Literature DB >> 28928121

Novel Pharmacological Probes Reveal ABHD5 as a Locus of Lipolysis Control in White and Brown Adipocytes.

Elizabeth A Rondini1, Ljiljana Mladenovic-Lucas1, William R Roush1, Geoff T Halvorsen1, Alex E Green1, James G Granneman2.   

Abstract

Current knowledge regarding acute regulation of adipocyte lipolysis is largely based on receptor-mediated activation or inhibition of pathways that influence intracellular levels of cAMP, thereby affecting protein kinase A (PKA) activity. We recently identified synthetic ligands of α-β-hydrolase domain containing 5 (ABHD5) that directly activate adipose triglyceride lipase (ATGL) by dissociating ABHD5 from its inhibitory regulator, perilipin-1 (PLIN1). In the current study, we used these novel ligands to determine the direct contribution of ABHD5 to various aspects of lipolysis control in white (3T3-L1) and brown adipocytes. ABHD5 ligands stimulated adipocyte lipolysis without affecting PKA-dependent phosphorylation on consensus sites of PLIN1 or hormone-sensitive lipase (HSL). Cotreatment of adipocytes with synthetic ABHD5 ligands did not alter the potency or maximal lipolysis efficacy of the β-adrenergic receptor (ADRB) agonist isoproterenol (ISO), indicating that both target a common pool of ABHD5. Reducing ADRB/PKA signaling with insulin or desensitizing ADRB suppressed lipolysis responses to a subsequent challenge with ISO, but not to ABHD5 ligands. Lastly, despite strong treatment differences in PKA-dependent phosphorylation of HSL, we found that ligand-mediated activation of ABHD5 led to complete triglyceride hydrolysis, which predominantly involved ATGL, but also HSL. These results indicate that the overall pattern of lipolysis controlled by ABHD5 ligands is similar to that of isoproterenol, and that ABHD5 plays a central role in the regulation of adipocyte lipolysis. As lipolysis is critical for adaptive thermogenesis and in catabolic tissue remodeling, ABHD5 ligands may provide a means of activating these processes under conditions where receptor signaling is compromised.
Copyright © 2017 by The American Society for Pharmacology and Experimental Therapeutics.

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Year:  2017        PMID: 28928121      PMCID: PMC5698943          DOI: 10.1124/jpet.117.243253

Source DB:  PubMed          Journal:  J Pharmacol Exp Ther        ISSN: 0022-3565            Impact factor:   4.030


  56 in total

1.  Regulation of skeletal muscle lipolysis and oxidative metabolism by the co-lipase CGI-58.

Authors:  Pierre-Marie Badin; Camille Loubière; Maarten Coonen; Katie Louche; Geneviève Tavernier; Virginie Bourlier; Aline Mairal; Arild C Rustan; Steven R Smith; Dominique Langin; Cedric Moro
Journal:  J Lipid Res       Date:  2012-02-29       Impact factor: 5.922

Review 2.  Regulation of triglyceride metabolism. IV. Hormonal regulation of lipolysis in adipose tissue.

Authors:  Kathy Jaworski; Eszter Sarkadi-Nagy; Robin E Duncan; Maryam Ahmadian; Hei Sook Sul
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2007-01-11       Impact factor: 4.052

3.  Muscle-specific deletion of comparative gene identification-58 (CGI-58) causes muscle steatosis but improves insulin sensitivity in male mice.

Authors:  Ping Xie; Anil K G Kadegowda; Yinyan Ma; Feng Guo; Xianlin Han; Miao Wang; Leanne Groban; Bingzhong Xue; Hang Shi; Huihua Li; Liqing Yu
Journal:  Endocrinology       Date:  2015-03-09       Impact factor: 4.736

Review 4.  Critical roles for α/β hydrolase domain 5 (ABHD5)/comparative gene identification-58 (CGI-58) at the lipid droplet interface and beyond.

Authors:  Amanda L Brown; J Mark Brown
Journal:  Biochim Biophys Acta Mol Cell Biol Lipids       Date:  2017-08-04       Impact factor: 4.698

5.  Mutations in CGI-58, the gene encoding a new protein of the esterase/lipase/thioesterase subfamily, in Chanarin-Dorfman syndrome.

