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Substrate specificity of the sialic acid biosynthetic pathway.

Authors :
Jacobs CL
Goon S
Yarema KJ
Hinderlich S
Hang HC
Chai DH
Bertozzi CR
Source :
Biochemistry [Biochemistry] 2001 Oct 30; Vol. 40 (43), pp. 12864-74.
Publication Year :
2001

Abstract

Unnatural analogues of sialic acid can be delivered to mammalian cell surfaces through the metabolic transformation of unnatural N-acetylmannosamine (ManNAc) derivatives. In previous studies, mannosamine analogues bearing simple N-acyl groups up to five carbon atoms in length were recognized as substrates by the biosynthetic machinery and transformed into cell surface sialoglycoconjugates [Keppler, O. T., et al. (2001) Glycobiology 11, 11R-18R]. Such structural alterations to cell surface glycans can be used to probe carbohydrate-dependent phenomena. This report describes our investigation into the extent of tolerance of the pathway toward additional structural alterations of the N-acyl substituent of ManNAc. A panel of analogues with ketone-containing N-acyl groups that varied in the length or steric bulk was chemically synthesized and tested for metabolic conversion to cell surface glycans. We found that extension of the N-acyl chain to six, seven, or eight carbon atoms dramatically reduced utilization by the biosynthetic machinery. Likewise, branching from the linear chain reduced metabolic conversion. Quantitation of metabolic intermediates suggested that cellular metabolism is limited by the phosphorylation of the N-acylmannosamines by ManNAc 6-kinase in the first step of the pathway. This was confirmed by enzymatic assay of the partially purified enzyme with unnatural substrates. Identification of ManNAc 6-kinase as a bottleneck for unnatural sialic acid biosynthesis provides a target for expanding the metabolic promiscuity of mammalian cells.

Details

Language :
English
ISSN :
0006-2960
Volume :
40
Issue :
43
Database :
MEDLINE
Journal :
Biochemistry
Publication Type :
Academic Journal
Accession number :
11669623
Full Text :
https://doi.org/10.1021/bi010862s