Structure of 3-ketoacyl-(acyl-carrier-protein) reductase from Rickettsia prowazekii at 2.25 Å resolution

被引:11
|
作者
Subramanian, Sandhya [1 ,2 ]
Abendroth, Jan [1 ,3 ]
Phan, Isabelle Q. H. [1 ,2 ]
Olsen, Christian [1 ,2 ]
Staker, Bart L. [1 ,3 ]
Napuli, A. [1 ,4 ]
Van Voorhis, Wesley C. [1 ,4 ]
Stacy, Robin [1 ,2 ]
Myler, Peter J. [1 ,2 ]
机构
[1] SSGCID, Seattle, WA 98125 USA
[2] Seattle Biomed Res Inst, Seattle, WA 98125 USA
[3] Emerald BioStruct Inc, Bainbridge Isl, WA 98110 USA
[4] Univ Washington, Dept Biochem, Seattle, WA 98195 USA
来源
ACTA CRYSTALLOGRAPHICA SECTION F-STRUCTURAL BIOLOGY COMMUNICATIONS | 2011年 / 67卷
基金
美国国家卫生研究院;
关键词
CRYSTAL-STRUCTURE; EPIDEMIC TYPHUS; ACTIVE-SITE; INHIBITORS; MABA; FABG;
D O I
10.1107/S1744309111030673
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Rickettsia prowazekii, a parasitic Gram-negative bacterium, is in the second-highest biodefense category of pathogens of the National Institute of Allergy and Infectious Diseases, but only a handful of structures have been deposited in the PDB for this bacterium; to date, all of these have been solved by the SSGCID. Owing to its small genome (about 800 protein-coding genes), it relies on the host for many basic biosynthetic processes, hindering the identification of potential antipathogenic drug targets. However, like many bacteria and plants, its metabolism does depend upon the type II fatty-acid synthesis (FAS) pathway for lipogenesis, whereas the predominant form of fatty-acid biosynthesis in humans is via the type I pathway. Here, the structure of the third enzyme in the FAS pathway, 3-ketoacyl-(acyl-carrier-protein) reductase, is reported at a resolution of 2.25 angstrom. Its fold is highly similar to those of the existing structures from some well characterized pathogens, such as Mycobacterium tuberculosis and Burkholderia pseudomallei, but differs significantly from the analogous mammalian structure. Hence, drugs known to target the enzymes of pathogenic bacteria may serve as potential leads against Rickettsia, which is responsible for spotted fever and typhus and is found throughout the world.
引用
收藏
页码:1118 / 1122
页数:5
相关论文
共 33 条
  • [1] Kinetic mechanism of 3-ketoacyl-(acyl-carrier-protein) reductase from Synechococcus sp strain PCC 7942: A useful enzyme for the production of chiral alcohols
    Hoelsch, Kathrin
    Weuster-Botz, Dirk
    JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 2011, 69 (3-4) : 89 - 94
  • [2] Dissecting the Structural Elements for the Activation of β-Ketoacyl-(Acyl Carrier Protein) Reductase from Vibrio cholerae
    Hou, Jing
    Zheng, Heping
    Chruszcz, Maksymilian
    Zimmerman, Matthew D.
    Shumilin, Igor A.
    Osinski, Tomasz
    Demas, Matt
    Grimshaw, Sarah
    Minora, Wladek
    JOURNAL OF BACTERIOLOGY, 2016, 198 (03) : 463 - 476
  • [3] Heterologous expression, purification, and partial characterisation of the apicoplast protein 3-oxoacyl-[acyl-carrier-protein] reductase from Toxoplasma gondii
    Aygun, Can
    Kocer, Sinem
    Danis, Ozkan
    Cubuk, Soner
    Mutlu, Ozal
    PROTEIN EXPRESSION AND PURIFICATION, 2023, 202
  • [4] Structural rearrangements occurring upon cofactor binding in the Mycobacterium smegmatis β-ketoacyl-acyl carrier protein reductase MabA
    Kussau, Tanja
    Flipo, Marion
    Van Wyk, Niel
    Viljoen, Albertus
    Olieric, Vincent
    Kremer, Laurent
    Blaise, Mickael
    ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2018, 74 : 383 - 393
  • [5] Comparative structure, dynamics and evolution of acyl-carrier proteins from Borrelia burgdorferi, Brucella melitensis and Rickettsia prowazekii
    Barnwal, Ravi P.
    Kaur, Mandeep
    Heckert, Alec
    Gartia, Janeka
    Varani, Gabriele
    BIOCHEMICAL JOURNAL, 2020, 477 (02) : 491 - 508
  • [6] Analyses of co-operative transitions in Plasmodium falciparum β-ketoacyl acyl carrier protein reductase upon co-factor and acyl carrier protein binding
    Karmodiya, Krishanpal
    Surolia, Namita
    FEBS JOURNAL, 2006, 273 (17) : 4093 - 4103
  • [7] Structure and substrate specificity of -ketoacyl-acyl carrier protein synthase III from Acinetobacter baumannii
    Lee, Woo Cheol
    Jeong, Min-Cheol
    Lee, Yeongjoon
    Kwak, Chulhee
    Lee, Jee-Young
    Kim, Yangmee
    MOLECULAR MICROBIOLOGY, 2018, 108 (05) : 567 - 577
  • [8] Structural characterization and comparison of three acyl-carrier-protein synthases from pathogenic bacteria
    Halavaty, Andrei S.
    Kim, Youngchang
    Minasov, George
    Shuvalova, Ludmilla
    Dubrovska, Ievgeniia
    Winsor, James
    Zhou, Min
    Onopriyenko, Olena
    Skarina, Tatiana
    Papazisi, Leka
    Kwon, Keehwan
    Peterson, Scott N.
    Joachimiak, Andrzej
    Savchenko, Alexei
    Anderson, Wayne F.
    ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2012, 68 : 1359 - 1370
  • [9] Phosphorylation of the Mycobacterium tuberculosis β-Ketoacyl-Acyl Carrier Protein Reductase MabA Regulates Mycolic Acid Biosynthesis
    Veyron-Churlet, Romain
    Zanella-Cleon, Isabelle
    Cohen-Gonsaud, Martin
    Molle, Virginie
    Kremer, Laurent
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2010, 285 (17) : 12714 - 12725
  • [10] Crystal structure of a 3-oxoacyl-(acyl carrier protein) reductase (BA3989) from Bacillus anthracis at 2.4-Å resolution
    Zaccai, Nathan R.
    Carter, Lester G.
    Berrow, Nick S.
    Sainsbury, Sarah
    Nettleship, Joanne E.
    Walter, Thomas S.
    Harlos, Karl
    Owens, Ray J.
    Wilson, Keith S.
    Stuart, David I.
    Esnouf, Robert M.
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2008, 70 (02) : 562 - 567