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An evolutionary route to xylanase process fitness.

Authors :
Palackal N
Brennan Y
Callen WN
Dupree P
Frey G
Goubet F
Hazlewood GP
Healey S
Kang YE
Kretz KA
Lee E
Tan X
Tomlinson GL
Verruto J
Wong VW
Mathur EJ
Short JM
Robertson DE
Steer BA
Source :
Protein science : a publication of the Protein Society [Protein Sci] 2004 Feb; Vol. 13 (2), pp. 494-503. Date of Electronic Publication: 2004 Jan 10.
Publication Year :
2004

Abstract

Directed evolution technologies were used to selectively improve the stability of an enzyme without compromising its catalytic activity. In particular, this article describes the tandem use of two evolution strategies to evolve a xylanase, rendering it tolerant to temperatures in excess of 90 degrees C. A library of all possible 19 amino acid substitutions at each residue position was generated and screened for activity after a temperature challenge. Nine single amino acid residue changes were identified that enhanced thermostability. All 512 possible combinatorial variants of the nine mutations were then generated and screened for improved thermal tolerance under stringent conditions. The screen yielded eleven variants with substantially improved thermal tolerance. Denaturation temperature transition midpoints were increased from 61 degrees C to as high as 96 degrees C. The use of two evolution strategies in combination enabled the rapid discovery of the enzyme variant with the highest degree of fitness (greater thermal tolerance and activity relative to the wild-type parent).

Details

Language :
English
ISSN :
0961-8368
Volume :
13
Issue :
2
Database :
MEDLINE
Journal :
Protein science : a publication of the Protein Society
Publication Type :
Academic Journal
Accession number :
14718652
Full Text :
https://doi.org/10.1110/ps.03333504