Literature DB >> 28419331

An Apoplastic β-Glucosidase is Essential for the Degradation of Flavonol 3-O-β-Glucoside-7-O-α-Rhamnosides in Arabidopsis.

Jonathon Roepke1,2, Harley O W Gordon1, Kevin J A Neil1, Satinder Gidda3, Robert T Mullen3, José A Freixas Coutin1, Delaney Bray-Stone1, Gale G Bozzo1.   

Abstract

Flavonol bisglycosides accumulate in plant vegetative tissues in response to abiotic stress, including simultaneous environmental perturbations (i.e. nitrogen deficiency and low temperature, NDLT), but disappear with recovery from NDLT. Previously, we determined that a recombinant Arabidopsis β-glucosidase (BGLU), BGLU15, hydrolyzes flavonol 3-O-β-glucoside-7-O-α-rhamnosides and flavonol 3-O-β-glucosides, forming flavonol 7-O-α-rhamnosides and flavonol aglycones, respectively. In this study, the transient expression of a BGLU15-Cherry fusion protein in onion epidermal cells demonstrated that BGLU15 was localized to the apoplast. Analysis of BGLU15 T-DNA insertional inactivation lines (bglu15-1 and bglu15-2) revealed negligible levels of BGLU15 transcripts, whereas its paralogs BGLU12 and BGLU16 were expressed in wild-type and bglu15 plants. The recombinant BGLU16 did not hydrolyze quercetin 3-O-β-glucoside-7-O-α-rhamnoside or rhamnosylated flavonols, but was active with the synthetic substrate, p-nitrophenyl-β-d-glucoside. In addition, shoots of both bglu15 mutants contained negligible flavonol 3-O-β-glucoside-7-O-α-rhamnoside hydrolase activity, whereas this activity increased by 223% within 2 d of NDLT recovery in wild-type plants. The levels of flavonol 3-O-β-glucoside-7-O-α-rhamnosides and quercetin 3-O-β-glucoside were high and relatively unchanged in shoots of bglu15 mutants during recovery from NDLT, whereas rapid losses were apparent in wild-type shoots. Moreover, losses of two flavonol 3-O-β-neohesperidoside-7-O-α-rhamnosides and kaempferol 3-O-α-rhamnoside-7-O-α-rhamnoside were evident during recovery from NDLT, regardless of whether BGLU15 was present. A spike in a kaempferol 7-O-α-rhamnoside occurred with stress recovery, regardless of germplasm, suggesting a contribution from hydrolysis of kaempferol 3-O-β-neohesperidoside-7-O-α-rhamnosides and/or kaempferol 3-O-α-rhamnoside-7-O-α-rhamnoside by hitherto unknown mechanisms. Thus, BGLU15 is essential for catabolism of flavonol 3-O-β-glucoside-7-O-α-rhamnosides and flavonol 3-O-β-glucosides in Arabidopsis.
© The Author 2017. Published by Oxford University Press on behalf of Japanese Society of Plant Physiologists. All rights reserved. For permissions, please email: journals.permissions@oup.com.

Entities:  

Keywords:  Arabidopsis thaliana; Catabolism; Flavonol; Flavonol bisglycosides; Stress recovery; β-Glucosidase

Mesh:

Substances:

Year:  2017        PMID: 28419331     DOI: 10.1093/pcp/pcx050

Source DB:  PubMed          Journal:  Plant Cell Physiol        ISSN: 0032-0781            Impact factor:   4.927


  4 in total

1.  Sclerotinia sclerotiorum Circumvents Flavonoid Defenses by Catabolizing Flavonol Glycosides and Aglycones.

Authors:  Jingyuan Chen; Chhana Ullah; Michael Reichelt; Jonathan Gershenzon; Almuth Hammerbacher
Journal:  Plant Physiol       Date:  2019-06-20       Impact factor: 8.340

2.  Kaempferol rhamnoside catabolism in rosette leaves of senescing Arabidopsis and postharvest stored radish.

Authors:  Nicole Unterlander; Lili Mats; Laura C McGary; Harley O W Gordon; Gale G Bozzo
Journal:  Planta       Date:  2022-07-11       Impact factor: 4.540

3.  Analysis of the β-Glucosidase Family Reveals Genes Involved in the Lignification of Stone Cells in Chinese White Pear (Pyrus bretschneideri Rehd.).

Authors:  Han Wang; Yingjie Zhang; Xiaofeng Feng; Fulei Peng; Muhammad Aamir Mazoor; Yang Zhang; Yu Zhao; WenLong Han; Jinjin Lu; Yunpeng Cao; Yongping Cai
Journal:  Front Plant Sci       Date:  2022-05-10       Impact factor: 6.627

4.  Molecular investigation of Tuscan sweet cherries sampled over three years: gene expression analysis coupled to metabolomics and proteomics.

Authors:  Roberto Berni; Sophie Charton; Sébastien Planchon; Sylvain Legay; Marco Romi; Claudio Cantini; Giampiero Cai; Jean-Francois Hausman; Jenny Renaut; Gea Guerriero
Journal:  Hortic Res       Date:  2021-01-01       Impact factor: 6.793

  4 in total

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