Authors:  C Lefèvre; F Jobard; F Caux; B Bouadjar; A Karaduman; R Heilig; H Lakhdar; A Wollenberg; J L Verret; J Weissenbach; M Ozgüc; M Lathrop; J F Prud'homme; J Fischer
Journal:  Am J Hum Genet       Date:  2001-10-02       Impact factor: 11.025

6.  Growth retardation, impaired triacylglycerol catabolism, hepatic steatosis, and lethal skin barrier defect in mice lacking comparative gene identification-58 (CGI-58).

Authors:  Franz P W Radner; Ingo E Streith; Gabriele Schoiswohl; Martina Schweiger; Manju Kumari; Thomas O Eichmann; Gerald Rechberger; Harald C Koefeler; Sandra Eder; Silvia Schauer; H Christian Theussl; Karina Preiss-Landl; Achim Lass; Robert Zimmermann; Gerald Hoefler; Rudolf Zechner; Guenter Haemmerle
Journal:  J Biol Chem       Date:  2009-12-18       Impact factor: 5.157

7.  Adipose triglyceride lipase-mediated lipolysis of cellular fat stores is activated by CGI-58 and defective in Chanarin-Dorfman Syndrome.

Authors:  Achim Lass; Robert Zimmermann; Guenter Haemmerle; Monika Riederer; Gabriele Schoiswohl; Martina Schweiger; Petra Kienesberger; Juliane G Strauss; Gregor Gorkiewicz; Rudolf Zechner
Journal:  Cell Metab       Date:  2006-05       Impact factor: 27.287

8.  Endogenous and Synthetic ABHD5 Ligands Regulate ABHD5-Perilipin Interactions and Lipolysis in Fat and Muscle.

Authors:  Matthew A Sanders; Franck Madoux; Ljiljana Mladenovic; Huamei Zhang; Xiangqun Ye; Michelle Angrish; Emilio P Mottillo; Joseph A Caruso; Geoff Halvorsen; William R Roush; Peter Chase; Peter Hodder; James G Granneman
Journal:  Cell Metab       Date:  2015-09-24       Impact factor: 27.287

9.  Deletion of CGI-58 or adipose triglyceride lipase differently affects macrophage function and atherosclerosis.

Authors:  Madeleine Goeritzer; Stefanie Schlager; Branislav Radovic; Corina T Madreiter; Silvia Rainer; Gwynneth Thomas; Caleb C Lord; Jessica Sacks; Amanda L Brown; Nemanja Vujic; Sascha Obrowsky; Vinay Sachdev; Dagmar Kolb; Prakash G Chandak; Wolfgang F Graier; Wolfgang Sattler; J Mark Brown; Dagmar Kratky
Journal:  J Lipid Res       Date:  2014-10-14       Impact factor: 6.676

10.  Development of small-molecule inhibitors targeting adipose triglyceride lipase.

Authors:  Nicole Mayer; Martina Schweiger; Matthias Romauch; Gernot F Grabner; Thomas O Eichmann; Elisabeth Fuchs; Jakov Ivkovic; Christoph Heier; Irina Mrak; Achim Lass; Gerald Höfler; Christian Fledelius; Rudolf Zechner; Robert Zimmermann; Rolf Breinbauer
Journal:  Nat Chem Biol       Date:  2013-10-06       Impact factor: 15.040

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  10 in total

Review 1.  Adipocyte lipolysis: from molecular mechanisms of regulation to disease and therapeutics.

Authors:  Alexander Yang; Emilio P Mottillo
Journal:  Biochem J       Date:  2020-03-13       Impact factor: 3.857

2.  Molecular Modeling of ABHD5 Structure and Ligand Recognition.

Authors:  Rezvan Shahoei; Susheel Pangeni; Matthew A Sanders; Huamei Zhang; Ljiljana Mladenovic-Lucas; William R Roush; Geoff Halvorsen; Christopher V Kelly; James G Granneman; Yu-Ming M Huang
Journal:  Front Mol Biosci       Date:  2022-06-28

