Person: Parlakgul, Gunes
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Publication Regulation of liver subcellular architecture controls metabolic homeostasis
(Springer Science and Business Media LLC, 2022-03-09) Parlakgul, Gunes; Arruda, Ana Paula; Pang, Song; Cagampan, Erika; Min, Nina; Guney, Ekin; Lee, Grace Yankun; Inouye, Karen; Hess, Harald F.; Xu, C Shan; Hotamisligil, GökhanCells display complex intracellular organization by compartmentalization of metabolic processes into organelles, yet the resolution of these structures in the native tissue context and their functional consequences are not well understood. Here we resolved the three-dimensional structural organization of organelles in large (more than 2.8 × 10^5 μm^3) volumes of intact liver tissue (15 partial or full hepatocytes per condition) at high resolution (8 nm isotropic pixel size) using enhanced focused ion beam scanning electron microscopy imaging followed by deep-learning-based automated image segmentation and 3D reconstruction. We also performed a comparative analysis of subcellular structures in liver tissue of lean and obese mice and found marked alterations, particularly in hepatic endoplasmic reticulum (ER), which undergoes massive structural reorganization characterized by marked disorganization of stacks of ER sheets and predominance of ER tubules. Finally, we demonstrated the functional importance of these structural changes by monitoring the effects of experimental recovery of the subcellular organization on cellular and systemic metabolism. We conclude that the hepatic subcellular organization the ER architecture are highly dynamic, integrated with the metabolic state and critical for adaptive homeostasis and tissue health.
Publication Defective STIM-mediated store operated Ca2+ entry in hepatocytes leads to metabolic dysfunction in obesity
(eLife Sciences Publications, Ltd, 2017) Arruda, Ana; Pers, Benedicte Mengel; Parlakgul, Gunes; Guney, Ekin; Goh, Ted; Cagampan, Erika; Lee, Grace Yankun; Goncalves, Renata; Hotamisligil, GokhanDefective Ca2+ handling is a key mechanism underlying hepatic endoplasmic reticulum (ER) dysfunction in obesity. ER Ca2+ level is in part monitored by the store-operated Ca2+ entry (SOCE) system, an adaptive mechanism that senses ER luminal Ca2+ concentrations through the STIM proteins and facilitates import of the ion from the extracellular space. Here, we show that hepatocytes from obese mice displayed significantly diminished SOCE as a result of impaired STIM1 translocation, which was associated with aberrant STIM1 O-GlycNAcylation. Primary hepatocytes deficient in STIM1 exhibited elevated cellular stress as well as impaired insulin action, increased glucose production and lipid droplet accumulation. Additionally, mice with acute liver deletion of STIM1 displayed systemic glucose intolerance. Conversely, over-expression of STIM1 in obese mice led to increased SOCE, which was sufficient to improve systemic glucose tolerance. These findings demonstrate that SOCE is an important mechanism for healthy hepatic Ca2+ balance and systemic metabolic control.