Literature DB >> 31899625

Length Specificity and Polymerization Mechanism of (1,3)-β-d-Glucan Synthase in Fungal Cell Wall Biosynthesis.

Abhishek Chhetri1, Anna Loksztejn1, Hai Nguyen1, Kaila M Pianalto2, Mi Jung Kim3, Jiyong Hong3, J Andrew Alspaugh2, Kenichi Yokoyama1,3.   

Abstract

(1,3)-β-d-Glucan synthase (GS) catalyzes formation of the linear (1,3)-β-d-glucan in the fungal cell wall and is a target of clinically approved antifungal antibiotics. The catalytic subunit of GS, FKS protein, does not exhibit significant sequence homology to other glycosyltransferases, and thus, significant ambiguity about its catalytic mechanism remains. One of the major technical barriers in studying GS is the absence of activity assay methods that allow characterization of the lengths and amounts of (1,3)-β-d-glucan due to its poor solubility in water and organic solvents. Here, we report a successful development of a novel GS activity assay based on size-exclusion chromatography coupled with pulsed amperometric detection and radiation counting (SEC-PAD-RC), which allows for the simultaneous characterization of the amount and length of the polymer product. The assay revealed that the purified yeast GS produces glucan with a length of 6550 ± 760 mer, consistent with the reported degree of polymerization of (1,3)-β-d-glucan isolated from intact cells. Pre-steady state kinetic analysis revealed a highly efficient but rate-determining chain elongation rate of 51.5 ± 9.8 s-1, which represents the first observation of chain elongation by a nucleotide-sugar-dependent polysaccharide synthase. Coupling the SEC-PAD-RC method with substrate analogue mechanistic probes provided the first unambiguous evidence that GS catalyzes non-reducing end polymerization. On the basis of these observations, we propose a detailed model for the catalytic mechanism of GS. The approaches described here can be used to determine the mechanism of catalysis of other polysaccharide synthases.

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Year:  2020        PMID: 31899625      PMCID: PMC7015794          DOI: 10.1021/acs.biochem.9b00896

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  31 in total

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2.  Discovery of novel antifungal (1,3)-beta-D-glucan synthase inhibitors.

Authors:  J Onishi; M Meinz; J Thompson; J Curotto; S Dreikorn; M Rosenbach; C Douglas; G Abruzzo; A Flattery; L Kong; A Cabello; F Vicente; F Pelaez; M T Diez; I Martin; G Bills; R Giacobbe; A Dombrowski; R Schwartz; S Morris; G Harris; A Tsipouras; K Wilson; M B Kurtz
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Authors:  Mark E Larson; Daniel J Falconer; Alan M Myers; Adam W Barb
Journal:  J Biol Chem       Date:  2016-10-12       Impact factor: 5.157

4.  Concentrations of intermediary metabolites in yeast.

Authors:  J M Gancedo; C Gancedo
Journal:  Biochimie       Date:  1973       Impact factor: 4.079

5.  Homologous subunits of 1,3-beta-glucan synthase are important for spore wall assembly in Saccharomyces cerevisiae.

Authors:  Satoru Ishihara; Aiko Hirata; Satoru Nogami; Anne Beauvais; Jean-Paul Latge; Yoshikazu Ohya
Journal:  Eukaryot Cell       Date:  2006-12-08

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Authors:  S B Inoue; N Takewaki; T Takasuka; T Mio; M Adachi; Y Fujii; C Miyamoto; M Arisawa; Y Furuichi; T Watanabe
Journal:  Eur J Biochem       Date:  1995-08-01

7.  A Saccharomyces cerevisiae mutant with echinocandin-resistant 1,3-beta-D-glucan synthase.

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Review 8.  Architecture and biosynthesis of the Saccharomyces cerevisiae cell wall.

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9.  Temperature-induced expression of yeast FKS2 is under the dual control of protein kinase C and calcineurin.

Authors:  C Zhao; U S Jung; P Garrett-Engele; T Roe; M S Cyert; D E Levin
Journal:  Mol Cell Biol       Date:  1998-02       Impact factor: 4.272

10.  2-Acylamido analogues of N-acetylglucosamine prime formation of chitin oligosaccharides by yeast chitin synthase 2.

Authors:  Jacob Gyore; Archana R Parameswar; Carleigh F F Hebbard; Younghoon Oh; Erfei Bi; Alexei V Demchenko; Neil P Price; Peter Orlean
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Journal:  Microbiol Spectr       Date:  2022-01-12

2.  Echinocandins Localized to the Target-Harboring Cell Surface Are Not Degraded but Those Entering the Vacuole Are.

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3.  Quantitative Characterization of the Amount and Length of (1,3)-β-d-glucan for Functional and Mechanistic Analysis of Fungal (1,3)-β-d-glucan Synthase.

Authors:  Abhishek Chhetri; Anna Loksztejn; Kenichi Yokoyama
Journal:  Bio Protoc       Date:  2021-04-20
  3 in total

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