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Disturbances in PP2A methylation and one-carbon metabolism compromise Fyn distribution, neuritogenesis, and APP
Goce Taleski1, Diana Schuhmacher1, Henry Su2
1School of Biomedical Sciences and Pharmacy, University of Newcastle, Callaghan, NSW, Australia.
Abstract:
The nonreceptor protein tyrosine kinase Fyn and protein Ser/Thr phosphatase 2A (PP2A) are major multifunctional signaling molecules. Deregulation of Fyn and altered PP2A methylation are implicated in cancer and Alzheimer's disease (AD). Here, we tested the hypothesis that the methylation state of PP2A catalytic subunit, which influences PP2A subunit composition and substrate specificity, can affect Fyn regulation and function. Using Neuro-2a (N2a) neuroblastoma cell models, we first show that methylated PP2A holoenzymes containing the Bα subunit coimmunoprecipitate and copurify with Fyn in membrane rafts. PP2A methylation status regulates Fyn distribution and Fyn-dependent neuritogenesis, likely in part by affecting actin dynamics. A methylation-incompetent PP2A mutant fails to interact with Fyn. It perturbs the normal partitioning of Fyn and amyloid precursor protein (APP) in membrane microdomains, which governs Fyn function and APP processing. This correlates with enhanced amyloidogenic cleavage of APP, a hallmark of AD pathogenesis. Conversely, enhanced PP2A methylation promotes the nonamyloidogenic cleavage of APP in a Fyn-dependent manner. Disturbances in one-carbon metabolic pathways that control cellular methylation are associated with AD and cancer. Notably, they induce a parallel loss of membrane-associated methylated PP2A and Fyn enzymes in N2a cells and acute mouse brain slices. One-carbon metabolism also modulates Fyn-dependent process outgrowth in N2a cells. Thus, our findings identify a novel methylation-dependent PP2A/Fyn signaling module. They highlight the underestimated importance of cross talks between essential metabolic pathways and signaling scaffolds that are involved in normal cell homeostasis and currently being targeted for cancer and AD treatment.
Insights
Altered methylation of protein phosphatase 2A (PP2A) impacts Fyn kinase regulation, affecting amyloid precursor protein processing and cell growth. This discovery reveals a new PP2A/Fyn signaling pathway crucial for cancer and Alzheimer's disease.
Area of Science:
- Cellular signaling
- Neuroscience
- Biochemistry
Background:
- Nonreceptor tyrosine kinase Fyn and protein Ser/Thr phosphatase 2A (PP2A) are key signaling molecules implicated in cancer and Alzheimer's disease (AD).
- PP2A methylation status influences its subunit composition and substrate specificity, potentially affecting Fyn regulation.
Purpose of the Study:
- To investigate how PP2A methylation affects Fyn regulation and function.
- To explore the role of the PP2A/Fyn module in amyloid precursor protein (APP) processing and one-carbon metabolism in neuroblastoma models.
Main Methods:
- Utilized Neuro-2a (N2a) neuroblastoma cell models and acute mouse brain slices.
- Employed coimmunoprecipitation, copurification in membrane rafts, and analysis of Fyn distribution and APP processing.
- Investigated the impact of a methylation-incompetent PP2A mutant and one-carbon metabolism disturbances.
Main Results:
- Methylated PP2A holoenzymes associate with Fyn in membrane rafts, regulating Fyn distribution and neuritogenesis.
- PP2A methylation status dictates Fyn interaction and influences APP processing, promoting either amyloidogenic or non-amyloidogenic cleavage.
- Disruptions in one-carbon metabolism lead to decreased methylated PP2A and Fyn, affecting cell outgrowth.
Conclusions:
- Identified a novel methylation-dependent PP2A/Fyn signaling module.
- Highlighted the critical crosstalk between one-carbon metabolism and signaling scaffolds (PP2A/Fyn) in cellular homeostasis.
- Emphasized the potential therapeutic relevance of this module for cancer and AD treatment.
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