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Originally published In Press as doi:10.1074/jbc.M004788200 on November 17, 2000
J. Biol. Chem., Vol. 276, Issue 6, 3833-3839, February 9, 2001
Dissection of the Bifunctional Escherichia coli
N-Acetylglucosamine-1-phosphate Uridyltransferase Enzyme
into Autonomously Functional Domains and Evidence That Trimerization
Is Absolutely Required for Glucosamine-1-phosphate
Acetyltransferase Activity and Cell Growth*
Frédérique
Pompeo ,
Yves
Bourne§,
Jean
van
Heijenoort ,
Florence
Fassy¶, and
Dominique
Mengin-Lecreulx
From the Laboratoire des Enveloppes
Bactériennes et Antibiotiques, UMR 8619, CNRS, Université
Paris-Sud, Bâtiment 430, 91405 Orsay Cedex,
§ Architecture et Fonction des Macromolécules
Biologiques (AFMB)-CNRS, 13 chemin Joseph Aiguier, 13402 Marseille
Cedex 20, and ¶ Aventis Pharma-Hoechst Marion Roussel, 102 route
de Noisy 93230, Romainville, France
The bifunctional
N-acetylglucosamine-1-phosphate uridyltransferase
(GlmU) enzyme catalyzes both the acetylation of glucosamine 1-phosphate and the uridylation of N-acetylglucosamine
1-phosphate, two subsequent steps in the pathway for
UDP-N-acetylglucosamine synthesis in bacteria. In our
previous work describing its initial characterization in
Escherichia coli, we proposed that the 456-amino acid (50.1 kDa) protein might possess separate uridyltransferase (N-terminal) and
acetyltransferase (C-terminal) domains. In the present study, we
confirm this hypothesis by expression of the two independently folding
and functional domains. A fragment containing the N-terminal 331 amino
acids (Tr331, 37.1 kDa) has uridyltransferase activity only, with
steady-state kinetic parameters similar to the full-length protein.
Further deletion of 80 amino acid residues at the C terminus results in
a 250-amino acid fragment (28.6 kDa) still exhibiting significant
uridyltransferase activity. Conversely, a fragment containing the 233 C-terminal amino acids (24.7 kDa) exhibits acetyltransferase activity
exclusively. None of these individual domains could complement a
chromosomal glmU mutation, indicating that each of the two
activities is essential for cell viability. Analysis of truncated GlmU
proteins by gel filtration further localizes regions of the protein
involved in its trimeric organization. Interestingly, overproduction of
the truncated Tr331 protein in a wild-type strain results in a rapid
depletion of endogenous acetyltransferase activity, an arrest of
peptidoglycan synthesis and cell lysis. It is shown that the
acetyltransferase activity of the full-length protein is abolished once
trapped within heterotrimers formed in presence of the truncated
protein, suggesting that this enzyme activity absolutely requires a
trimeric organization and that the catalytic site involves regions of
contact between adjacent monomers. Data are discussed in connection
with the recently obtained crystal structure of the truncated Tr331 protein.
*
This work was supported by CNRS Grant EP1088, Grant
97.C.0177 "Biotechnologies" from the Ministère de
l'Education Nationale de la Recherche et de la Technologie, and by a
grant-in-aid from Hoechst Marion Roussel (to F. P.).The costs of publication of this
article were defrayed in part by the
payment of page charges. The article
must therefore be hereby marked
"advertisement" in accordance with 18 U.S.C. Section
1734 solely to indicate this fact.
To whom correspondence should be addressed. Tel.:
33-1-69-15-61-34; Fax: 33-1-69-85-37-15; E-mail:
dominique.mengin-lecreulx@ebp.u-psud.fr.
Copyright © 2001 by The American Society for Biochemistry and Molecular Biology, Inc.

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Copyright © 2001 by the American Society for Biochemistry and Molecular Biology.
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