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Chimeric kinase ALK induces expression of NAMPT and selectively depends on this metabolic enzyme to sustain its own
Qian Zhang1, Johnvesly Basappa2, Hong Y Wang1
1Department of Pathology and Laboratory Medicine, University of Pennsylvania, Philadelphia, PA, USA.
Abstract:
As we show in this study, NAMPT, the key rate-limiting enzyme in the salvage pathway, one of the three known pathways involved in NAD synthesis, is selectively over-expressed in anaplastic T-cell lymphoma carrying oncogenic kinase NPM1::ALK (ALK + ALCL). NPM1::ALK induces expression of the NAMPT-encoding gene with STAT3 acting as transcriptional activator of the gene. Inhibition of NAMPT affects ALK + ALCL cells expression of numerous genes, many from the cell-signaling, metabolic, and apoptotic pathways. NAMPT inhibition also functionally impairs the key metabolic and signaling pathways, strikingly including enzymatic activity and, hence, oncogenic function of NPM1::ALK itself. Consequently, NAMPT inhibition induces cell death in vitro and suppresses ALK + ALCL tumor growth in vivo. These results indicate that NAMPT is a novel therapeutic target in ALK + ALCL and, possibly, other similar malignancies. Targeting metabolic pathways selectively activated by oncogenic kinases to which malignant cells become "addicted" may become a novel therapeutic approach to cancer, alternative or, more likely, complementary to direct inhibition of the kinase enzymatic domain. This potential therapy to simultaneously inhibit and metabolically "starve" oncogenic kinases may not only lead to higher response rates but also delay, or even prevent, development of drug resistance, frequently seen when kinase inhibitors are used as single agents.
Insights
Nicotinamide phosphoribosyltransferase (NAMPT) is over-expressed in ALK+ ALCL and is a novel therapeutic target. Inhibiting NAMPT induces cancer cell death and suppresses tumor growth.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Nicotinamide phosphoribosyltransferase (NAMPT) is crucial for NAD+ synthesis.
- Anaplastic T-cell lymphoma with NPM1::ALK (ALK+ ALCL) exhibits selective NAMPT overexpression.
- NPM1::ALK oncogenic kinase drives NAMPT gene expression via STAT3.
Purpose of the Study:
- To investigate the role of NAMPT in ALK+ ALCL.
- To evaluate NAMPT as a therapeutic target in ALK+ ALCL.
- To explore the impact of NAMPT inhibition on cancer cell signaling and metabolism.
Main Methods:
- Selective NAMPT inhibition in ALK+ ALCL cells.
- Analysis of gene expression changes post-NAMPT inhibition.
- Assessment of metabolic and signaling pathway alterations.
- Evaluation of in vitro cell death and in vivo tumor growth suppression.
Main Results:
- NAMPT inhibition affects numerous genes in cell-signaling, metabolic, and apoptotic pathways.
- NAMPT inhibition impairs key metabolic and signaling pathways, including NPM1::ALK activity.
- NAMPT inhibition leads to cell death in vitro and suppressed tumor growth in vivo.
- NAMPT is identified as a novel therapeutic target for ALK+ ALCL.
Conclusions:
- NAMPT is a promising therapeutic target for ALK+ ALCL and potentially other malignancies.
- Targeting oncogenic kinase-addicted metabolic pathways offers a novel cancer therapy approach.
- Combined inhibition of kinases and metabolic pathways may improve treatment response and overcome drug resistance.
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