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Featured researches published by Akiharu Ueki.


Journal of Organic Chemistry | 2012

Chemoenzymatic synthesis of hydrophobic glycoprotein: synthesis of saposin C carrying complex-type carbohydrate.

Hironobu Hojo; Hiromasa Tanaka; Masashi Hagiwara; Yuya Asahina; Akiharu Ueki; Hidekazu Katayama; Yuko Nakahara; Azusa Yoneshige; Junko Matsuda; Yukishige Ito; Yoshiaki Nakahara

The complex-type N-linked octasaccharide oxazoline having LacNAc as the nonreducing end sugar was efficiently synthesized using the benzyl-protected LacNAc, mannose, and β-mannosyl GlcNAc units as key building blocks. To achieve a highly β-selective glycosylation with the LacNAc unit, the N-trichloroacetyl group was used for the protection of the amino group in the LacNAc unit. After complete assembly of these units and deprotection, the obtained free sugar was successfully derivatized into the corresponding sugar oxazoline. On the other hand, the N-acetylglucosaminylated saposin C, a hydrophobic lipid-binding protein, was chemically synthesized by the native chemical ligation reaction. On the basis of the previous results related to the synthesis of the nonglycosylated saposin C, the O-acyl isopeptide structure was introduced to the N-terminal peptide thioester carrying GlcNAc to improve its solubility toward aqueous organic solvents. The ligation reaction efficiently proceeded with the simultaneous O- to N-acyl shift at the O-acyl isopeptide moiety. After the removal of the cysteine-protecting group and folding, saposin C carrying GlcNAc was successfully obtained. The synthetic sugar oxazoline was then transferred to this glycoprotein using the mutant of endo-β-N-acetylglucosaminidase from Mucor hiemalis (Endo-M) (glycosynthase), and the saposin C carrying the complex-type nonasaccharide was successfully obtained.


Journal of Organic Chemistry | 2011

Synthesis of biantennary complex-type nonasaccharyl asn building blocks for solid-phase glycopeptide synthesis.

Masashi Hagiwara; Mizuki Dohi; Yuko Nakahara; Keiko Komatsu; Yuya Asahina; Akiharu Ueki; Hironobu Hojo; Yoshiaki Nakahara; Yukishige Ito

The biantennary complex-type N-glycans bearing LacNAc and LacdiNAc as the nonreducing end motif were synthesized in a protected form suitable to use in the Fmoc solid-phase peptide synthesis studies. Two approaches for the nonasaccharide synthesis were examined by taking advantage of the highly β-selective glycosylation with GlcNTCA (N-phenyl)trifluoroacetimidate. An earlier approach, which involved the reaction of the trisaccharide donor (Gal-GlcNTCA-Man) and trisaccharide acceptor (Man-GlcNPhth(2)-N(3)), produced a mixture of nonasaccharide isomers. On the other hand, mannosylation of the trisaccharide acceptor (Man-GlcNPhth(2)-N(3)) stereoselectively afforded the known pentasaccharide (Man(3)-GlcNPhth(2)-N(3)), which was reacted with the disaccharyl glycosyl donor (Gal-GlcNTCA or GalNTCA-GlcNTCA) to produce the desired nonasaccharide as a single stereoisomer. Selective dephthaloylation followed by N-acetylation furnished the GlcNAc(2) functionality. The resulting nonasaccharyl azides were condensed with Fmoc-Asp(OPfp)-OBu(t) or Fmoc-Asp(OPfp)-OPac in the presence of Ph(CH(3))(2)P and HOOBt. Finally, the Zn reduction and cleavage of the tert-butyl ester or Zn reduction alone produced the targeted nonasaccharyl Asn building blocks.


Chemical Communications | 2007

Polymer-supported oligosaccharide synthesis using ultrafiltration methodology

Shino Manabe; Akiharu Ueki; Yukishige Ito

Polymer-supported oligosaccharide synthesis was carried out using an ultrafiltration technique in which the synthesized polymer-bound oligosaccharides were separated from the other reagents by ultrafiltration though membranes with specifically sized pores.


Organic Letters | 2006

Efficient microwave-assisted tandem N- to S-acyl transfer and thioester exchange for the preparation of a glycosylated peptide thioester.

Fumihiro Nagaike; Yuko Onuma; Chie Kanazawa; Hironobu Hojo; Akiharu Ueki; Yuko Nakahara; Yoshiaki Nakahara


Angewandte Chemie | 2010

The Mercaptomethyl Group Facilitates an Efficient One‐Pot Ligation at Xaa‐Ser/Thr for (Glyco)peptide Synthesis

Hironobu Hojo; Chinatsu Ozawa; Hidekazu Katayama; Akiharu Ueki; Yuko Nakahara; Yoshiaki Nakahara


Tetrahedron | 2007

Synthesis of biantennary LacNAc-linked O-glycan (core 4) and glycopeptide thioester by benzyl protection strategy: rapid zinc reduction of GlcNTCA to GlcNAc by microwave irradiation

Akiharu Ueki; Yuko Nakahara; Hironobu Hojo; Yoshiaki Nakahara


Tetrahedron | 2010

Solid-phase synthesis of glycopeptide carrying a tetra-N-acetyllactosamine-containing core 2 decasaccharide

Akiharu Ueki; Yutaka Takano; Akiko Kobayashi; Yuko Nakahara; Hironobu Hojo; Yoshiaki Nakahara


Tetrahedron | 2009

Solid-phase synthesis of O-sulfated glycopeptide by the benzyl-protected glycan strategy

Keita Kawahira; Hiromasa Tanaka; Akiharu Ueki; Yuko Nakahara; Hironobu Hojo; Yoshiaki Nakahara


Tetrahedron Letters | 2008

Reductive deprotection of propargyl ether by a SmI2–amine–water system and its application to polymer-supported oligosaccharide synthesis

Shino Manabe; Akiharu Ueki; Yukishige Ito


Tetrahedron | 2008

Stereoselective synthesis of benzyl-protected β-galactosides by propionitrile-mediated glycosylation

Akiharu Ueki; Masafumi Hirota; Yuta Kobayashi; Keiko Komatsu; Yutaka Takano; Michio Iwaoka; Yuko Nakahara; Hironobu Hojo; Yoshiaki Nakahara

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