Domain-specific characteristics of the bifunctional key enzyme of sialic acid biosynthesis, UDP-N-acetylglucosamine 2-epimerase/N-acetylmannosamine kinase

Author:

BLUME Astrid1,WEIDEMANN Wenke1,STELZL Ulrich2,WANKER Erich E.2,LUCKA Lothar1,DONNER Peter3,REUTTER Werner1,HORSTKORTE Rüdiger1,HINDERLICH Stephan1

Affiliation:

1. Charité – Universitätsmedizin Berlin, Campus Benjamin Franklin, Institut für Biochemie und Molekularbiologie, Arnimallee 22, 14195 Berlin-Dahlem, Germany

2. Neuroproteomics, Max-Delbrück-Centrum, Robert-Rössle-Strasse 10, 13125 Berlin-Buch, Germany

3. Research Laboratories of Schering AG, 13342 Berlin, Germany

Abstract

UDP-N-acetylglucosamine 2-epimerase/N-acetylmannosamine kinase is a bifunctional enzyme, which initiates and regulates sialic acid biosynthesis. Sialic acids are important compounds of mammalian glycoconjugates, mediating several biological processes, such as cell–cell or cell–matrix interactions. In order to characterize the function of UDP-N-acetylglucosamine 2-epimerase/N-acetylmannosamine kinase, a number of deletion mutants were generated, lacking either parts of the N-terminal epimerase or the C-terminal kinase domain. N-terminal deletion of only 39 amino acids results in a complete loss of epimerase activity. Deletions in the C-terminal part result in a reduction or complete loss of kinase activity, depending on the size of the deletion. Deletions at either the N- or the C-terminus also result in a reduction of the other enzyme activity. These results indicate that a separate expression of both domains is possible, but that a strong intramolecular dependency of the two domains has arisen during evolution of the enzyme. N-terminal, as well as C-terminal, mutants tend to form trimers, in addition to the hexameric structure of the native enzyme. These results and yeast two-hybrid experiments show that structures required for dimerization are localized within the kinase domain, and a potential trimerization site is possibly located in a region between the two domains. In conclusion, our results reveal that the activities, as well as the oligomeric structure, of this bifunctional enzyme seem to be organized and regulated in a complex manner.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference33 articles.

1. Occurrence of sialic acids;Corfield,1982

2. Biochemistry and role of sialic acids;Schauer,1995

3. Structural analysis and functional role of the carbohydrate component of somatostatin receptors;Rens-Domiano;J. Biol. Chem.,1991

4. Bacterial adhesins and the role of sialic acid in bacterial adhesion;Sakarya;Med. Sci. Monit.,2003

5. Sialic acid species as a determinant of the host range of influenza A viruses;Suzuki;J. Virol.,2000

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