Structure of p300 in complex with acyl-CoA variants

被引:0
|
作者
Kaczmarska Z. [1 ]
Ortega E. [1 ]
Goudarzi A. [2 ]
Huang H. [3 ]
Kim S. [3 ]
Márquez J.A. [1 ]
Zhao Y. [3 ]
Khochbin S. [2 ]
Panne D. [1 ]
机构
[1] European Molecular Biology Laboratory, Grenoble
[2] Université Grenoble Alpes, Institut Albert Bonniot, Grenoble
[3] Ben May Department of Cancer Research, University of Chicago, Chicago, IL
关键词
D O I
10.1038/nchembio.2217
中图分类号
学科分类号
摘要
Histone acetylation plays an important role in transcriptional activation. Histones are also modified by chemically diverse acylations that are frequently deposited by p300, a transcriptional coactivator that uses a number of different acyl-CoA cofactors. Here we report that while p300 is a robust acetylase, its activity gets weaker with increasing acyl-CoA chain length. Crystal structures of p300 in complex with propionyl-, crotonyl-, or butyryl-CoA show that the aliphatic portions of these cofactors are bound in the lysine substrate-binding tunnel in a conformation that is incompatible with substrate transfer. Lysine substrate binding is predicted to remodel the acyl-CoA ligands into a conformation compatible with acyl-chain transfer. This remodeling requires that the aliphatic portion of acyl-CoA be accommodated in a hydrophobic pocket in the enzymes active site. The size of the pocket and its aliphatic nature exclude long-chain and charged acyl-CoA variants, presumably explaining the cofactor preference for p300. © 2016 Nature America, Inc., part of Springer Nature. All rights reserved.
引用
收藏
页码:21 / 29
页数:8
相关论文
共 50 条
  • [21] BRAIN ACYL-COA THIOESTERASE
    LUTZE, LH
    EDWARDS, MR
    PROCEEDINGS OF THE AUSTRALIAN BIOCHEMICAL SOCIETY, 1977, 10 : 19 - 19
  • [22] Acyl-CoA: Cholesterol acyl transferase inhibitors
    Lloyd, AW
    DRUG DISCOVERY TODAY, 1996, 1 (01) : 40 - 40
  • [23] QUANTITATION OF COASH AND ACYL-COA
    BIEBER, LL
    ANALYTICAL BIOCHEMISTRY, 1992, 204 (02) : 228 - 230
  • [24] Acyl-CoA Metabolism and Partitioning
    Grevengoed, Trisha J.
    Klett, Eric L.
    Coleman, Rosalind A.
    ANNUAL REVIEW OF NUTRITION, VOL 34, 2014, 34 : 1 - 30
  • [25] Membrane partitioning of acyl-CoA esters and reversal by acyl-CoA binding protein studied by AFM
    Simonsen, AC
    Jensen, UB
    Færgeman, N
    Knudsen, J
    Mouritsen, OG
    BIOPHYSICAL JOURNAL, 2003, 84 (02) : 199A - 199A
  • [26] Engineering long chain acyl-CoA substrate specificity in medium chain acyl-CoA dehydrogenase
    Srivastava, DK
    Qin, L
    Gopalan, KV
    Galitz, DS
    Peterson, KL
    FASEB JOURNAL, 1998, 12 (08): : A1365 - A1365
  • [27] ACYL-COA SYNTHETASE AND ACYL-COA OXIDASE FOR DETERMINATION OF SERUM FREE FATTY-ACIDS
    SHIMIZU, S
    TANI, Y
    YAMADA, H
    ENZYME ENGINEERING, 1982, 6 : 467 - 468
  • [28] STRUCTURE OF A MYCOBACTERIAL POLYSACCHARIDE FATTY ACYL-COA COMPLEX - NUCLEAR MAGNETIC-RESONANCE STUDIES
    MAGGIO, JE
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1980, 77 (05): : 2582 - 2586
  • [29] THE LONG-CHAIN ACYL-COA SYNTHETASE - STRUCTURE AND REGULATION
    SUZUKI, H
    YAMAMOTO, T
    ANNALS OF THE NEW YORK ACADEMY OF SCIENCES-SERIES, 1990, 598 : 560 - 560
  • [30] ACYL-COA REDUCTASE AND ACYL-COA - FATTY ALCOHOL ACYL TRANSFERASE IN THE MICROSOMAL PREPARATION FROM THE BOVINE MEIBOMIAN GLAND
    KOLATTUKUDY, PE
    ROGERS, L
    JOURNAL OF LIPID RESEARCH, 1986, 27 (04) : 404 - 411