Sialic acid groups of protein N-glycans are important determinants of biological activity. Exposed at the end of the glycan chain, they are potential targets for glycan remodeling. Sialyltransferases (STs; EC 2.4.99) are the enzymes that catalyze the sialic acid transfer from a CMP-activated donor on to a carbohydrate acceptor in vivo. Recombinant expression of the full-length human β-galactoside α2,6 sialyltransferase I (ST6Gal-I) was hampered and therefore variants with truncated N-termini were investigated. We report on the distinct properties of two N-terminally truncated versions of ST6Gal-I, namely Δ89ST6Gal-I and Δ108ST6Gal-I, which were successfully expressed in human embryonic kidney cells. The different properties of these enzymes result most probably from the loss of interactions from helix α1 in the Δ108ST6Gal-I variant, which plays a role in acceptor substrate binding. The Km for N-acetyl-d-lactosamine was 10-fold increased for Δ108ST6Gal-I (84 mM) as compared to Δ89ST6Gal-I (8.3 mM). The two enzyme variants constitute a suitable tool box for the terminal modification of N-glycans. While the enzyme Δ89ST6Gal-I exhibited both ST (di-sialylation) and sialidase activity on a monoclonal antibody, the enzyme Δ108ST6Gal-I showed only ST activity with specificity for mono-sialylation.
Background Glycosylation is an important posttranslational modification of proteins influencing protein folding, stability and regulation of the biological activity. The sialyl mojety (sialic acid, 5-N-acetylneuramic acid) is usually exposed at the terminal position of N-glycosylation and therefore, a major contributor to biological recognition and ligand function, e.g. IgG featuring terminal sialic acids were shown to induce less inflammatory response and increased serum half-life. The biosynthesis of sialyl conjugates is controlled by a set of sugar-active enzymes including sialyltransferases which are classified as ST3, ST6 and ST8 based on the hydroxyl position of the glycosyl acceptor the Neu5Ac is transferred to [1]. The ST6 family consists of 2 subfamilies, ST6Gal and ST6GalNAc. ST6Gal catalyzes the transfer of Neu5Ac residues to the hydroxyl group in C6 of a terminal galactose residue of type 2 disaccharide (Galb1-4GlcNAc). To our knowledge, the access to recombinant ST6GalI for therapeutic applications is still limited due to low expression and/or poor activity in various hosts (Pichia pastoris, Spodoptera frugiperda and E. coli). The present study describes the high-yield expression of two variants of human beta-galactoside alpha-2,6 sialyltransferase 1 (ST6Gal-I, EC 2.4.99.1; data base entry P15907) by transient gene expression in HEK293 cells with yields >100 mg/L featuring distinct mono(G2 +1SA) as well as bi(G2+2SA) sialylation activity. Materials and methods Two N-terminally truncated fragments of human ST6Gal-I (delta89, residues 89-406, and delta108, residues 109-406) were designed for transient gene expression (TGE): Instead of the natural leader sequence and N-terminal residues, both ST6Gal-I coding regions harbor the Erythropoietin (EPO) signal sequence in order to ensure correct processing of the polypeptides by the secretion machinery. Following cloning into pM1MT, expression of the ST6Gal-I coding sequences is under control of a hCMV promoter followed by an intron A. Sialyltransferase assays: 1. Asialofetuin was used as acceptor and CMP-9F-NANA as donor substrate. Enzymatic activity was determined by measuring the transfer of 9F-NANA to asialofetuin. 2. Recombinant humanized IgG1 and IgG4 monoclonal antibodies (mabs), characterized as G2+0SA, as well as desialylated EPO were used as targets in sialylation experiments (30 μg enzyme/300 μg target protein). Both enzyme variants of ST6Gal-I (delta89 and delta108) were used under identical reaction conditions and the sialylation status was analyzed by mass spectrometry.
Human β-galactoside α-2,6-sialyltransferase I (ST6Gal-I) establishes the final glycosylation pattern of many glycoproteins by transferring a sialyl moiety to a terminal galactose. Complete sialylation of therapeutic immunoglobulins is essential for their anti-inflammatory activity and protein stability, but is difficult to achieve in vitro owing to the limited activity of ST6Gal-I towards some galactose acceptors. No structural information on ST6Gal-I that could help to improve the enzymatic properties of ST6Gal-I for biotechnological purposes is currently available. Here, the crystal structures of human ST6Gal-I in complex with the product cytidine 5'-monophosphate and in complex with cytidine and phosphate are described. These complexes allow the rationalization of the inhibitory activity of cytosine-based nucleotides. ST6Gal-I adopts a variant of the canonical glycosyltransferase A fold and differs from related sialyltransferases by several large insertions and deletions that determine its regiospecificity and substrate specificity. A large glycan from a symmetry mate localizes to the active site of ST6Gal-I in an orientation compatible with catalysis. The glycan binding mode can be generalized to any glycoprotein that is a substrate of ST6Gal-I. Comparison with a bacterial sialyltransferase in complex with a modified sialyl donor lends insight into the Michaelis complex. The results support an SN2 mechanism with inversion of configuration at the sialyl residue and suggest substrate-assisted catalysis with a charge-relay mechanism that bears a conceptual similarity to serine proteases.
Introduction Cytokines play a key role in the regulation of cellular and molecular interactions in the immune system, that take place (e.g., in autoimmune disorders, graft-versus-host diseases, or viral infections). A highly sensitive, competitive RT-PCR system was developed to quantify human cytokine mRNA. The high sensitivity allows the detection of mRNAs in a small number of cells or in a small amount of tissue, as well as mRNAs expressed in mixed-cell populations (1). Quantification of specific RNA is achieved by adding known amounts of competitor RNA to a series of samples containing equal amounts of the target RNA. The addition of the competitor RNA prior to RNA isolation corrects for the loss of RNA during the isolation procedure, assuming that the yield of isolated RNA is equal for both RNAs. During RT-PCR, a biotin label is introduced into the RT-PCR product by using a 5' biotin-labeled reverse primer. Following RT-PCR, aliquots of the products are added to separate wells of streptavidin-coated microtiter plates for specific detection of the cytokine product and the competitor product, respectively. The products are captured by binding to streptavidin, and denatured. The bound single strand RT-PCR product is hybridized with the appropriate detection oligo (cytokine detection oligo for the analyte whose concentration is unknown, and stuffer oligo for the competitor) which has been 3' labeled with digoxigenin (DIG). The wells are reacted with anti-DIG-POD, and then developed with ABTS® substrate. The amount of cytokine analyte is calculated by linear regression analysis of the logarithm of copies of RNA competitor (log copies) against the OD ratios (ratio of ODs obtained for the analyte and the competitor, respectively). Figure 1 shows a general scheme. Results We have determined the expression level of TNF-α in stimulated human peripheral blood lymphocytes. For a sample of 5000 isolated cells, a number of about 16500 copies of TNF-α mRNA was determined (Figure 2). The quantification is routinely performed by ELISA detection. An agarose gel is additionally included to show the performance of the RT-PCR step. The linearity of the quantification system is demonstrated in Figure 3. Varying numbers of lymphocytes were analyzed for the expression level of IFNγ mRNA. For 200, 1000, and 5000 cells, we counted 871, 3597, and 17278 copies of IFNγ mRNA, respectively, producing an average of 3.81 copies per cell. A standard deviation of 10.4% was calculated for the three measurements.