N-terminal acetylome analysis reveals the specificity of Naa50 (Nat5) and suggests a kinetic competition between N-terminal acetyltransferases and methionine aminopeptidases

被引:50
作者
Van Damme, Petra [1 ,2 ]
Hole, Kristine [3 ,4 ]
Gevaert, Kris [1 ,2 ]
Arnesen, Thomas [3 ,5 ]
机构
[1] VIB, Dept Med Prot Res, Ghent, Belgium
[2] Univ Ghent, Dept Biochem, B-B9000 Ghent, Belgium
[3] Univ Bergen, Dept Mol Biol, Bergen, Norway
[4] Univ Bergen, Dept Clin Sci, Bergen, Norway
[5] Haukeland Hosp, Dept Surg, N-5021 Bergen, Norway
基金
比利时弗兰德研究基金会;
关键词
Acetylation; Methionine aminopeptidase; Naa50; NAT; Nt-acetylome; N-terminal acetyltransferase; N-terminomics; NASCENT POLYPEPTIDE-CHAINS; ALPHA-ACETYLTRANSFERASE; IN-VIVO; ACETYLATION; IDENTIFICATION; PROTEOMICS; YEAST; PROTEINS; COMPLEX; PEPTIDES;
D O I
10.1002/pmic.201400575
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Cotranslational N-terminal (Nt-) acetylation of nascent polypeptides is mediated by N-terminal acetyltransferases (NATs). The very N-terminal amino acid sequence largely determines whether or not a given protein is Nt-acetylated. Currently, there are six distinct NATs characterized, NatA-NatF, in humans of which the in vivo substrate specificity of Naa50 (Nat5)/NatE, an alternative catalytic subunit of the human NatA, so far remained elusive. In this study, we quantitatively compared the Nt-acetylomes of wild-type yeast S. cerevisiae expressing the endogenous yeast Naa50 (yNaa50), the congenic strain lacking yNaa50, and an otherwise identical strain expressing human Naa50 (hNaa50). Six canonical yeast NatA substrates were Nt-acetylated less in yeast lacking yNaa50 than in wild-type yeast. In contrast, the ectopically expressed hNaa50 resulted, predominantly, in the Nt-acetylation of N-terminal Met (iMet) starting N-termini, including iMet-Lys, iMet-Val, iMet-Ala, iMet-Tyr, iMet-Phe, iMet-Leu, iMet-Ser, and iMet-Thr N-termini. This identified hNaa50 as being similar, in its substrate specificity, to the previously characterized hNaa60/NatF. In addition, the identification, in yNaa50-lacking yeast expressing hNaa50, of Nt-acetylated iMet followed by a small residue such as Ser, Thr, Ala, or Val, revealed a kinetic competition between Naa50 and Met-aminopeptidases (MetAPs), and implied that Nt-acetylated iMet followed by a small residue cannot be removed by MetAPs, a deduction supported by our in vitro data. As such, Naa50-mediated Nt-acetylation may act to retain the iMet of proteins of otherwise MetAP susceptible N-termini and the fraction of retained and Nt-acetylated iMet (followed by a small residue) in such a setting would be expected to depend on the relative levels of ribosome-associated Naa50/NatA and MetAPs.
引用
收藏
页码:2436 / 2446
页数:11
相关论文
共 50 条
[1]   An Organellar Nα-Acetyltransferase, Naa60, Acetylates Cytosolic N Termini of Transmembrane Proteins and Maintains Golgi Integrity [J].
Aksnes, Henriette ;
Van Damme, Petra ;
Goris, Marianne ;
Starheim, Kristian K. ;
Marie, Michael ;
Stove, Svein Isungset ;
Hoel, Camilla ;
Kalvik, Thomas Vikestad ;
Hole, Kristine ;
Glomnes, Nina ;
Furnes, Clemens ;
Ljostveit, Sonja ;
Ziegler, Mathias ;
Niere, Marc ;
Gevaert, Kris ;
Arnesen, Thomas .
CELL REPORTS, 2015, 10 (08) :1362-1374
[2]   COTRANSLATIONAL PROCESSING AND PROTEIN-TURNOVER IN EUKARYOTIC CELLS [J].
ARFIN, SM ;
BRADSHAW, RA .
BIOCHEMISTRY, 1988, 27 (21) :7979-7984
[3]   Cloning and characterization of hNAT5/hSAN:: An evolutionarily conserved component of the NatA protein N-α-acetyltransferase complex [J].
Arnesen, T ;
Anderson, D ;
Torsvik, J ;
Halseth, HB ;
Varhaug, JE ;
Lillehaug, JR .
GENE, 2006, 371 (02) :291-295
[4]   Identification and characterization of the human ARD1-NATH protein acetyltransferase complex [J].
Arnesen, T ;
Anderson, D ;
Baldersheim, C ;
Lanotte, M ;
Varhaug, JE ;
Lillehaug, JR .
BIOCHEMICAL JOURNAL, 2005, 386 :433-443
[5]   Proteomics analyses reveal the evolutionary conservation and divergence of N-terminal acetyltransferases from yeast and humans [J].
Arnesen, Thomas ;
Van Damme, Petra ;
Polevoda, Bogdan ;
Helsens, Kenny ;
Evjenth, Rune ;
Colaert, Niklaas ;
Varhaug, Jan Erik ;
Vandekerckhove, Joel ;
Lillehaug, Johan R. ;
Sherman, Fred ;
Gevaert, Kris .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (20) :8157-8162
[6]   Comparative Large Scale Characterization of Plant versus Mammal Proteins Reveals Similar and Idiosyncratic N-α-Acetylation Features [J].
Bienvenut, Willy V. ;
Sumpton, David ;
Martinez, Aude ;
Lilla, Sergio ;
Espagne, Christelle ;
Meinnel, Thierry ;
Giglione, Carmela .
MOLECULAR & CELLULAR PROTEOMICS, 2012, 11 (06)
[7]   N-terminal Protein Processing: A Comparative Proteogenomic Analysis [J].
Bonissone, Stefano ;
Gupta, Nitin ;
Romine, Margaret ;
Bradshaw, Ralph A. ;
Pevzner, Pavel A. .
MOLECULAR & CELLULAR PROTEOMICS, 2013, 12 (01) :14-28
[8]  
BROWN JL, 1976, J BIOL CHEM, V251, P1009
[9]   Application of reverse-phase HPLC to quantify oligopeptide acetylation eliminates interference from unspecific acetyl CoA hydrolysis [J].
Rune Evjenth ;
Kristine Hole ;
Mathias Ziegler ;
Johan R Lillehaug .
BMC Proceedings, 3 (Suppl 6)
[10]   Human Naa50p (Nat5/San) Displays Both Protein Nα- and Nε-Acetyltransferase Activity [J].
Evjenth, Rune ;
Hole, Kristine ;
Karlsen, Odd A. ;
Ziegler, Mathias ;
Arnesen, Thomas ;
Lillehaug, Johan R. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (45) :31122-31129