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160 6 Chemo-Enzymatic Cascade Reactions for the Synthesis of Glycoconjugates
schistosome egg-induced hepatic gran- 122. Freire, T., Lo-Man, R., Piller, F., Piller,
uloma formation. Glycobiology, 16, V., Leclerc, C., and Bay, S. (2006)
237–243. Enzymatic large-scale synthesis of
116. Sasaki, N., Shinomi, M., Hirano, K., MUC6-Tn glycoconjugates for anti-
Ui-Tei, K., and Nishihara, S. (2011) tumor vaccination. Glycobiology, 16,
LacdiNAc (GalNAcβ1-4GlcNAc) con- 390–401.
tributes to self-renewal of mouse 123. Bourgeaux, V., Cad` ene, M., Piller, F.,
embryonic stem cells by regulating and Piller, V. (2007) Efficient enzy-
leukemia inhibitory factor/STAT3 matic glycosylation of peptides and
signaling. Stem Cells, 29, 641–650. oligosaccharides from GalNAc and
117. Fukushima, K., Satoh, T., Baba, S., and UTP. ChemBioChem, 8, 37–40.
Yamashita, K. (2010) α1,2-fucosylated 124. Ito, T., Sadamoto, R., Naruchi, K.,
and β-N-acetylgalactosaminylated Togame, H., Takemoto, H., Kondo, H.,
prostate-specific antigen as an efficient and Nishimura, S.-I. (2010) Highly ori-
marker of prostatic cancer. Glycobiology, ented recombinant glycosyltransferases:
20, 452–460. site-specific immobilization of unstable
118. Rech, C., Rosencrantz, R.R., Kˇ renek, membrane proteins by using staphylo-
K., Pelantov´ a, H., Bojarov´ a, P., coccus aureus sortase A. Biochemistry,
R¨ omer, C.E., Hanisch, F.-G., Kˇ ren, 49, 2604–2614.
V., and Elling, L. (2011) Combina- 125. Kˇ ren, V. and Thiem, J. (1995) A
torial one-pot synthesis of poly-N- multienzyme system for a one-pot
acetyllactosamine oligosaccharides with synthesis of sialyl T-antigen. Angew.
leloir-glycosyltransferases. Adv. Synth. Chem., Int. Ed. Engl., 34, 893–895.
Catal., 353, 2492–2500. 126. Kupper, C.E., Rosencrantz, R.R.,
119. Yu, H., Chokhawala, H.A., Huang, S., Henssen, B., Pelantova, H., Thones, S.,
and Chen, X. (2006) One-pot three- Drozdova, A., Kren, V., and Elling, L.
enzyme chemoenzymatic approach to (2012) Chemo-enzymatic modification
the synthesis of sialosides containing of poly-N-acetyllactosamine (LacNAc)
natural and non-natural functionalities. oligomers and N,N-diacetyllactosamine
Nat. Protoc., 1, 2485–2492. (LacDiNAc) based on galactose oxidase
120. Chokhawala, H.A., Huang, S., Lau, treatment. Beilstein J. Org. Chem., 8,
K., Yu, H., Cheng, J., Thon, V., 712–725.
Hurtado-Ziola, N., Guerrero, J.A., 127. Umekawa, M., Higashiyama, T., Koga,
Varki, A., and Chen, X. (2008) Com- Y., Tanaka, T., Noguchi, M., Kobayashi,
binatorial chemoenzymatic synthesis A., Shoda, S.-i., Huang, W., Wang,
and high-throughput screening of sialo- L.-X., Ashida, H. et al. (2010) Effi-
sides. ACS Chem. Biol., 3, 567–576. cient transfer of sialo-oligosaccharide
121. Ding, L., Yu, H., Lau, K., Li, Y., onto proteins by combined use of a
Muthana, S., Wang, J., and Chen, glycosynthase-like mutant of mucor
X. (2011) Efficient chemoenzymatic hiemalis endoglycosidase and synthetic
synthesis of sialyl Tn-antigens and sialo-complex-type sugar oxazoline.
derivatives. Chem. Commun. (Cam- Biochim. Biophys. Acta, Gen. Subj.,
bridge, U.K.), 47, 8691–8693. 1800, 1203–1209.