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Argemi-Muntadas, L.

Publications and source records attributed to Argemi-Muntadas, L..

2 recordsLinked to original sources

Mitochondrial carrier SLC25A34 links clock, diet, and temperature control of interorganellar lipid cycling

Adipocyte lipid metabolism is coordinated by circadian rhythms, diet, and environmental temperature. Yet how these diverse signals are molecularly integrated remains unknown. Here we show that clock, diet, and temperature cues converge on the orphan mitochondrial transporter, SLC25A34, to orchestrate thermogenic cycling of lipid synthesis and oxidation. During sleep, the clock suppresses Slc25a34 transcription through REV-ERB. Waking, lipid-rich diets, or cold exposure abolish this repression, allowing lipolytic signals to stimulate Slc25a34 expression via PPAR. SLC25A34 then imports oxaloacetate into mitochondria to accelerate the export of substrates used for acetyl-CoA production in the cytosol. This feeds into cytosolic lipid synthesis and transcriptional induction of mitochondrial biogenesis, which collectively promote mitochondrial lipid oxidation. Thus, SLC25A34 confers circadian, dietary, and environmental control of thermogenic metabolism through interorganellar lipid cycling.

molecular biology↗

TCA cycle rewiring underpins implantation and histone acetylation programming

Metabolism has emerged as a key regulator of stem cell differentiation and their epigenomes. This coupling is particularly evident during the exit from naive pluripotency in vitro. However, our understanding of the dynamics of the metabolic rewiring especially at implantation remains rudimentary. In this study, we reconstruct the intracellular metabolite routings in pre- and post-implantation mouse embryos and during dynamic pluripotency transitions of cultured stem cells. Our findings reveal that, instead of a simple TCA cycle shutdown, there is a spatio-temporally programmed rewiring of the TCA cycle at implantation. Focusing on the spectrum of pluripotent cells, we identify pyruvate as a key metabolic nexus. Indeed, pyruvate carboxylase and malic enzyme activity establish cyclical carbon flow, which is essential for maintaining a balanced metabolic and transcriptional state and timely exit from naive pluripotency. Additionally, we discover that formative and primed pluripotent cells exhibit increased glutamine contribution to the TCA cycle, reduced oxidative TCA activity, and reciprocal reductive glutamine metabolism. This metabolic rewiring supports increased histone acetylation turnover, primarily using glutamine as a carbon source, supplemented by pyruvate cycling. Thus, we uncover diverse nutrient strategies that are functionally coupled to epigenome programming and dynamic pluripotency cell state transitions at the time of implantation.

developmental biology↗