Literature DB >> 17242430

Structure of the human beta-ketoacyl [ACP] synthase from the mitochondrial type II fatty acid synthase.

Caspar Elo Christensen1, Birthe B Kragelund, Penny von Wettstein-Knowles, Anette Henriksen.   

Abstract

Two distinct ways of organizing fatty acid biosynthesis exist: the multifunctional type I fatty acid synthase (FAS) of mammals, fungi, and lower eukaryotes with activities residing on one or two polypeptides; and the dissociated type II FAS of prokaryotes, plastids, and mitochondria with individual activities encoded by discrete genes. The beta-ketoacyl [ACP] synthase (KAS) moiety of the mitochondrial FAS (mtKAS) is targeted by the antibiotic cerulenin and possibly by the other antibiotics inhibiting prokaryotic KASes: thiolactomycin, platensimycin, and the alpha-methylene butyrolactone, C75. The high degree of structural similarity between mitochondrial and prokaryotic KASes complicates development of novel antibiotics targeting prokaryotic KAS without affecting KAS domains of cytoplasmic FAS. KASes catalyze the C(2) fatty acid elongation reaction using either a Cys-His-His or Cys-His-Asn catalytic triad. Three KASes with different substrate specificities participate in synthesis of the C(16) and C(18) products of prokaryotic FAS. By comparison, mtKAS carries out all elongation reactions in the mitochondria. We present the X-ray crystal structures of the Cys-His-His-containing human mtKAS and its hexanoyl complex plus the hexanoyl complex of the plant mtKAS from Arabidopsis thaliana. The structures explain (1) the bimodal (C(6) and C(10)-C(12)) substrate preferences leading to the C(8) lipoic acid precursor and long chains for the membranes, respectively, and (2) the low cerulenin sensitivity of the human enzyme; and (3) reveal two different potential acyl-binding-pocket extensions. Rearrangements taking place in the active site, including subtle changes in the water network, indicate a change in cooperativity of the active-site histidines upon primer binding.

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Year:  2007        PMID: 17242430      PMCID: PMC2203288          DOI: 10.1110/ps.062473707

Source DB:  PubMed          Journal:  Protein Sci        ISSN: 0961-8368            Impact factor:   6.725


  69 in total

1.  Inhibition of fatty acid synthetases by the antibiotic cerulenin.

Authors:  D Vance; I Goldberg; O Mitsuhashi; K Bloch
Journal:  Biochem Biophys Res Commun       Date:  1972-08-07       Impact factor: 3.575

2.  Inhibition of beta-ketoacyl-acyl carrier protein synthases by thiolactomycin and cerulenin. Structure and mechanism.

Authors:  A C Price; K H Choi; R J Heath; Z Li; S W White; C O Rock
Journal:  J Biol Chem       Date:  2000-10-24       Impact factor: 5.157

3.  Platensimycin is a selective FabF inhibitor with potent antibiotic properties.

Authors:  Jun Wang; Stephen M Soisson; Katherine Young; Wesley Shoop; Srinivas Kodali; Andrew Galgoci; Ronald Painter; Gopalakrishnan Parthasarathy; Yui S Tang; Richard Cummings; Sookhee Ha; Karen Dorso; Mary Motyl; Hiranthi Jayasuriya; John Ondeyka; Kithsiri Herath; Chaowei Zhang; Lorraine Hernandez; John Allocco; Angela Basilio; José R Tormo; Olga Genilloud; Francisca Vicente; Fernando Pelaez; Lawrence Colwell; Sang Ho Lee; Bruce Michael; Thomas Felcetto; Charles Gill; Lynn L Silver; Jeffery D Hermes; Ken Bartizal; John Barrett; Dennis Schmatz; Joseph W Becker; Doris Cully; Sheo B Singh
Journal:  Nature       Date:  2006-05-18       Impact factor: 49.962

4.  Fatty acid synthesis. Role of active site histidines and lysine in Cys-His-His-type beta-ketoacyl-acyl carrier protein synthases.

Authors:  Penny von Wettstein-Knowles; Johan G Olsen; Kirsten A McGuire; Anette Henriksen
Journal:  FEBS J       Date:  2006-02       Impact factor: 5.542

5.  Fatty acid synthase inhibitors are chemopreventive for mammary cancer in neu-N transgenic mice.

Authors:  Patricia M Alli; Michael L Pinn; Elizabeth M Jaffee; Jill M McFadden; Francis P Kuhajda
Journal:  Oncogene       Date:  2005-01-06       Impact factor: 9.867

6.  Htd2p/Yhr067p is a yeast 3-hydroxyacyl-ACP dehydratase essential for mitochondrial function and morphology.

Authors:  Alexander J Kastaniotis; Kaija J Autio; Raija T Sormunen; J Kalervo Hiltunen
Journal:  Mol Microbiol       Date:  2004-09       Impact factor: 3.501

7.  Reaction of yeast fatty acid synthetase with iodoacetamide. 3. Malonyl-coenzyme A decarboxylase as product of the reaction of fatty acid synthetase with iodoacetamide.

