International Journal of Molecular Sciences · 2013 · 106 citations · 83 references
Molecular RegulationLipid PeroxidationCell DeathPhosphatidylethanolamine HomeostasisCellular PhysiologyOxidative StressMetabolic SyndromeTranscriptional RegulationCell AutophagySignaling PathwayCritical RoleAutophagyCellular Regulatory MechanismCell SignalingBiochemistryMolecular PathwayCell BiologyProtein PhosphorylationSignal TransductionDevelopmental BiologyAbundant LipidNatural SciencesPhysiologyPcyt2 Transcriptional RegulationPhosphoethanolamine CytidylyltransferaseCellular BiochemistryMedicineLipid Synthesis
Phosphatidylethanolamine (PE) is the most abundant lipid on the protoplasmatic leaflet of cellular membranes. It has a pivotal role in cellular processes such as membrane fusion, cell cycle regulation, autophagy, and apoptosis. CTP:phosphoethanolamine cytidylyltransferase (Pcyt2) is the main regulatory enzyme in de novo biosynthesis of PE from ethanolamine and diacylglycerol by the CDP-ethanolamine Kennedy pathway. The following is a summary of the current state of knowledge on Pcyt2 and how splicing and isoform specific differences could lead to variations in functional properties in this family of enzymes. Results from the most recent studies on Pcyt2 transcriptional regulation, promoter function, autophagy, and cell growth regulation are highlighted. Recent data obtained from Pcyt2 knockout mouse models is also presented, demonstrating the essentiality of this gene in embryonic development as well as the major physiological consequences of deletion of one Pcyt2 allele. Those include development of symptoms of the metabolic syndrome such as elevated lipogenesis and lipoprotein secretion, hypertriglyceridemia, liver steatosis, obesity, and insulin resistance. The objective of this review is to elucidate the nature of Pcyt2 regulation by linking its catalytic function with the regulation of lipid and energy homeostasis.
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