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Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
Chemotherapy-Free Targeted Anti-BCR-ABL+ Acute Lymphoblastic Leukemia Therapy May Benefit the Heart
Hanna Kirchhoff1, Melanie Ricke-Hoch2, Katharina Wohlan1,3
1Department of Hematology, Hemostasis, Oncology and Stem Cell Transplantation, Hannover Medical School, 30625 Hannover, Germany.
Insights
Targeted therapies for acute lymphoblastic leukemia (ALL) can cause heart damage. A chemotherapy-free combination therapy, however, reversed cardiac defects and improved heart function in mice.
Area of Science:
- Oncology
- Cardiology
- Molecular Biology
Background:
- Targeted therapies are effective against hematological malignancies but can cause cardiotoxicity.
- Acute lymphoblastic leukemia (ALL) with t(9;22) (BCR-ABL+ ALL) is associated with significant cardiac damage.
- Current treatments often lead to high relapse rates and severe side effects.
Purpose of the Study:
- To investigate cardiac damage in BCR-ABL+ ALL xenotransplantation models.
- To determine if chemotherapy-free combination therapy can reverse chemotherapy-induced cardiotoxicity.
- To elucidate the mechanisms underlying therapy-induced cardiac recovery.
Main Methods:
- Murine xenotransplantation models of BCR-ABL+ ALL.
- Echocardiography to assess cardiac function and dimensions.
- Analysis of apoptosis, BCL2-interacting mediator of cell death (BIM), and B-cell lymphoma extra-large (BCLXL) expression.
Main Results:
- BCR-ABL+ ALL induced severe cardiac dysfunction, impaired left ventricular function, and cardiomyocyte apoptosis.
- Chemotherapy-free combination therapy (dasatinib, venetoclax, dexamethasone) fully reversed cardiac defects.
- Dexamethasone promoted ALL apoptosis while enhancing cardiomyocyte survival signaling (BCLXL).
Conclusions:
- Therapies optimizing apoptosis in ALL may prevent cardiotoxicity and promote cardiac recovery.
- Targeted therapies can be designed to circumvent organ-specific side effects.
- Further research into malignancy- and therapy-induced signaling pathways is warranted.
Abstract:
Targeted therapies are currently considered the best cost-benefit anti-cancer treatment. In hematological malignancies, however, relapse rates and non-hematopoietic side effects including cardiotoxicity remain high. Here, we describe significant heart damage due to advanced acute lymphoblastic leukemia (ALL) with t(9;22) encoding the bcr-abl oncogene (BCR-ABL+ ALL) in murine xenotransplantation models. Echocardiography reveals severe cardiac dysfunction with impaired left ventricular function and reduced heart and cardiomyocyte dimensions associated with increased apoptosis. This cardiac damage is fully reversible, but cardiac recovery depends on the therapy used to induce ALL remission. Chemotherapy-free combination therapy with dasatinib (DAS), venetoclax (VEN) (targeting the BCR-ABL oncoprotein and mitochondrial B-cell CLL/Lymphoma 2 (BCL2), respectively), and dexamethasone (DEX) can fully revert cardiac defects, whereas the depletion of otherwise identical ALL in a genetic model using herpes simplex virus type 1 thymidine kinase (HSV-TK) cannot. Mechanistically, dexamethasone induces a pro-apoptotic BCL2-interacting mediator of cell death (BIM) expression and apoptosis in ALL cells but enhances pro-survival B-cell lymphoma extra-large (BCLXL) expression in cardiomyocytes and clinical recovery with the reversion of cardiac atrophy. These data demonstrate that therapies designed to optimize apoptosis induction in ALL may circumvent cardiac on-target side effects and may even activate cardiac recovery. In the future, combining the careful clinical monitoring of cardiotoxicity in leukemic patients with the further characterization of organ-specific side effects and signaling pathways activated by malignancy and/or anti-tumor therapies seems reasonable.
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