Literature DB >> 9499388

Spectroscopic studies on the interaction of pradimicin BMY-28864 with mannose derivatives.

K Fujikawa1, Y Tsukamoto, T Oki, Y C Lee.   

Abstract

Pradimicin BMY-28864 (Pm) is an antibiotic effective against yeasts and fungi, and is known to bind mannose in the presence of Ca2+. We examined spectroscopically the mode of interactions among Pm, Ca2+, and glycosides of mannose and mannose oligosaccharides (Manalpha1-OMe, Manalpha1-2Manalpha1-OMe, Manalpha1-3Manalpha1-OMe, Manalpha1-4Manalpha1-OMe, Manalpha1-6Manalpha1-OMe, Manalpha1-6(Manalpha1-3)Manalpha1-OMe, and Man9GlcNAc2-Asn, a high mannose type N-linked oligosaccharide). All the mannosides interacted with Pm in the presence of Ca2+ and caused absorbance changes. The absorbance changes occurred nonlinearly with respect to the carbohydrate concentration and do not follow a simple binding isotherm equation, suggesting a unique multistep interaction mode. The concentrations that induced half the maximum absorbance change were approximately 10 mM for the mono- and di-mannosides and around 1.5 mM for the trimannoside and Man9GlcNAc2-Asn. Methyl alpha-D-glucopyranoside, methyl alpha-D-galactopyranoside, lactose, and myo-inositol did not affect the absorbance of Pm up to 50 mM. Ca2+ alone also influenced the absorbance of Pm. The absorbance between 200 and 700 nm decreased hypochromically when Ca2+ was added. The concentration that gave half the maximum absorbance decrease caused by Ca2+was around 15 microM. Our results suggest that two Pm molecules bind one C a2+, and each Pm binds two mannosyl residues.

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Year:  1998        PMID: 9499388     DOI: 10.1093/glycob/8.4.407

Source DB:  PubMed          Journal:  Glycobiology        ISSN: 0959-6658            Impact factor:   4.313


  6 in total

1.  A key cytochrome P450 hydroxylase in pradimicin biosynthesis.

Authors:  Kandy L Napan; Jia Zeng; Jon Y Takemoto; Jixun Zhan
Journal:  Bioorg Med Chem Lett       Date:  2011-10-28       Impact factor: 2.823

2.  Characterization and carbohydrate specificity of pradimicin S.

Authors:  Syed Shahzad-ul-Hussan; Rodolfo Ghirlando; Cajetan I Dogo-Isonagie; Yasuhiro Igarashi; Jan Balzarini; Carole A Bewley
Journal:  J Am Chem Soc       Date:  2012-07-17       Impact factor: 15.419

3.  Mannose-binding analysis and biological application of pradimicins.

Authors:  Yu Nakagawa; Yukishige Ito
Journal:  Proc Jpn Acad Ser B Phys Biol Sci       Date:  2022       Impact factor: 3.493

4.  The carbohydrate-binding plant lectins and the non-peptidic antibiotic pradimicin A target the glycans of the coronavirus envelope glycoproteins.

Authors:  F J U M van der Meer; C A M de Haan; N M P Schuurman; B J Haijema; M H Verheije; B J Bosch; J Balzarini; H F Egberink
Journal:  J Antimicrob Chemother       Date:  2007-08-18       Impact factor: 5.790

5.  Antiviral activity of carbohydrate-binding agents against Nidovirales in cell culture.

Authors:  F J U M van der Meer; C A M de Haan; N M P Schuurman; B J Haijema; W J Peumans; E J M Van Damme; P L Delputte; J Balzarini; H F Egberink
Journal:  Antiviral Res       Date:  2007-05-21       Impact factor: 5.970

Review 6.  Molecular architecture and therapeutic potential of lectin mimics.

Authors:  Yu Nakagawa; Ito Yukishige
Journal:  Adv Carbohydr Chem Biochem       Date:  2012       Impact factor: 12.200

  6 in total

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