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Meugnier, E.

Publications and source records attributed to Meugnier, E..

2 recordsLinked to original sources

N-acetyl-phenylalanine induces hepatic steatosis in MASLD by disrupting ER-mitochondria calcium coupling and mitochondrial lipid oxidation

Background & AimsThe gut-liver axis and hepatic ER-mitochondria miscommunication (at contact sites called MAMs) are involved in the development of metabolic dysfunction-associated steatotic liver disease (MASLD). We investigated the role of circulating aromatic amino acids (AAA) derived from phenylalanine and tyrosine in MASLD potentially through MAM alterations. MethodsWe analyzed AAA metabolomic profiles in individuals with and without MASLD and validated findings in a biopsy-proven cohort. The pro-steatogenic effect of MASLD-associated AAAs was validated in vitro using lipid labeling, MAM structural/functional assays, and palmitate-induced respiration. In vivo effects were tested in mice fed with candidate AAAs, and MAM involvement was confirmed by expressing a specific organelle linker in vitro and in vivo. ResultsN-acetyl-phenylalanine (NAPA) was strongly associated with hepatic steatosis and correlated with specific gut microbes. In vitro, NAPA promoted lipid accumulation by impairing ER-mitochondria calcium exchange via a LAT1-dependent electrogenic mechanism, reducing mitochondrial lipid oxidation. Chronic NAPA administration in mice induced steatosis and MAM disruption. Notably, enhancing ER-mitochondria contacts with an organelle linker prevented NAPA-induced steatosis in vitro and in vivo. Additionally, other phenylalanine- and tyrosine-derived AAAs reproduced NAPAs effects, suggesting a class-dependent mechanism. ConclusionNAPA emerges as a MASLD-promoting metabolite, contributing to hepatic steatosis by disrupting ER-mitochondria calcium coupling and mitochondrial lipid oxidation. Lay SummaryThe gut-liver axis is a key component of the development of MASLD, and circulating gut-derived metabolites, notably AAAs derived from phenylalanine and tyrosine metabolism, have been associated with MASLD. However, the specific causal mechanisms of these AAA metabolites in MASLD development remain unexplored. Here, we identified NAPA, a gut microbiome linked metabolite elevated in MASLD patients, as a causal driver of hepatic steatosis both in vitro and in vivo. Mechanistically, NAPA alters ER-mitochondria calcium coupling leading to reduced mitochondrial lipid oxidation, highlighting a new mechanism with potential therapeutic implications. HIGHLIGHTS- Circulating NAPA levels are increased in MASLD patients and correlate with hepatic steatosis. - NAPA levels result from a complex host-microbiota interplay - NAPA induces lipid accumulation by dampening ER-mitochondria calcium coupling and mitochondrial lipid oxidation. - NAPA disrupts MAMs by a LAT1-mediated electrogenic mechanism. - Other Phe- and Tyr-mediated metabolites have the same pro-steatogenic effect than NAPA pointing to a class-dependent effect.

pathology↗

LAM/TREM2+ macrophages release extracellular vesicles and extracellular lipid droplets which modulate the phenotype of recipient macrophages and homeostasis of skeletal muscle cells

The polarization of tissue-resident macrophages is influenced by a variety of signals from the immune system and the local tissue environment, including nutrition. Although it is known that the quality and quantity of ingested lipids have a significant effect on the lipid composition of extracellular vesicles and their fate, it is unknown how the nutritional environment modifies the release and the function of macrophage-derived EVs. In this study, we used a combination of palmitate and oleate (1:2, FFA) to generate lipid-associated TREM2-expressing macrophages (LAM/TREM2+) in vitro. Using various electron microscopy techniques (TEM, SEM, CryoEM) and fluorophores, we found that FFA overload not only induces lipid storage in LAM/TREM2+ macrophages, but also alters their morphology and reduces the diversity and the number of the lipid-derived structures they release. In addition, LAM/TREM2+ macrophages accumulated lipid droplets (LDs) below the plasma membrane and we discovered for the first time that they export and disseminate full LDs into their environment, in addition to extracellular vesicles, by using a cellular pathway associated to CD81. The use of 14C-palmitate confirmed the presence of 14C-triacylglycerols in the large extracellular vesicle pellet. LAM/TREM2+ macrophage-derived EVs induced TREM2 and Il-10 expression in recipient M0 macrophages. These data provide potential insights into how dietary factors and metabolic perturbations can shape the functions of macrophage-derived EVs in the context of metabolic diseases such as diabetes and obesity. In addition, LAM/TREM2+ macrophage-derived EVs modulated insulin-sensitivity, mitochondrial oxidative capacity, lipid profiles and the expressions of genes encoding extracellular matrix components in recipient skeletal muscle cells. Although previously postulated but never demonstrated, these data also highlight the LAM/TREM2+ macrophage-derived EVs as important players in SkM tissue renewal and metabolic homeostasis.

cell biology↗