Sodium Tungstate Promotes Neurite Outgrowth and Confers Neuroprotection in Neuro2a and SH-SY5Y Cells
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Montero Martin, Nora; Girón González, María Dolores; Vílchez Rienda, José Dámaso; Salto González, RafaelEditorial
MDPI
Materia
Sodium tungstate Neurite outgrowth Neuroprotection
Date
2024-08-23Referencia bibliográfica
Montero-Martin, N.; Girón, M.D.; Vílchez, J.D.; Salto, R. Sodium Tungstate Promotes Neurite Outgrowth and Confers Neuroprotection in Neuro2a and SH-SY5Y Cells. Int. J. Mol. Sci. 2024, 25, 9150. https://doi.org/10.3390/ijms25179150
Sponsorship
Fundación Marcelino Botín (grant number UGR–2655); The APC was funded by the Research Group Junta de Andalucia PAIDI BIO–212Abstract
Sodium tungstate (Na2WO4) normalizes glucose metabolism in the liver and muscle,
activating the Mitogen-activated protein kinase/extracellular signal-regulated kinase (MAPK/ERK)
pathway. Because this pathway controls neuronal survival and differentiation, we investigated the
effects of Na2WO4 in mouse Neuro2a and human SH-SY5Y neuroblastoma monolayer cell cultures.
Na2WO4 promotes differentiation to cholinergic neurites via an increased G1/G0 cell cycle in response
to the synergic activation of the Phosphatidylinositol 3-kinase (PI3K/Akt) and ERK1/2 signaling
pathways. In Neuro2a cells, Na2WO4 increases protein synthesis by activating the mechanistic target
of rapamycin (mTOR) and S6K kinases and GLUT3-mediated glucose uptake, providing the energy
and protein synthesis needed for neurite outgrowth. Furthermore, Na2WO4 increased the expression
of myocyte enhancer factor 2D (MEF2D), a member of a family of transcription factors involved in
neuronal survival and plasticity, through a post-translational mechanism that increases its half-life.
Site-directed mutations of residues involved in the sumoylation of the protein abrogated the positive
effects of Na2WO4 on the MEF2D-dependent transcriptional activity. In addition, the neuroprotective
effects of Na2WO4 were evaluated in the presence of advanced glycation end products (AGEs). AGEs
diminished neurite differentiation owing to a reduction in the G1/G0 cell cycle, concomitant with
lower expression of MEF2D and the GLUT3 transporter. These negative effects were corrected in
both cell lines after incubation with Na2WO4. These findings support the role of Na2WO4 in neuronal
plasticity, albeit further experiments using 3D cultures, and animal models will be needed to validate
the therapeutic potential of the compound.