3.  Optogenetic-induced sympathetic neuromodulation of brown adipose tissue thermogenesis.

Authors:  Carey E Lyons; Maria Razzoli; Erin Larson; Daniel Svedberg; Andrea Frontini; Saverio Cinti; Lucy Vulchanova; Mark Sanders; Mark Thomas; Alessandro Bartolomucci
Journal:  FASEB J       Date:  2019-12-23       Impact factor: 5.191

4.  PNPLA3, CGI-58, and Inhibition of Hepatic Triglyceride Hydrolysis in Mice.

Authors:  Yang Wang; Nora Kory; Soumik BasuRay; Jonathan C Cohen; Helen H Hobbs
Journal:  Hepatology       Date:  2019-04-09       Impact factor: 17.425

5.  Lipolysis regulates major transcriptional programs in brown adipocytes.

Authors:  James G Granneman; Susanne Mandrup; Lasse K Markussen; Elizabeth A Rondini; Olivia Sveidahl Johansen; Jesper G S Madsen; Elahu G Sustarsic; Ann-Britt Marcher; Jacob B Hansen; Zachary Gerhart-Hines
Journal:  Nat Commun       Date:  2022-07-08       Impact factor: 17.694

Review 6.  Deciphering the Role of Lipid Droplets in Cardiovascular Disease: A Report From the 2017 National Heart, Lung, and Blood Institute Workshop.

Authors:  Ira J Goldberg; Karen Reue; Nada A Abumrad; Perry E Bickel; Sarah Cohen; Edward A Fisher; Zorina S Galis; James G Granneman; E Douglas Lewandowski; Robert Murphy; Michelle Olive; Jean E Schaffer; Lisa Schwartz-Longacre; Gerald I Shulman; Tobias C Walther; Jue Chen
Journal:  Circulation       Date:  2018-07-17       Impact factor: 29.690

7.  Lipolysis drives expression of the constitutively active receptor GPR3 to induce adipose thermogenesis.

Authors:  Olivia Sveidahl Johansen; Tao Ma; Jakob Bondo Hansen; Lasse Kruse Markussen; Renate Schreiber; Laia Reverte-Salisa; Hua Dong; Dan Ploug Christensen; Wenfei Sun; Thorsten Gnad; Iuliia Karavaeva; Thomas Svava Nielsen; Sander Kooijman; Cheryl Cero; Oksana Dmytriyeva; Yachen Shen; Maria Razzoli; Shannon L O'Brien; Eline N Kuipers; Carsten Haagen Nielsen; William Orchard; Nienke Willemsen; Naja Zenius Jespersen; Morten Lundh; Elahu Gosney Sustarsic; Cecilie Mørch Hallgren; Mikkel Frost; Seth McGonigle; Marie Sophie Isidor; Christa Broholm; Oluf Pedersen; Jacob Bo Hansen; Niels Grarup; Torben Hansen; Andreas Kjær; James G Granneman; M Madan Babu; Davide Calebiro; Søren Nielsen; Mikael Rydén; Raymond Soccio; Patrick C N Rensen; Jonas Thue Treebak; Thue Walter Schwartz; Brice Emanuelli; Alessandro Bartolomucci; Alexander Pfeifer; Rudolf Zechner; Camilla Scheele; Susanne Mandrup; Zachary Gerhart-Hines
Journal:  Cell       Date:  2021-05-27       Impact factor: 41.582

8.  Genetically-encoded sensors to detect fatty acid production and trafficking.

Authors:  Emilio P Mottillo; Huamei Zhang; Alexander Yang; Li Zhou; James G Granneman
Journal:  Mol Metab       Date:  2019-08-20       Impact factor: 7.422

9.  Dynamic interactions of ABHD5 with PNPLA3 regulate triacylglycerol metabolism in brown adipocytes.

Authors:  Alexander Yang; Emilio P Mottillo; Ljiljana Mladenovic-Lucas; Li Zhou; James G Granneman
Journal:  Nat Metab       Date:  2019-05-06

10.  ABHD5 suppresses cancer cell anabolism through lipolysis-dependent activation of the AMPK/mTORC1 pathway.

Authors:  Guohua Chen; Guoli Zhou; Aaron Lotvola; James G Granneman; Jian Wang
Journal:  J Biol Chem       Date:  2020-11-27       Impact factor: 5.486

  10 in total

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