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Real time quantitative analysis of lipid storage and lipolysis pathways by confocal spectral imaging of intracellular micropolarity
Authors:Giuseppe Maulucci  Flavio Di Giacinto  Claudio De Angelis  Ofir Cohen  Bareket Daniel  Carla Ferreri  Marco De Spirito  Shlomo Sasson
Institution:1. Istituto di Fisica, Università Cattolica del Sacro Cuore, Largo Francesco Vito 1, 00168 Rome, Italy;2. Institute for Drug Research, Faculty of Medicine, The Hebrew University of Jerusalem, Jerusalem 9112001, Israel;3. ISOF, Consiglio Nazionale delle Ricerche, Via P. Gobetti 101, 40129 Bologna, Italy
Abstract:Organisms store fatty acids in triacylglycerols in the form of lipid droplets, or hydrolyze triacylglycerols in response to energetic demands via activation of lipolytic or storage pathways. These pathways are complex sets of sequential reactions that are finely regulated in different cell types. Here we present a high spatial and temporal resolution-based method for the quantification of the turnover of fatty acids into triglycerides in live cells without introducing sample preparation artifacts.We performed confocal spectral imaging of intracellular micropolarity in cultured insulin secreting beta cells to detect micropolarity variations as they occur in time and at different pixels of microscope images. Acquired data are then analyzed in the framework of the spectral phasors technique.The method furnishes a metabolic parameter, which quantitatively assesses fatty acids - triacylglycerols turnover and the activation of lipolysis and storage pathways. Moreover, it provides a polarity profile, which represents the contribution of hyperpolar, polar and non-polar classes of lipids. These three different classes can be visualized on the image at a submicrometer resolution, revealing the spatial localization of lipids in cells under physiological and pathological settings.This new method allows for a fine-tuned, real-time visualization of the turnover of fatty acids into triglycerides in live cells with submicrometric resolution. It also detects imbalances between lipid storage and usage, which may lead to metabolic disorders within living cells and organisms.
Keywords:ACT-1  acyl transfer enzyme 1  AGPAT  1-acylglycerol-3-phosphate O-acyltransferase  ATAGL  adipose triglyceride lipase  CARS  coherent anti-Stokes Raman scattering  DAG  diacylglycerol  DGAT  diacylglycerol acyl transferase  FCS  fetal calf serum  FFA  Free Fatty acids  GPAT  glycerophosphate acyltransferase  HP  hyper-polar  HSL  hormone-sensitive lipase  LD  lipid droplets  LPA  lysophosphatidic acid  MGL  monoacylglycerol lipase  NP  non-polar  P  polar  PA  palmitic acid  PAP  phosphatidic acid phosphatase  PhA  phosphatidic acid  SCD1  Stearoyl-CoA desaturase-1  SHG  second harmonic generation  SRS  Stimulated Raman Scattering  TAG  triacylglycerols  THG  third harmonic generation  Metabolic imaging  Triglycerides  Fatty acids  Lipid droplets  Spectral phasors  Beta cells
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