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Xiangyang Wu

Publications and source records attributed to Xiangyang Wu.

6 recordsLinked to original sources

Synthesis of glycoconjugate vaccines for Candida albicans using novel linker methodology.

[reaction: see text] The cell wall phosphomannan of Candida species is a complex N-linked glycoprotein with a glycan chain that contains predominantly alpha-linked mannose residues. However, it is the minor beta-mannan component of the phosphomannan of clinically important Candida strains that provides immunological protection in animal models of fungal disease and hence holds promise as a component of conjugate vaccines. This important antigen occurs in different forms linked to the alpha-mannan backbone via a phosphodiester bond (acid-labile beta-mannan) or directly via a glycosidic bond. To reproducibly synthesize and evaluate conjugate vaccines, a robust method for the synthesis of the different oligosaccharide epitopes is required. Here, we report the gram-scale syntheses of both types of epitopes by an approach that utilizes glucosyl trichloroacetimidate donor 2 to first create a beta-glucopyranoside linkage and then epimerizes the C-2 center via an oxidation-reduction sequence that provides an efficient multigram scale route to the beta-mannopyranosides 5, 8, and 15. Reaction of glycosides 16-18 with homobifunctional adipic acid p-nitrophenyl diesters in dry DMF gave the corresponding half esters in good yields, and of sufficient stability to permit chromatographic purification. Subsequent conjugation with BSA and tetanus toxiod (TT) under mild conjugation conditions afforded the corresponding tri- and tetrasaccharide neoglycoproteins with good efficiency. The conjugation method is also applicable to the coupling of small amounts (mg) of larger oligosaccharides with different proteins.

Candida albicans↗

A new homobifunctional p-nitro phenyl ester coupling reagent for the preparation of neoglycoproteins.

A new linker system has been designed and applied to neoglycoprotein synthesis. Reaction of oligosaccharide omega-aminoalkyl glycosides with homobifunctional adipic acid p-nitrophenyl diesters in dry DMF gave the corresponding amide half ester in good yields and of sufficient stability to permit chromatographic purification. Subsequent conjugation with bovine serum albumin under very mild conditions afforded the corresponding neoglycoproteins with good efficiency. The method is well suited for the coupling of very small amounts (mg) of oligosaccharide and protein. [structure: see text]

Amides↗

Solid-phase synthesis of complex oligosaccharides using a novel capping reagent.

Solid-phase-supported oligosaccharide synthesis of a core N-glycan tetrasaccharide and of a trisaccharide containing the Galili antigen is reported. The synthesis is based on a hydroxymethylbenzyl benzoate spacer-linker system attached to the Merrifield resin, O-Fmoc-protected O-glycosyl trichloroacetimidates as glycosyl donors, and benzoyl isocyanate as a capping reagent for low-reactivity hydroxy groups. In this way, the target molecules could be efficiently obtained with little byproduct formation, and hence final purification was convenient.

Acetamides↗

[Study on purification of glycyrrhizic acid with macroporous adsorption resin].

OBJECTIVE: To study the adsorption and desorption behavior of macroporous adsorbption resin AB-8 for glycyrrhizic acid and its effect factors. METHODS: The optimum purification conditions were investigated by high performance liquid chromatography and the orthogonal experiments. RESULTS: The optimum conditions were as follows: the flow rate at 1 ml/min, pH at 6.4-7.4 and the solution concentration at 10 mg/ml. CONCLUSION: AB-8 had a high adsorption capacity for glycyrrizic acid and elution was easy.

Adsorption↗

[Construction of bioprosthetic heart valve with viable cells].

The ideal valve substitute should have cellular viability. Cryopreserved allograft has cellular viability in some degree, but the quantity, viability and function of the cells are affected by some preexistent factors such as chemical injury, hypoxia during valve processing and injury at the time of implantation. Early cellular autolysis and apoptosis take place not long after implantation, the implanted valve thus loses significant capacity to grow, remodel, or exhibit active metabolic functions. The viable donor cells are antigenic and capable of eliciting immune response, including antigenic and antigen-specific T cells. Calcification appears to originate in residual nonviable cells and their fragments. Proteinases released from endothelial and fibroblast cells of allograft heart valve will lead to the destruction of the valve matrix. One of the focuses of creating an ideal heart valve is the progressive recellularization of the valve matrix by the autologous cells. The acellular valve matrix, after being recellularized, has two characters: cellular viability and normal cellular function, which are the bases of creating ideal bioprosthetic valve with the potentiality of growing, repairing and remodeling.

Animals↗