1. Investigation of sequon engineering for improved O-glycosylation by the human polypeptide N-acetylgalactosaminyl transferase T2 isozyme and two orthologues.
- Author
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Thompson NK, LeClaire LTN, Rodriguez Perez S, and Wakarchuk WW
- Subjects
- Amino Acid Sequence, Catalytic Domain, Chromatography, High Pressure Liquid methods, Chromatography, Reverse-Phase methods, Escherichia coli genetics, Escherichia coli metabolism, Glycosylation, Human Growth Hormone genetics, Humans, Interferon alpha-2 genetics, Isoenzymes metabolism, Kinetics, Mucins metabolism, N-Acetylgalactosaminyltransferases genetics, Polysaccharides chemistry, Polysaccharides metabolism, Recombinant Proteins metabolism, Sequence Alignment, Serine metabolism, Synthetic Biology methods, Threonine chemistry, Polypeptide N-acetylgalactosaminyltransferase, Human Growth Hormone metabolism, Interferon alpha-2 metabolism, N-Acetylgalactosaminyltransferases chemistry, N-Acetylgalactosaminyltransferases metabolism, Protein Engineering methods
- Abstract
We have been developing bacterial expression systems for human mucin-type O-glycosylation on therapeutic proteins, which is initiated by the addition of α-linked GalNAc to serine or threonine residues by enzymes in the GT-27 family of glycosyltransferases. Substrate preference across different isoforms of this enzyme is influenced by isoform-specific amino acid sequences at the site of glycosylation, which we have exploited to engineer production of Core 1 glycan structures in bacteria on human therapeutic proteins. Using RP-HPLC with a novel phenyl bonded phase to resolve intact protein glycoforms, the effect of sequon mutation on O-glycosylation initiation was examined through in vitro modification of the naturally O-glycosylated human interferon α-2b, and a sequon engineered human growth hormone. As part of the development of our glycan engineering in the bacterial expression system we are surveying various orthologues of critical enzymes to ensure complete glycosylation. Here we present an in vitro enzyme kinetic profile of three related GT-27 orthologues on natural and engineered sequons in recombinant human interferon α2b and human growth hormone where we show a significant change in kinetic properties with the amino acid changes. It was found that optimizing the protein substrate amino acid sequence using Isoform Specific O-Glycosylation Prediction (ISOGlyP, http://isoglyp.utep.edu/index.php) resulted in a measurable increase in kcat/KM, thus improving glycosylation efficiency. We showed that the Drosophila orthologue showed superior activity with our human growth hormone designed sequons compared with the human enzyme., (© 2021 The Author(s). Published by Portland Press Limited on behalf of the Biochemical Society.)
- Published
- 2021
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