Oxidized phospholipids regulate amino acid metabolism through MTHFD2 to facilitate nucleotide release in endothelial cells.
Juliane HitzelEunjee LeeYi ZhangSofia Iris BibliXiaogang LiSven ZukunftBeatrice PflügerJiong HuChristoph SchürmannAndrea Estefania VasconezJames A OoAdelheid KratzerHanjoong JoFlávia RezendeIvana JosipovicDominique ThomasHector GiralYannick SchreiberGerd GeisslingerChristian ForkXia YangFragiska SigalaCasey E RomanoskiJens KrollHanjoong JoUlf LandmesserAldons J LusisDmitry NamgaladzeIngrid FlemingMatthias S LeisegangJun ZhuRalf P BrandesPublished in: Nature communications (2018)
Oxidized phospholipids (oxPAPC) induce endothelial dysfunction and atherosclerosis. Here we show that oxPAPC induce a gene network regulating serine-glycine metabolism with the mitochondrial methylenetetrahydrofolate dehydrogenase/cyclohydrolase (MTHFD2) as a causal regulator using integrative network modeling and Bayesian network analysis in human aortic endothelial cells. The cluster is activated in human plaque material and by atherogenic lipoproteins isolated from plasma of patients with coronary artery disease (CAD). Single nucleotide polymorphisms (SNPs) within the MTHFD2-controlled cluster associate with CAD. The MTHFD2-controlled cluster redirects metabolism to glycine synthesis to replenish purine nucleotides. Since endothelial cells secrete purines in response to oxPAPC, the MTHFD2-controlled response maintains endothelial ATP. Accordingly, MTHFD2-dependent glycine synthesis is a prerequisite for angiogenesis. Thus, we propose that endothelial cells undergo MTHFD2-mediated reprogramming toward serine-glycine and mitochondrial one-carbon metabolism to compensate for the loss of ATP in response to oxPAPC during atherosclerosis.
Keyphrases
- endothelial cells
- network analysis
- high glucose
- coronary artery disease
- vascular endothelial growth factor
- cardiovascular disease
- oxidative stress
- amino acid
- genome wide
- low density lipoprotein
- aortic valve
- transcription factor
- type diabetes
- fatty acid
- pulmonary artery
- pulmonary hypertension
- protein kinase
- pluripotent stem cells