Piezo2 in sensory neurons influences systemic and adipose tissue metabolism
Passini, F. S.; Bornstein, B.; Rubin, S.; Kuperman, Y.; Krief, S.; Masschelein, E.; Mehlman, T.; Brandis, A.; Addadi, Y.; Huri-Ohev Shalom, S.; Richter, E. A.; Yardeni, T.; Tirosh, A.; De Bock, K.; Zelzer, E.
Show abstract
Systemic metabolism ensures energy homeostasis through inter-organ crosstalk regulating thermogenic adipose tissue. Unlike the well-described inductive role of the sympathetic system, the inhibitory signal ensuring energy preservation remains poorly understood. Here, we show that, via the mechanosensor Piezo2, sensory neurons regulate morphological and physiological properties of brown and beige fat and prevent systemic hypermetabolism. Targeting Runx3/PV sensory neurons in independent genetic mouse models resulted in a systemic metabolic phenotype characterized by reduced body fat and increased insulin sensitivity and glucose tolerance. Deletion of Piezo2 in PV sensory neurons reproduced the phenotype, protected against high-fat diet-induced obesity and caused adipose tissue browning and beiging, likely driven by elevated norepinephrine levels. Finding that brown and beige fat are innervated by Runx3/PV sensory neurons expressing Piezo2, suggests a model where mechanical signals sensed by Piezo2 in sensory neurons protect energy storages and prevent a systemic metabolic phenotype. HighlightsLack of Runx3/PV sensory neurons reduces body fat and fasting glucose levels and increases glucose tolerance in mice Mechanosensitive ion channel PIEZO2 in PV sensory neurons plays an important role in systemic metabolism under physiological and pathological conditions PIEZO2 in PV sensory neurons regulates thermogenic programs and glucose uptake in brown and beige adipose tissues Brown and beige adipose tissues are innervated by Runx3/PV sensory neurons
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Conserved Noncoding Cis-Elements Associated with Hibernation Modulate Metabolic and Behavioral Adaptations in Mice 95%
- Mitochondrial control of fuel switching via carnitine biosynthesis 95%
- T cell cholesterol transport is a metabolic checkpoint that links intestinal immune responses to dietary lipid absorption 95%
Similar papers in this journal
- Hepatic Mitochondrial Remodeling is Mechanistically Linked to Insulin Resistance in Nonalcoholic Fatty Liver Disease 95%
- Nipsnap1- A Regulatory Factor Required for Long-Term Maintenance of Non-Shivering Thermogenesis 95%
- Inhibition of somatostatin enhances the long-term metabolic outcomes of sleeve gastrectomy in mice 95%
Similar papers in this journal
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.