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The proteomic signature of NPM/ALK reveals deregulation of multiple cellular pathways
Megan S Lim1, Mary L Carlson, David K Crockett
1Department of Pathology, University of Michigan, Ann Arbor, MI 48109, USA.
Abstract:
Constitutive expression of the chimeric NPM/ALK fusion protein encoded by the t(2;5)(p32;q35) is a key oncogenic event in the pathogenesis of most anaplastic large cell lymphomas (ALCLs). The proteomic network alterations produced by this aberration remain largely uncharacterized. Using a mass spectrometry (MS)-driven approach to identify changes in protein expression caused by the NPM/ALK fusion, we identified diverse NPM/ALK-induced changes affecting cell proliferation, ribosome synthesis, survival, apoptosis evasion, angiogenesis, and cytoarchitectural organization. MS-based findings were confirmed using Western blotting and/or immunostaining of NPM/ALK-transfected cells and ALK-deregulated lymphomas. A subset of the proteins distinguished NPM/ALK-positive ALCLs from NPM/ALK-negative ALCLs and Hodgkin lymphoma. The multiple NPM/ALK-deregulated pathways identified by MS analysis also predicted novel biologic effects of NPM/ALK expression. In this regard, we showed loss of cell adhesion as a consequence of NPM/ALK expression in a kinase-dependent manner, and sensitivity of NPM/ALK-positive ALCLs to inhibition of the RAS, p42/44ERK, and FRAP/mTOR signaling pathways. These findings reveal that the NPM/ALK alteration affects diverse cellular pathways, and provide novel insights into NPM/ALK-positive ALCL pathobiology. Our studies carry important implications for the use of MS-driven approaches for the elucidation of neoplastic pathobiology, the identification of novel diagnostic biomarkers, and pathogenetically relevant therapeutic targets.
Insights
Constitutive expression of the NPM/ALK fusion protein drives anaplastic large cell lymphomas (ALCLs). Mass spectrometry revealed NPM/ALK alters cell proliferation, survival, and adhesion, identifying potential therapeutic targets.
Area of Science:
- Oncology
- Proteomics
- Molecular Biology
Background:
- The NPM/ALK fusion protein, resulting from t(2;5) translocation, is crucial in anaplastic large cell lymphoma (ALCL) pathogenesis.
- The proteomic alterations induced by NPM/ALK are not well understood.
Purpose of the Study:
- To characterize the proteomic network alterations caused by the NPM/ALK fusion protein.
- To identify novel diagnostic biomarkers and therapeutic targets in NPM/ALK-positive ALCLs.
Main Methods:
- Mass spectrometry (MS)-driven proteomic analysis to identify protein expression changes.
- Western blotting and immunostaining to validate MS findings.
- Analysis of NPM/ALK-positive and negative ALCLs, and Hodgkin lymphoma.
Main Results:
- Identified diverse NPM/ALK-induced changes in cell proliferation, ribosome synthesis, survival, apoptosis evasion, angiogenesis, and cytoarchitecture.
- Discovered specific proteins that differentiate NPM/ALK-positive ALCLs from other lymphomas.
- Demonstrated NPM/ALK expression leads to kinase-dependent loss of cell adhesion.
- Showed NPM/ALK-positive ALCLs are sensitive to RAS, p42/44ERK, and FRAP/mTOR pathway inhibition.
Conclusions:
- The NPM/ALK fusion protein impacts multiple cellular pathways, offering new insights into ALCL pathobiology.
- MS-driven approaches are valuable for understanding neoplastic pathobiology and identifying biomarkers.
- Targeting identified pathways (RAS, ERK, mTOR) may offer therapeutic strategies for NPM/ALK-positive ALCLs.
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