes from toxicity.
- The AGTR1-Notch1 axis regulates AML cell stemness and chemotherapy resistance.
- AGTR1 activation by AML and chemotherapy leads to altered Notch1 processing and downstream gene expression.
Conclusions:
- The AGTR1-Notch1 axis represents a shared mechanism in AML and cardiotoxicity.
- Targeting AGTR1 offers a potential dual therapeutic approach for improving AML treatment outcomes and mitigating cardiac side effects.
Abstract:
Clinical treatment of acute myeloid leukemia (AML) largely relies on intensive chemotherapy. However, the application of chemotherapy is often hindered by cardiotoxicity. Patient sequence data revealed that angiotensin II receptor type 1 (AGTR1) is a shared target between AML and cardiovascular disease (CVD). We found that inhibiting AGTR1 sensitized AML to chemotherapy and protected the heart against chemotherapy-induced cardiotoxicity in a human AML cell-transplanted mouse model. These effects were regulated by the AGTR1-Notch1 axis in AML cells and cardiomyocytes from mice. In mouse cardiomyocytes, AGTR1 was hyperactivated by AML and chemotherapy. AML leukemogenesis increased the expression of the angiotensin-converting enzyme and led to increased production of angiotensin II, the ligand of AGTR1, in an MLL-AF9-driven AML mouse model. In this model, the AGTR1-Notch1 axis regulated a variety of genes involved with cell stemness and chemotherapy resistance. AML cell stemness was reduced after Agtr1a deletion in the mouse AML cell transplant model. Mechanistically, Agtr1a deletion decreased γ-secretase formation, which is required for transmembrane Notch1 cleavage and release of the Notch1 intracellular domain into the nucleus. Using multiomics, we identified AGTR1-Notch1 signaling downstream genes and found decreased binding between these gene sequences with Notch1 and chromatin enhancers, as well as increased binding with silencers. These findings describe an AML/CVD association that may be used to improve AML treatment.

