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Bjorklund, P.

Publications and source records attributed to Bjorklund, P..

2 recordsLinked to original sources

CYP4F2-mediated ω-hydroxylation of 1-deoxysphingolipids reveals a new hepatic detoxification pathway

1-deoxysphingolipids (1-deoxySLs) are atypical, cytotoxic sphingolipids (SL) formed by the serine palmitoyltransferase through the alternative use of L-Alanine over its canonical substrate L-Serine. Elevated plasma levels of 1-deoxySLs have been implicated in metabolic and neurodegenerative diseases. Due to the missing C1 hydroxyl group, 1-deoxySLs cannot be converted into complex sphingolipids nor degraded via the canonical SL catabolic pathways. However, previous reports suggested a cytochrome P450 mediated {omega}-hydroxylation of 1-deoxySLs as a potential detoxification mechanism although the exacts downstream metabolism of these lipids remained unclear. We combined genome-wide association analysis with targeted lipid analysis to identify genes involved in 1-deoxySL metabolism. Functional validation was performed in cell culture models, enzyme assays, and through quantitative high-resolution mass spectrometry using isotope labelled synthetic standards.We identified a strong association between the CYP4F2 rs2108622 variant and plasma 1-deoxySL, implicating CYP4F2 is involved in 1-deoxySL metabolism. We demonstrated that CYP4F2 catalyzes the {omega}-hydroxylation of 1-deoxysphinganine, forming a previously uncharacterized hydroxylated sphingoid base. In liver cells, this metabolite was further metabolized via three distinct pathways: one forming the N-acyl, a second involving omega acylation and third resulting in omega carboxylation. All reactions generated a new spectrum of 1-deoxysphingolipids that are based on {omega}-hydroxylated 1-deoxySA as a precursor. The metabolic steps were confirmed by structural validation using synthetically prepared external standards. Importantly, {omega}-hydroxylation significantly attenuated the acute cytotoxicity of 1-deoxySLs in liver cells, indicating that this modification is the initiating step of a multi-branched metabolic clearance pathway. This study identifies CYP4F2 as a key enzyme initiating the hepatic clearance of atypical 1-deoxySLs, mitigating their cellular toxicity and revealing multiple downstream metabolic fates. Our findings highlight a previously unrecognized clearance mechanism for atypical sphingolipids with relevance to metabolic disease.

biochemistry↗

Metabolic Origins of Neurotoxic 1-deoxySphingolipids in Type 2 Diabetes

Type 2 diabetes (T2D) and diabetic peripheral neuropathy (DPN) are associated with disruptions in sphingolipid (SL) metabolism, including an increased formation of neurotoxic 1-deoxysphingolipids (1-deoxySL). Here we report data from an untargeted proteomics, lipidomics and metabolomics profiling in plasma and skin samples of a carefully characterized T2D cohort and age-matched healthy controls. We investigated the association between plasma and skin amino acids and the sphingolipidome in blood and skin of T2D patients and several diabetic rodent models. We developed a hypothesis on how changes in the metabolism of the two amino acids relates to SL formation and DPN. To test this hypothesis and identify key enzymes responsible for the 1-deoxySL formation we developed stable isotope based SL flux assays, using UC13Glucose, 15NGlutamine, D4-Palmitic acid, D4-Alanine and D3N15-Serine as tracers. In combination with genetic interference approaches, we identified pathways that are responsible for shifting between the formation of 1-deoxySL and canonical SL in T2D. Furthermore, we verified these findings in vivo in several rodent models. This study links disturbances in amino acids, lipids, and protein homeostasis to DPN in T2D.

neuroscience↗