Literature DB >> 19726634

Creating S-type characteristics in the F-type enzyme fructan:fructan 1-fructosyltransferase of Triticum aestivum L.

Lindsey Schroeven1, Willem Lammens, Akira Kawakami, Midori Yoshida, André Van Laere, Wim Van den Ende.   

Abstract

Invertases cleave sucrose in glucose and fructose, using water as an acceptor. Fructosyltransferases catalyse the transfer of a fructosyl residue between sucrose and/or fructan molecules. Plant fructosyltransferases (FTs) evolved from vacuolar invertases by small mutational changes, leading to differences in substrate specificity. The S-type of enzymes (invertases, sucrose:sucrose 1-fructosyltransferases or 1-SSTs, and sucrose:fructan 6-fructosyltransferases or 6-SFTs) prefer sucrose as the donor substrate while F-type enzymes (fructan:fructan 1-fructosyltransferases or 1-FFTs and fructan:fructan 6(G)-fructosyltransferases or 6(G)-FFTs) preferentially use fructan as the donor substrate. Recently, a functional Asp/Arg or Asp/Lys couple in the Hypervariable Loop (HVL) was suggested to be essential to keep Asp in a favourable orientation for binding sucrose as the donor substrate in S-type enzymes. However, the F-type enzyme 1-FFT of Triticum aestivum (Ta1-FFT) also contains the Asp/Arg couple in the HVL, although it prefers fructan as the donor substrate. In this paper, mutagenesis studies on Ta1-FFT are presented. In Ta1-SST, Tyr282 (the Asp281 homologue) seems to be essential in creating a tight H-bond Network (HBN) in which the Arg-residue of the Asp/Arg couple is held in a fixed position. This tight HBN is disrupted in Ta1-FFT, leading to a more flexible Arg-residue and a dysfunctional Asp/Arg couple. A single D281Y mutation in Ta1-FFT restored the tight HBN and introduced typical S-type characteristics. Conclusively, in wheat FTs Asp281 (and its homologues) is involved in donor substrate specificity.

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Year:  2009        PMID: 19726634     DOI: 10.1093/jxb/erp208

Source DB:  PubMed          Journal:  J Exp Bot        ISSN: 0022-0957            Impact factor:   6.992


  6 in total

1.  Unexpected presence of graminan- and levan-type fructans in the evergreen frost-hardy eudicot Pachysandra terminalis (Buxaceae): purification, cloning, and functional analysis of a 6-SST/6-SFT enzyme.

Authors:  Wim Van den Ende; Marlies Coopman; Stefan Clerens; Rudy Vergauwen; Katrien Le Roy; Willem Lammens; André Van Laere
Journal:  Plant Physiol       Date:  2010-10-29       Impact factor: 8.340

2.  Molecular and functional characterization of novel fructosyltransferases and invertases from Agave tequilana.

Authors:  Celso Cortés-Romero; Aída Martínez-Hernández; Erika Mellado-Mojica; Mercedes G López; June Simpson
Journal:  PLoS One       Date:  2012-04-30       Impact factor: 3.240

3.  Towards a better understanding of the generation of fructan structure diversity in plants: molecular and functional characterization of a sucrose:fructan 6-fructosyltransferase (6-SFT) cDNA from perennial ryegrass (Lolium perenne).

Authors:  Bertrand Lasseur; Jérémy Lothier; Andres Wiemken; André Van Laere; Annette Morvan-Bertrand; Wim Van den Ende; Marie-Pascale Prud'homme
Journal:  J Exp Bot       Date:  2010-12-31       Impact factor: 6.992

4.  Multifunctional fructans and raffinose family oligosaccharides.

Authors:  Wim Van den Ende
Journal:  Front Plant Sci       Date:  2013-07-09       Impact factor: 5.753

5.  A fructan: the fructan 1-fructosyl-transferase gene from Helianthus tuberosus increased the PEG-simulated drought stress tolerance of tobacco.

Authors:  Xuemei Sun; Yuan Zong; Shipeng Yang; Lihui Wang; Jieming Gao; Ying Wang; Baolong Liu; Huaigang Zhang
Journal:  Hereditas       Date:  2020-04-20       Impact factor: 3.271

6.  Presence of Inulin-Type Fructo-Oligosaccharides and Shift from Raffinose Family Oligosaccharide to Fructan Metabolism in Leaves of Boxtree (Buxus sempervirens).

Authors:  Wim Van den Ende; Marlies Coopman; Rudy Vergauwen; André Van Laere
Journal:  Front Plant Sci       Date:  2016-03-01       Impact factor: 5.753

  6 in total

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