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The asymmetric synthesis of the orthogonally protected N-mannosyl d-β-hydroxyenduracididine (N-Man-d-βhEnd) is described, starting from enantiopure silylated (S)-serinol. The key steps are: (i) glycosylamine formation between protected serinol and a benzylated d-mannose; (ii) guanidinylation; and (iii) cyclic guanidine formation. This synthesis constitutes a breakthrough in our studies towards a total synthesis of mannopeptimycin and should also allow for other studies in the field of mannopeptimycin research, including the synthesis of derivatives.
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http://dx.doi.org/10.1039/c6ob00644b | DOI Listing |
Org Biomol Chem
April 2016
Genomics Research Center, Academia Sinica, 128, Section 2, Academia Road, Taipei, 11529, Taiwan.
The asymmetric synthesis of the orthogonally protected N-mannosyl d-β-hydroxyenduracididine (N-Man-d-βhEnd) is described, starting from enantiopure silylated (S)-serinol. The key steps are: (i) glycosylamine formation between protected serinol and a benzylated d-mannose; (ii) guanidinylation; and (iii) cyclic guanidine formation. This synthesis constitutes a breakthrough in our studies towards a total synthesis of mannopeptimycin and should also allow for other studies in the field of mannopeptimycin research, including the synthesis of derivatives.
View Article and Find Full Text PDFJ Biol Chem
November 2005
Department of Pathobiology, University of Illinois, Urbana, Illinois 61802, USA.
Aedes aegypti chorion peroxidase (CPO) plays a crucial role in chorion hardening by catalyzing chorion protein cross-linking through dityrosine formation. The enzyme is extremely resistant to denaturing conditions, which seem intimately related to its post-translational modifications, including disulfide bond formation and glycosylation. In this report, we have provided data that describe a new type of glycosylation in CPO, where a mannose is linked to the N-1 atom of the indole ring of Trp residue.
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