Structure of the Bacillus agaradherans family 5 endoglucanase at 1.6 Å and its cellobiose complex at 2.0 Å resolution

被引:83
作者
Davies, GJ [1 ]
Dauter, M
Brzozowski, AM
Bjornvad, ME
Andersen, KV
Schülein, M
机构
[1] Univ York, Dept Chem, York YO1 5DD, N Yorkshire, England
[2] Novo Nordisk AS, DK-2880 Bagsvaerd, Denmark
关键词
D O I
10.1021/bi972162m
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
The enzymatic degradation of cellulose, by cellulases, is not only industrially important in the food, paper, and textile industries but also a potentially useful method for the environmentally friendly recycling of municipal waste, An understanding of the structural and mechanistic requirements for the hydrolysis of the beta-1,4 glycosidic bonds of cellulose is an essential prerequisite for beneficial engineering of cellulases for these processes, Cellulases have been classified into 13 of the 62 glycoside hydrolase families [Henrissat, B., and Bairoch, A. (1996) Biochem J. 316, 695-696]. The structure of the catalytic core of the family 5 endoglucanase, Ce15A, from the alkalophilic Bacillus agaradherans has been solved by multiple isomorphous replacement at 1.6 Angstrom resolution. Cel5A has the (alpha/beta)(8) barrel structure and signature structural features typical of the grouping of glycoside hydrolase families known as dan GH-A, with the catalytic acid/base Glu 139 and nudeophile Glu 228 on barrel strands beta 4 and beta 7 as expected, In addition to the native enzyme, the 2.0 Angstrom resolution structure of the cellobiose-bound form of the enzyme has also been determined, Cellobiose binds preferentially in the -2 and -3 subsites of the enzyme. Kinetic studies on the isolated catalytic core domain of Cel5A, using a series of reduced cellodextrins as substrates, suggest approximately five to six binding sites, consistent with the shape and size of the cleft observed by crystallography.
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页码:1926 / 1932
页数:7
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