Structure-guided engineering of xylitol dehydrogenase cosubstrate specificity

被引:45
作者
Ehrensberger, AH [1 ]
Elling, RA [1 ]
Wilson, DK [1 ]
机构
[1] Univ Calif Davis, Sect Mol & Cellular Biol, Davis, CA 95616 USA
基金
美国国家卫生研究院;
关键词
D O I
10.1016/j.str.2005.11.016
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
Xylitol dehydrogenase (XDH) is one of several enzymes responsible for assimilating xylose into eukaryotic metabolism and is useful for fermentation of xylose contained in agricultural byproducts to produce ethanol. For efficient xylose utilization at high flux rates, cosubstrates should be recycled between the NAD+-specific XDH and the NADPH-preferring xylose reductase, another enzyme in the pathway. To understand and alter the cosubstrate specificity of XDH, we determined the crystal structure of the Gluconobacter oxydans holoenzyme to 1.9 angstrom resolution. The structure reveals that NAD+ specificity is largely conferred by Asp38, which interacts with the hydroxyls of the adenosine ribose. Met39 stacked under the purine ring and was also located near the 2' hydroxyl. Based on the location of these residues and on sequence alignments with related enzymes of various cosubstrate specificities, we constructed a double mutant (D38S/M39R) that was able to exclusively use NADP(+), with no loss of activity.
引用
收藏
页码:567 / 575
页数:9
相关论文
共 38 条
[11]   Porcine carbonyl reductase - Structural basis for a functional monomer in short chain dehydrogenases/reductases [J].
Ghosh, D ;
Sawicki, M ;
Pletnev, V ;
Erman, M ;
Ohno, S ;
Nakajin, S ;
Duax, WL .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (21) :18457-18463
[12]  
GRIMSHAW CE, 1992, J BIOL CHEM, V267, P15334
[13]   A SIMPLE METHOD FOR SITE-DIRECTED MUTAGENESIS USING THE POLYMERASE CHAIN-REACTION [J].
HEMSLEY, A ;
ARNHEIM, N ;
TONEY, MD ;
CORTOPASSI, G ;
GALAS, DJ .
NUCLEIC ACIDS RESEARCH, 1989, 17 (16) :6545-6551
[14]   The crystallographic structure of the mannitol 2-dehydrogenase NADP+ binary complex from Agaricus bisporus [J].
Hörer, S ;
Stoop, J ;
Mooibroek, H ;
Baumann, U ;
Sassoon, J .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (29) :27555-27561
[15]   Metabolic engineering for improved fermentation of pentoses by yeasts [J].
Jeffries, TW ;
Jin, YS .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2004, 63 (05) :495-509
[16]   IMPROVED METHODS FOR BUILDING PROTEIN MODELS IN ELECTRON-DENSITY MAPS AND THE LOCATION OF ERRORS IN THESE MODELS [J].
JONES, TA ;
ZOU, JY ;
COWAN, SW ;
KJELDGAARD, M .
ACTA CRYSTALLOGRAPHICA SECTION A, 1991, 47 :110-119
[17]   Structure of xylose reductase bound to NAD+ and the basis for single and dual co-substrate specificity in family 2 aldo-keto reductases [J].
Kavanagh, KL ;
Klimacek, M ;
Nidetzky, B ;
Wilson, DK .
BIOCHEMICAL JOURNAL, 2003, 373 :319-326
[18]   Rapid automated molecular replacement by evolutionary search [J].
Kissinger, CR ;
Gehlhaar, DK ;
Fogel, DB .
ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 1999, 55 :484-491
[19]   MOLSCRIPT - A PROGRAM TO PRODUCE BOTH DETAILED AND SCHEMATIC PLOTS OF PROTEIN STRUCTURES [J].
KRAULIS, PJ .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1991, 24 :946-950
[20]   Metabolic engineering of a xylose-isomerase-expressing Saccharomyces cerevisiae strain for rapid anaerobic xylose fermentation [J].
Kuyper, M ;
Hartog, MMP ;
Toirkens, MJ ;
Almering, MJH ;
Winkler, AA ;
van Dijken, JP ;
Pronk, JT .
FEMS YEAST RESEARCH, 2005, 5 (4-5) :399-409