Sialyltransferase;
Sialic acid;
Glycoengineering;
N-Glycosylation;
Pichia pastoris;
Expression and process engineering;
HETEROLOGOUS PROTEIN-PRODUCTION;
HUMAN ALPHA-2,6-SIALYLTRANSFERASE;
GLYCOSYLTRANSFERASES;
SYSTEM;
GLYCOSYLATION;
GLYCOPROTEINS;
RECOGNITION;
STRAINS;
PATHWAY;
CELLS;
D O I:
10.1016/j.jbiotec.2016.03.046
中图分类号:
Q81 [生物工程学(生物技术)];
Q93 [微生物学];
学科分类号:
071005 ;
0836 ;
090102 ;
100705 ;
摘要:
The human beta-galactoside alpha 2,6-sialyltransferase I, ST6Gal-I has drawn considerable interest for its use as biocatalyst for in-vitro glycoengineering of recombinantly produced therapeutic proteins. By attaching sialic acid onto the terminal galactoses of biantennary protein N-glycans, ST6Gal-I facilitates protein remodeling towards a humanized glycosylation and thus optimized efficacy in pharmacological use. Secreted expression of ST6Gal-I in Pichia pastoris is promising, but proteolysis restricts both the yield and the quality of the enzyme produced. Focusing on an N-terminally truncated (Delta 108) variant of ST6Gal-I previously shown to represent a minimally sized, still active form of ST6Gal-I, we show here that protein expression engineering and optimization of bioreactor cultivation of P. pastoris KM71H (pPICZ alpha B) synergized to enhance the maximum enzyme titer about 57-fold to 17 units/L. N-Terminal fusion to the Flag-tag plus deletion of a potential proteolytic site (Lys(114)-Asn -> Gln(114)-Asn) improved the intrinsic resistance of Delta 0108ST6Gal-I to degradation in P. pastoris culture. A mixed glycerol/methanol feeding protocol for P. pastoris growth and induction was key for enzyme production in high yield and quality. The sialyltransferase was recovered from the bioreactor culture in a yield of 70% using a single step of anion-exchange chromatography. Its specific activity was 0.05 units/mg protein. (C) 2016 Elsevier B.V. All rights reserved.
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页码:54 / 60
页数:7
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