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Items: 1 to 20 of 267

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Artificial evolution of an enzyme active site: structural studies of three highly active mutants of Escherichia coli alkaline phosphatase.

Le Du MH, Lamoure C, Muller BH, Bulgakov OV, Lajeunesse E, Ménez A, Boulain JC.

J Mol Biol. 2002 Mar 1;316(4):941-53.

PMID:
11884134
4.

A revised mechanism for the alkaline phosphatase reaction involving three metal ions.

Stec B, Holtz KM, Kantrowitz ER.

J Mol Biol. 2000 Jun 23;299(5):1303-11.

PMID:
10873454
5.
6.

Active site mutants of Escherichia coli dethiobiotin synthetase: effects of mutations on enzyme catalytic and structural properties.

Yang G, Sandalova T, Lohman K, Lindqvist Y, Rendina AR.

Biochemistry. 1997 Apr 22;36(16):4751-60.

PMID:
9125495
7.
8.
10.

Structure of the wild-type TEM-1 beta-lactamase at 1.55 A and the mutant enzyme Ser70Ala at 2.1 A suggest the mode of noncovalent catalysis for the mutant enzyme.

Stec B, Holtz KM, Wojciechowski CL, Kantrowitz ER.

Acta Crystallogr D Biol Crystallogr. 2005 Aug;61(Pt 8):1072-9. Epub 2005 Jul 20.

PMID:
16041072
11.
13.

3-D structure of a mutant (Asp101-->Ser) of E.coli alkaline phosphatase with higher catalytic activity.

Chen L, Neidhart D, Kohlbrenner WM, Mandecki W, Bell S, Sowadski J, Abad-Zapatero C.

Protein Eng. 1992 Oct;5(7):605-10.

PMID:
1480614
14.

Function of arginine-166 in the active site of Escherichia coli alkaline phosphatase.

Chaidaroglou A, Brezinski DJ, Middleton SA, Kantrowitz ER.

Biochemistry. 1988 Nov 1;27(22):8338-43.

PMID:
3072019
16.

Catalytic cysteine of thymidylate synthase is activated upon substrate binding.

Phan J, Mahdavian E, Nivens MC, Minor W, Berger S, Spencer HT, Dunlap RB, Lebioda L.

Biochemistry. 2000 Jun 13;39(23):6969-78.

PMID:
10841779
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18.

Conserved tyrosine-369 in the active site of Escherichia coli copper amine oxidase is not essential.

Murray JM, Kurtis CR, Tambyrajah W, Saysell CG, Wilmot CM, Parsons MR, Phillips SE, Knowles PF, McPherson MJ.

Biochemistry. 2001 Oct 30;40(43):12808-18.

PMID:
11669617
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