Nature Communications · 2024 · 32 citations · 46 references
Cellular PhysiologyMitochondria Architecture RevealsObesityMetabolic SyndromeBody CompositionMitochondrial BiogenesisMitochondrial StructureLiver ZonationCell SignalingHealth SciencesBiochemistryMitochondrial DynamicLiver PhysiologyNutritional FluctuationsCell BiologyHepatic ErSignal TransductionMitochondrial FunctionCell OrganelleImmense CapacityPhysiologyMetabolic RegulationMetabolismMedicineOrganelle DynamicSpatial Mapping
The hepatocytes within the liver present an immense capacity to adapt to changes in nutrient availability. Here, by using high resolution volume electron microscopy, we map how hepatic subcellular spatial organization is regulated during nutritional fluctuations and as a function of liver zonation. We identify that fasting leads to remodeling of endoplasmic reticulum (ER) architecture in hepatocytes, characterized by the induction of single rough ER sheet around the mitochondria, which becomes larger and flatter. These alterations are enriched in periportal and mid-lobular hepatocytes but not in pericentral hepatocytes. Gain- and loss-of-function in vivo models demonstrate that the Ribosome receptor binding protein1 (RRBP1) is required to enable fasting-induced ER sheet-mitochondria interactions and to regulate hepatic fatty acid oxidation. Endogenous RRBP1 is enriched around periportal and mid-lobular regions of the liver. In obesity, ER-mitochondria interactions are distinct and fasting fails to induce rough ER sheet-mitochondrion interactions. These findings illustrate the importance of a regulated molecular architecture for hepatocyte metabolic flexibility.
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Angelika S. Rambold, Brenda Kostelecky, Natalie Elia et al. · Proceedings of the National Academy of Sciences · 2011 · 1.1K citations · Full text
Applying systems-level spectral imaging and analysis to reveal the organelle interactome
Alex M. Valm, Sarah Cohen, Wesley R. Legant et al. · Nature · 2017 · 1.1K citations · Full text
Systems-level Spectral Imaging, Interactomics, Microscopy +12