Authors:  G B Kresze; L Steber; D Oesterhelt; F Lynen
Journal:  Eur J Biochem       Date:  1977-09-15

8.  Fatty acid synthase inhibition triggers apoptosis during S phase in human cancer cells.

Authors:  Weibo Zhou; P Jeanette Simpson; Jill M McFadden; Craig A Townsend; Susan M Medghalchi; Aravinda Vadlamudi; Michael L Pinn; Gabriele V Ronnett; Francis P Kuhajda
Journal:  Cancer Res       Date:  2003-11-01       Impact factor: 12.701

9.  Mechanism of action of the antibiotic thiolactomycin inhibition of fatty acid synthesis of Escherichia coli.

Authors:  T Hayashi; O Yamamoto; H Sasaki; A Kawaguchi; H Okazaki
Journal:  Biochem Biophys Res Commun       Date:  1983-09-30       Impact factor: 3.575

10.  Human fatty acid synthase: properties and molecular cloning.

Authors:  A Jayakumar; M H Tai; W Y Huang; W al-Feel; M Hsu; L Abu-Elheiga; S S Chirala; S J Wakil
Journal:  Proc Natl Acad Sci U S A       Date:  1995-09-12       Impact factor: 11.205

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  10 in total

Review 1.  Recent advances in the chemistry and biology of naturally occurring antibiotics.

Authors:  K C Nicolaou; Jason S Chen; David J Edmonds; Anthony A Estrada
Journal:  Angew Chem Int Ed Engl       Date:  2009       Impact factor: 15.336

2.  Analyses of cobalt-ligand and potassium-ligand bond lengths in metalloproteins: trends and patterns.

Authors:  Natércia F Brás; António J M Ribeiro; Marina Oliveira; Nathália M Paixão; Juan A Tamames; Pedro A Fernandes; Maria J Ramos
Journal:  J Mol Model       Date:  2014-05-22       Impact factor: 1.810

3.  Engineering fatty acid synthases for directed polyketide production.

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4.  Structure of 3-oxoacyl-(acyl-carrier protein) synthase II from Thermus thermophilus HB8.

Authors:  Bagautdin Bagautdinov; Yoko Ukita; Masashi Miyano; Naoki Kunishima
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2008-04-30

5.  4-methylene-2-octyl-5-oxotetrahydrofuran-3-carboxylic acid (C75), an inhibitor of fatty-acid synthase, suppresses the mitochondrial fatty acid synthesis pathway and impairs mitochondrial function.

Authors:  Cong Chen; Xiao Han; Xuan Zou; Yuan Li; Liang Yang; Ke Cao; Jie Xu; Jiangang Long; Jiankang Liu; Zhihui Feng
Journal:  J Biol Chem       Date:  2014-05-01       Impact factor: 5.157

Review 6.  Novel Targets for Antimicrobials.

Authors:  Suchita Gupta; Vaishali Ravindra Undale; Kedar Lakhadive
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7.  Inhibition of the fungal fatty acid synthase type I multienzyme complex.

Authors:  Patrik Johansson; Birgit Wiltschi; Preeti Kumari; Brigitte Kessler; Clemens Vonrhein; Janet Vonck; Dieter Oesterhelt; Martin Grininger
Journal:  Proc Natl Acad Sci U S A       Date:  2008-08-25       Impact factor: 11.205

8.  Structural basis for different specificities of acyltransferases associated with the human cytosolic and mitochondrial fatty acid synthases.

Authors:  Gabor Bunkoczi; Stephanie Misquitta; Xiaoqiu Wu; Wen Hwa Lee; Alexandra Rojkova; Grazyna Kochan; Kathryn L Kavanagh; Udo Oppermann; Stuart Smith
Journal:  Chem Biol       Date:  2009-06-26

Review 9.  Enzymology of standalone elongating ketosynthases.

Authors:  Aochiu Chen; Ziran Jiang; Michael D Burkart
Journal:  Chem Sci       Date:  2022-03-09       Impact factor: 9.825

10.  Engineering fungal de novo fatty acid synthesis for short chain fatty acid production.

Authors:  Jan Gajewski; Renata Pavlovic; Manuel Fischer; Eckhard Boles; Martin Grininger
Journal:  Nat Commun       Date:  2017-03-10       Impact factor: 14.919

  10 in total

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