The transcription factor p73 has been demonstrated to play a significant role in survival and differentiation of neuronal stem cells. In this report, by employing comprehensive metabolic profile and mitochondrial bioenergetics analysis, we have explored the metabolic alterations in cortical neurons isolated from p73 N-terminal isoform specific knockout animals. We found that loss of the TAp73 or Delta Np73 triggers selective biochemical changes. In particular, p73 isoforms regulate sphingolipid and phospholipid biochemical pathway signaling. Indeed, sphinganine and sphingosine levels were reduced in p73-depleted cortical neurons, and decreased levels of several membrane phospholipids were also observed. Moreover, in line with the complexity associated with p73 functions, loss of the TAp73 seems to increase glycolysis, whereas on the contrary, loss of Delta Np73 isoform reduces glucose metabolism, indicating an isoform-specific differential effect on glycolysis. These changes in glycolytic flux were not reflected by parallel alterations of mitochondrial respiration, as only a slight increase of mitochondrial maximal respiration was observed in p73-depleted cortical neurons. Overall, our findings reinforce the key role of p73 in regulating cellular metabolism and point out that p73 exerts its functions in neuronal biology at least partially through the regulation of metabolic pathways.

p73 Regulates Primary Cortical Neuron Metabolism: a Global Metabolic Profile / M. Agostini, M.V. Niklison-Chirou, M.M. Annicchiarico-Petruzzelli, S. Grelli, N. Di Daniele, I. Pestlikis, R.A. Knight, G. Melino, A. Rufini. - In: MOLECULAR NEUROBIOLOGY. - ISSN 0893-7648. - 55:4(2018 Apr), pp. 3237-3250. [10.1007/s12035-017-0517-3]

p73 Regulates Primary Cortical Neuron Metabolism: a Global Metabolic Profile

A. Rufini
Ultimo
2018

Abstract

The transcription factor p73 has been demonstrated to play a significant role in survival and differentiation of neuronal stem cells. In this report, by employing comprehensive metabolic profile and mitochondrial bioenergetics analysis, we have explored the metabolic alterations in cortical neurons isolated from p73 N-terminal isoform specific knockout animals. We found that loss of the TAp73 or Delta Np73 triggers selective biochemical changes. In particular, p73 isoforms regulate sphingolipid and phospholipid biochemical pathway signaling. Indeed, sphinganine and sphingosine levels were reduced in p73-depleted cortical neurons, and decreased levels of several membrane phospholipids were also observed. Moreover, in line with the complexity associated with p73 functions, loss of the TAp73 seems to increase glycolysis, whereas on the contrary, loss of Delta Np73 isoform reduces glucose metabolism, indicating an isoform-specific differential effect on glycolysis. These changes in glycolytic flux were not reflected by parallel alterations of mitochondrial respiration, as only a slight increase of mitochondrial maximal respiration was observed in p73-depleted cortical neurons. Overall, our findings reinforce the key role of p73 in regulating cellular metabolism and point out that p73 exerts its functions in neuronal biology at least partially through the regulation of metabolic pathways.
Metabolism; Neurons; Sphingolipids; p53 family; p73; Animals; Cell Membrane; Cells, Cultured; Cerebral Cortex; Energy Metabolism; Fatty Acids; Glycolysis; Mice, Knockout; Mitochondria; Neurons; Pentose Phosphate Pathway; Protein Isoforms; Sphingolipids; Tumor Protein p73; Metabolomics
Settore BIO/12 - Biochimica Clinica e Biologia Molecolare Clinica
apr-2018
6-mag-2017
Article (author)
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/946446
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