Literature DB >> 21734303

Distinct functional domains contribute to degradation of the low density lipoprotein receptor (LDLR) by the E3 ubiquitin ligase inducible Degrader of the LDLR (IDOL).

Vincenzo Sorrentino1, Lilith Scheer, Ana Santos, Eric Reits, Boris Bleijlevens, Noam Zelcer.   

Abstract

We recently identified the liver X receptor-regulated E3 ubiquitin ligase inducible degrader of the LDL receptor (IDOL) as a modulator of lipoprotein metabolism. Acting as an E3 ubiquitin ligase, IDOL triggers ubiquitination and subsequent degradation of the low density lipoprotein receptor (LDLR). We demonstrate here that this outcome requires the conserved FERM and RING domains present in IDOL. The RING domain promotes ubiquitination in vitro and Lys-63-specific ubiquitination of the LDLR in vivo in response to IDOL or liver X receptor activation. We further identify RING residues that differentially influence ubiquitination of the LDLR or stability of IDOL. The FERM domain interacts with the LDLR and in living cells co-localizes with the receptor at the plasma membrane. Homology modeling revealed a phosphotyrosine-binding element embedded in the FERM domain. Mutating residues within this region or residues in the LDLR preceding the NPVY endocytosis motif abrogate LDLR degradation by IDOL. Collectively, our results indicate that both the FERM and RING domains are required for promoting lysosomal degradation of the LDLR by IDOL. Our findings may facilitate development of structure-based IDOL inhibitors aimed at increasing LDLR abundance in therapeutic strategies to treat cardiovascular disease.

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Year:  2011        PMID: 21734303      PMCID: PMC3191058          DOI: 10.1074/jbc.M111.249557

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  37 in total

1.  Activation of the IkappaB kinase complex by TRAF6 requires a dimeric ubiquitin-conjugating enzyme complex and a unique polyubiquitin chain.

Authors:  L Deng; C Wang; E Spencer; L Yang; A Braun; J You; C Slaughter; C Pickart; Z J Chen
Journal:  Cell       Date:  2000-10-13       Impact factor: 41.582

2.  Structure of a c-Cbl-UbcH7 complex: RING domain function in ubiquitin-protein ligases.

Authors:  N Zheng; P Wang; P D Jeffrey; N P Pavletich
Journal:  Cell       Date:  2000-08-18       Impact factor: 41.582

3.  Structural basis of adhesion-molecule recognition by ERM proteins revealed by the crystal structure of the radixin-ICAM-2 complex.

Authors:  Keisuke Hamada; Toshiyuki Shimizu; Shigenobu Yonemura; Shoichiro Tsukita; Sachiko Tsukita; Toshio Hakoshima
Journal:  EMBO J       Date:  2003-02-03       Impact factor: 11.598

Review 4.  ERM proteins and merlin: integrators at the cell cortex.

Authors:  Anthony Bretscher; Kevin Edwards; Richard G Fehon
Journal:  Nat Rev Mol Cell Biol       Date:  2002-08       Impact factor: 94.444

5.  MIR is a novel ERM-like protein that interacts with myosin regulatory light chain and inhibits neurite outgrowth.

Authors:  P A Olsson; L Korhonen; E A Mercer; D Lindholm
Journal:  J Biol Chem       Date:  1999-12-17       Impact factor: 5.157

6.  Interactions of the low density lipoprotein receptor gene family with cytosolic adaptor and scaffold proteins suggest diverse biological functions in cellular communication and signal transduction.

Authors:  M Gotthardt; M Trommsdorff; M F Nevitt; J Shelton; J A Richardson; W Stockinger; J Nimpf; J Herz
Journal:  J Biol Chem       Date:  2000-08-18       Impact factor: 5.157

7.  Protein 4.1R core domain structure and insights into regulation of cytoskeletal organization.

Authors:  B G Han; W Nunomura; Y Takakuwa; N Mohandas; B K Jap
Journal:  Nat Struct Biol       Date:  2000-10

8.  Origins of peptide selectivity and phosphoinositide binding revealed by structures of disabled-1 PTB domain complexes.

