Analysis of acetylation stoichiometry suggests that SIRT3 repairs nonenzymatic acetylation lesions

被引:120
作者
Weinert, Brian T. [1 ]
Moustafa, Tarek [2 ]
Iesmantavicius, Vytautas [1 ]
Zechner, Rudolf [3 ]
Choudhary, Chunaram [1 ]
机构
[1] Univ Copenhagen, Fac Hlth Sci, NNF Ctr Prot Res, Copenhagen, Denmark
[2] Med Univ Graz, Div Gastroenterol & Hepatol, Graz, Austria
[3] Graz Univ, Inst Mol Biosci, Graz, Austria
关键词
acetylation; mass spectrometry; proteomics; SIRT3; stoichiometry; MITOCHONDRIAL PROTEIN ACETYLATION; FATTY-ACID OXIDATION; LYSINE ACETYLATION; CALORIE RESTRICTION; CELLULAR-METABOLISM; QUANTIFICATION; PROTEOMICS; ACYLATION; PHOSPHORYLATION; SUCCINYLATION;
D O I
10.15252/embj.201591271
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Acetylation is frequently detected on mitochondrial enzymes, and the sirtuin deacetylase SIRT3 is thought to regulate metabolism by deacetylating mitochondrial proteins. However, the stoichiometry of acetylation has not been studied and is important for understanding whether SIRT3 regulates or suppresses acetylation. Using quantitative mass spectrometry, we measured acetylation stoichiometry in mouse liver tissue and found that SIRT3 suppressed acetylation to a very low stoichiometry at its target sites. By examining acetylation changes in the liver, heart, brain, and brown adipose tissue of fasted mice, we found that SIRT3-targeted sites were mostly unaffected by fasting, a dietary manipulation that is thought to regulate metabolism through SIRT3-dependent deacetylation. Globally increased mitochondrial acetylation in fasted liver tissue, higher stoichiometry at mitochondrial acetylation sites, and greater sensitivity of SIRT3-targeted sites to chemical acetylation invitro and fasting-induced acetylation invivo, suggest a nonenzymatic mechanism of acetylation. Our data indicate that most mitochondrial acetylation occurs as a low-level nonenzymatic protein lesion and that SIRT3 functions as a protein repair factor that removes acetylation lesions from lysine residues. s in wild-type mice.
引用
收藏
页码:2620 / 2632
页数:13
相关论文
共 48 条
[21]   SIRT5-Mediated Lysine Desuccinylation Impacts Diverse Metabolic Pathways [J].
Park, Jeongsoon ;
Chen, Yue ;
Tishkoff, Daniel X. ;
Peng, Chao ;
Tan, Minjia ;
Dai, Lunzhai ;
Xie, Zhongyu ;
Zhang, Yi ;
Zwaans, Bernadette M. M. ;
Skinner, Mary E. ;
Lombard, David B. ;
Zhao, Yingming .
MOLECULAR CELL, 2013, 50 (06) :919-930
[22]   Mitochondrial protein acetylation is driven by acetyl-CoA from fatty acid oxidation [J].
Pougovkina, Olga ;
te Brinke, Heleen ;
Ofman, Rob ;
van Cruchten, Arno G. ;
Kulik, Wim ;
Wanders, Ronald J. A. ;
Houten, Sander M. ;
de Boer, Vincent C. J. .
HUMAN MOLECULAR GENETICS, 2014, 23 (13) :3513-3522
[23]   Calorie Restriction Reduces Oxidative Stress by SIRT3-Mediated SOD2 Activation [J].
Qiu, Xiaolei ;
Brown, Katharine ;
Hirschey, Matthew D. ;
Verdin, Eric ;
Chen, Danica .
CELL METABOLISM, 2010, 12 (06) :662-667
[24]   SIRT5 Regulates the Mitochondrial Lysine Succinylome and Metabolic Networks [J].
Rardin, Matthew J. ;
He, Wenjuan ;
Nishida, Yuya ;
Newman, John C. ;
Carrico, Chris ;
Danielson, Steven R. ;
Guo, Ailan ;
Gut, Philipp ;
Sahu, Alexandria K. ;
Li, Biao ;
Uppala, Radha ;
Fitch, Mark ;
Riiff, Timothy ;
Zhu, Lei ;
Zhou, Jing ;
Mulhern, Daniel ;
Stevens, Robert D. ;
Ilkayeva, Olga R. ;
Newgard, Christopher B. ;
Jacobson, Matthew P. ;
Hellerstein, Marc ;
Goetzman, Eric S. ;
Gibson, Bradford W. ;
Verdin, Eric .
CELL METABOLISM, 2013, 18 (06) :920-933
[25]   Label-free quantitative proteomics of the lysine acetylome in mitochondria identifies substrates of SIRT3 in metabolic pathways [J].
Rardin, Matthew J. ;
Newman, John C. ;
Held, Jason M. ;
Cusack, Michael P. ;
Sorensen, Dylan J. ;
Li, Biao ;
Schilling, Birgit ;
Mooney, Sean D. ;
Kahn, C. Ronald ;
Verdin, Eric ;
Gibson, Bradford W. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (16) :6601-6606
[26]   Calorie restriction alters mitochondrial protein acetylation [J].
Schwer, Bjoern ;
Eckersdorff, Mark ;
Li, Yu ;
Silva, Jeffrey C. ;
Fermin, Damian ;
Kurtev, Martin V. ;
Giallourakis, Cosmas ;
Comb, Michael J. ;
Alt, Frederick W. ;
Lombard, David B. .
AGING CELL, 2009, 8 (05) :604-606
[27]   Identification of a molecular component of the mitochondrial acetyltransferase programme: a novel role for GCN5L1 [J].
Scott, Iain ;
Webster, Bradley R. ;
Li, Jian H. ;
Sack, Michael N. .
BIOCHEMICAL JOURNAL, 2012, 443 :655-661
[28]   Functions of Site-Specific Histone Acetylation and Deacetylation [J].
Shahbazian, Mona D. ;
Grunstein, Michael .
ANNUAL REVIEW OF BIOCHEMISTRY, 2007, 76 :75-100
[29]   SIRT3, a mitochondrial sirtuin deacetylase, regulates mitochondrial function and thermogenesis in brown adipocytes [J].
Shi, T ;
Wang, F ;
Stieren, E ;
Tong, Q .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (14) :13560-13567
[30]   SIRT3 Deacetylates Mitochondrial 3-Hydroxy-3-Methylglutaryl CoA Synthase 2 and Regulates Ketone Body Production [J].
Shimazu, Tadahiro ;
Hirschey, Matthew D. ;
Hua, Lan ;
Dittenhafer-Reed, Kristin E. ;
Schwer, Bjoern ;
Lombard, David B. ;
Li, Yu ;
Bunkenborg, Jakob ;
Alt, Frederick W. ;
Denu, John M. ;
Jacobson, Matthew P. ;
Verdin, Eric .
CELL METABOLISM, 2010, 12 (06) :654-661