Subversion of Serotonin Receptor Signaling in Osteoblasts by Kynurenine Drives Acute Myeloid Leukemia
Marta Galán-Díez1, Florence Borot2, Abdullah Mahmood Ali2,3
1Department of Physiology and Cellular Biophysics, Columbia University, New York, New York.
Abstract:
Remodeling of the microenvironment by tumor cells can activate pathways that favor cancer growth. Molecular delineation and targeting of such malignant-cell nonautonomous pathways may help overcome resistance to targeted therapies. Herein we leverage genetic mouse models, patient-derived xenografts, and patient samples to show that acute myeloid leukemia (AML) exploits peripheral serotonin signaling to remodel the endosteal niche to its advantage. AML progression requires the presence of serotonin receptor 1B (HTR1B) in osteoblasts and is driven by AML-secreted kynurenine, which acts as an oncometabolite and HTR1B ligand. AML cells utilize kynurenine to induce a proinflammatory state in osteoblasts that, through the acute-phase protein serum amyloid A (SAA), acts in a positive feedback loop on leukemia cells by increasing expression of IDO1-the rate-limiting enzyme for kynurenine synthesis-thereby enabling AML progression. This leukemia-osteoblast cross-talk, conferred by the kynurenine-HTR1B-SAA-IDO1 axis, could be exploited as a niche-focused therapeutic approach against AML, opening new avenues for cancer treatment.
Significance:
AML remains recalcitrant to treatments due to the emergence of resistant clones. We show a leukemia-cell nonautonomous progression mechanism that involves activation of a kynurenine-HTR1B-SAA-IDO1 axis between AML cells and osteoblasts. Targeting the niche by interrupting this axis can be pharmacologically harnessed to hamper AML progression and overcome therapy resistance. This article is highlighted in the In This Issue feature, p. 873.
Insights
Acute myeloid leukemia (AML) exploits serotonin signaling to remodel the bone marrow niche, promoting cancer growth. Targeting this kynurenine-HTR1B-SAA-IDO1 axis offers a novel therapeutic strategy against AML.
Area of Science:
- Hematology
- Cancer Biology
- Microenvironment Research
Background:
- Tumor cells remodel their microenvironment, activating pathways that promote cancer growth.
- Understanding nonautonomous pathways is crucial for overcoming resistance to targeted cancer therapies.
Purpose of the Study:
- To investigate how acute myeloid leukemia (AML) exploits the bone marrow niche.
- To identify molecular mechanisms driving AML progression and therapy resistance.
Main Methods:
- Utilized genetic mouse models, patient-derived xenografts, and patient samples.
- Analyzed the role of serotonin signaling, osteoblasts, and specific molecular axes in AML.
Main Results:
- AML progression depends on serotonin receptor 1B (HTR1B) in osteoblasts.
- AML-secreted kynurenine acts as an oncometabolite, activating HTR1B and inducing a pro-inflammatory osteoblast state.
- A positive feedback loop involving serum amyloid A (SAA) and IDO1 sustains kynurenine synthesis, enabling AML progression.
Conclusions:
- A leukemia-osteoblast cross-talk axis (kynurenine-HTR1B-SAA-IDO1) facilitates AML progression.
- Targeting this niche-specific axis presents a potential therapeutic strategy to overcome AML resistance.
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