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Asparagus Spears as a Model to Study Heteroxylan Biosynthesis during Secondary Wall Development
- Source :
- PLoS ONE, Vol 10, Iss 4, p e0123878 (2015), PLoS ONE
- Publication Year :
- 2015
- Publisher :
- Public Library of Science (PLoS), 2015.
-
Abstract
- Garden asparagus (Asparagus officinalis L.) is a commercially important crop species utilized for its excellent source of vitamins, minerals and dietary fiber. However, after harvest the tissue hardens and its quality rapidly deteriorates because spear cell walls become rigidified due to lignification and substantial increases in heteroxylan content. This latter observation prompted us to investigate the in vitro xylan xylosyltransferase (XylT) activity in asparagus. The current model system for studying heteroxylan biosynthesis, Arabidopsis, whilst a powerful genetic system, displays relatively low xylan XylT activity in in vitro microsomal preparations compared with garden asparagus therefore hampering our ability to study the molecular mechanism(s) of heteroxylan assembly. Here, we analyzed physiological and biochemical changes of garden asparagus spears stored at 4 °C after harvest and detected a high level of xylan XylT activity that accounts for this increased heteroxylan. The xylan XylT catalytic activity is at least thirteen-fold higher than that reported for previously published species, including Arabidopsis and grasses. A biochemical assay was optimized and up to seven successive Xyl residues were incorporated to extend the xylotetraose (Xyl4) acceptor backbone. To further elucidate the xylan biosynthesis mechanism, we used RNA-seq to generate an Asparagus reference transcriptome and identified five putative xylan biosynthetic genes (AoIRX9, AoIRX9-L, AoIRX10, AoIRX14_A, AoIRX14_B) with AoIRX9 having an expression profile that is distinct from the other genes. We propose that Asparagus provides an ideal biochemical system to investigate the biochemical aspects of heteroxylan biosynthesis and also offers the additional benefit of being able to study the lignification process during plant stem maturation.
- Subjects :
- Time Factors
Xylosyltransferase
Molecular Sequence Data
Arabidopsis
lcsh:Medicine
Polysaccharide
Genes, Plant
Lignin
Models, Biological
Cell wall
Species Specificity
Cell Wall
Microsomes
Arabidopsis thaliana
Asparagus
Biomass
Pentosyltransferases
lcsh:Science
Fluorescent Dyes
chemistry.chemical_classification
Multidisciplinary
biology
lcsh:R
food and beverages
Hordeum
biology.organism_classification
Xylan
Biosynthetic Pathways
Cold Temperature
chemistry
Biochemistry
Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization
Xylans
lcsh:Q
Asparagus Plant
Research Article
Subjects
Details
- Language :
- English
- ISSN :
- 19326203
- Volume :
- 10
- Issue :
- 4
- Database :
- OpenAIRE
- Journal :
- PLoS ONE
- Accession number :
- edsair.doi.dedup.....77024acfc47e1e44be01537a1591f640