Authors:  Peggy C Stolt; Hyesung Jeon; Hyun Kyu Song; Joachim Herz; Michael J Eck; Stephen C Blacklow
Journal:  Structure       Date:  2003-05       Impact factor: 5.006

9.  Mutations in PCSK9 cause autosomal dominant hypercholesterolemia.

Authors:  Marianne Abifadel; Mathilde Varret; Jean-Pierre Rabès; Delphine Allard; Khadija Ouguerram; Martine Devillers; Corinne Cruaud; Suzanne Benjannet; Louise Wickham; Danièle Erlich; Aurélie Derré; Ludovic Villéger; Michel Farnier; Isabel Beucler; Eric Bruckert; Jean Chambaz; Bernard Chanu; Jean-Michel Lecerf; Gerald Luc; Philippe Moulin; Jean Weissenbach; Annick Prat; Michel Krempf; Claudine Junien; Nabil G Seidah; Catherine Boileau
Journal:  Nat Genet       Date:  2003-06       Impact factor: 38.330

10.  Autosomal recessive hypercholesterolemia caused by mutations in a putative LDL receptor adaptor protein.

Authors:  C K Garcia; K Wilund; M Arca; G Zuliani; R Fellin; M Maioli; S Calandra; S Bertolini; F Cossu; N Grishin; R Barnes; J C Cohen; H H Hobbs
Journal:  Science       Date:  2001-04-26       Impact factor: 47.728

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  20 in total

Review 1.  Cargo recognition in clathrin-mediated endocytosis.

Authors:  Linton M Traub; Juan S Bonifacino
Journal:  Cold Spring Harb Perspect Biol       Date:  2013-11-01       Impact factor: 10.005

2.  Fibroblast growth factor-21 (FGF21) regulates low-density lipoprotein receptor (LDLR) levels in cells via the E3-ubiquitin ligase Mylip/Idol and the Canopy2 (Cnpy2)/Mylip-interacting saposin-like protein (Msap).

Authors:  Hai Thi Do; Timofey V Tselykh; Johanna Mäkelä; Tho Huu Ho; Vesa M Olkkonen; Beat C Bornhauser; Laura Korhonen; Noam Zelcer; Dan Lindholm
Journal:  J Biol Chem       Date:  2012-02-29       Impact factor: 5.157

Review 3.  Feedback regulation of cholesterol uptake by the LXR-IDOL-LDLR axis.

Authors:  Li Zhang; Karen Reue; Loren G Fong; Stephen G Young; Peter Tontonoz
Journal:  Arterioscler Thromb Vasc Biol       Date:  2012-08-30       Impact factor: 8.311

4.  IDOL stimulates clathrin-independent endocytosis and multivesicular body-mediated lysosomal degradation of the low-density lipoprotein receptor.

Authors:  Elena Scotti; Martino Calamai; Chris N Goulbourne; Li Zhang; Cynthia Hong; Ron R Lin; Jinkuk Choi; Paul F Pilch; Loren G Fong; Peng Zou; Alice Y Ting; Francesco S Pavone; Stephen G Young; Peter Tontonoz
Journal:  Mol Cell Biol       Date:  2013-02-04       Impact factor: 4.272

5.  The LXR-IDOL axis defines a clathrin-, caveolae-, and dynamin-independent endocytic route for LDLR internalization and lysosomal degradation.

Authors:  Vincenzo Sorrentino; Jessica K Nelson; Elena Maspero; André R A Marques; Lilith Scheer; Simona Polo; Noam Zelcer
Journal:  J Lipid Res       Date:  2013-06-03       Impact factor: 5.922

Review 6.  LXR Regulation of Brain Cholesterol: From Development to Disease.

Authors:  Rebecca Courtney; Gary E Landreth
Journal:  Trends Endocrinol Metab       Date:  2016-04-21       Impact factor: 12.015

Review 7.  Liver X receptors in lipid metabolism: opportunities for drug discovery.

Authors:  Cynthia Hong; Peter Tontonoz
Journal:  Nat Rev Drug Discov       Date:  2014-05-16       Impact factor: 84.694

8.  Deubiquitylase Inhibition Reveals Liver X Receptor-independent Transcriptional Regulation of the E3 Ubiquitin Ligase IDOL and Lipoprotein Uptake.

Authors:  Jessica Kristine Nelson; Emma Clare Laura Cook; Anke Loregger; Marten Anne Hoeksema; Saskia Scheij; Igor Kovacevic; Peter Lodewijk Hordijk; Huib Ovaa; Noam Zelcer
Journal:  J Biol Chem       Date:  2015-12-30       Impact factor: 5.157

9.  Both K63 and K48 ubiquitin linkages signal lysosomal degradation of the LDL receptor.

Authors:  Li Zhang; Ming Xu; Elena Scotti; Zhijian J Chen; Peter Tontonoz
Journal:  J Lipid Res       Date:  2013-02-18       Impact factor: 5.922

10.  Association of MYLIP rs3757354 SNP and several environmental factors with serum lipid levels in the Guangxi Bai Ku Yao and Han populations.

Authors:  Ting-Ting Yan; Rui-Xing Yin; Qing Li; Ping Huang; Xiao-Na Zeng; Ke-Ke Huang; Dong-Feng Wu; Lynn Htet Htet Aung
Journal:  Lipids Health Dis       Date:  2012-10-29       Impact factor: 3.876

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