Glycogen synthase kinase-3-mediated phosphorylation of serine 73 targets sterol response element binding protein-1c (SREBP-1c) for proteasomal degradation

Author:

Dong Qingming12,Giorgianni Francesco3,Beranova-Giorgianni Sarka3,Deng Xiong12,O'Meally Robert N.4,Bridges Dave56,Park Edwards A.12,Cole Robert N.4,Elam Marshall B.12,Raghow Rajendra12

Affiliation:

1. Department of Veterans Affairs Medical Center, 1030 Jefferson Avenue, Memphis, TN 38104, U.S.A.

2. Department of Pharmacology, College of Medicine, the University of Tennessee Health Science Center, 874 Union Avenue, Memphis, TN 38163, U.S.A.

3. Department of Pharmaceutical Sciences, College of Pharmacy, the University of Tennessee Health Science Center, 881 Madison Avenue, Memphis, TN 38163, U.S.A.

4. Mass Spectrometry and Proteomics Facility, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205, U.S.A.

5. Department of Physiology, College of Medicine, the University of Tennessee Health Science Center, 894 Union Avenue, Memphis, TN 38163, U.S.A.

6. Children's Foundation Research Institute, Le Bonheur Children's Hospital, Department of Pediatrics, the University of Tennessee Health Science Center, 50 North Dunlap, Memphis, TN 38103, U.S.A.

Abstract

Sterol regulatory element binding protein-1c (SREBP-1c) is a key transcription factor that regulates genes involved in the de novo lipid synthesis and glycolysis pathways. The structure, turnover and transactivation potential of SREBP-1c are regulated by macronutrients and hormones via a cascade of signalling kinases. Using MS, we have identified serine 73 as a novel glycogen synthase kinase-3 (GSK-3) phosphorylation site in the rat SREBP-1c purified from McA-RH7777 hepatoma cells. Our site-specific mutagenesis strategy revealed that the turnover of SREBP-1c, containing wild type, phospho-null (serine to alanine) or phospho-mimetic (serine to aspartic acid) substitutions, was differentially regulated. We show that the S73D mutant of pSREBP-1c, that mimicked a state of constitutive phosphorylation, dissociated from the SREBP-1c–SCAP complex more readily and underwent GSK-3-dependent proteasomal degradation via SCFFbw7 ubiquitin ligase pathway. Pharmacologic inhibition of GSK-3 or knockdown of GSK-3 by siRNA prevented accelerated degradation of SREBP-1c. As demonstrated by MS, SREBP-1c was phosphorylated in vitro by GSK-3β at serine 73. Phosphorylation of serine 73 also occurs in the intact liver. We propose that GSK-3-mediated phosphorylation of serine 73 in the rat SREBP-1c and its concomitant destabilization represents a novel mechanism involved in the inhibition of de novo lipid synthesis in the liver.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry,Biophysics

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