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Abstract
Caloric restriction (CR) can extend the organism life- and health-span by improving glucose homeostasis. How CR affects the structure-function of pancreatic beta cells remains unknown. We used single nucleus transcriptomics to show that CR increases the expression of genes for beta cell identity, protein processing, and organelle homeostasis. Gene regulatory network analysis reveal that CR activates transcription factors important for beta cell identity and homeostasis, while imaging metabolomics demonstrates that beta cells upon CR are more energetically competent. In fact, high-resolution microscopy show that CR reduces beta cell mitophagy to increase mitochondria mass and the potential for ATP generation. However, CR beta cells have impaired adaptive proliferation in response to high fat diet feeding. Finally, we show that long-term CR delays the onset of beta cell aging hallmarks and promotes cell longevity by reducing beta cell turnover. Therefore, CR could be a feasible approach to preserve compromised beta cell structure-function during aging and diabetes.
Caloric restriction (CR) can extend the organism life- and health-span. Here, the authors show that mild caloric restriction enhances insulin sensititivy to promote beta cell health and longevity, through an optimization of energy metabolism and homeostasis pathways.
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1 Nashville, Vanderbilt University, Department of Molecular Physiology and Biophysics, La Jolla, USA (GRID:grid.152326.1) (ISNI:0000 0001 2264 7217)
2 University of California San Diego, National Center for Imaging and Microscopy Research, La Jolla, USA (GRID:grid.266100.3) (ISNI:0000 0001 2107 4242)
3 University of Alberta, Department of Pharmacology and Alberta Diabetes Institute, Edmonton, Canada (GRID:grid.17089.37)
4 Institute of Science and Technology Austria (ISTA), Vienna, Austria (GRID:grid.33565.36) (ISNI:0000000404312247)