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  5. Cell wall polysaccharide and glycoprotein content tracks growth‐form diversity and an aridity gradient in the leaf‐succulent genus.

Cell wall polysaccharide and glycoprotein content tracks growth‐form diversity and an aridity gradient in the leaf‐succulent genus.

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Physiologia_Plantarum_-_2023_-_Fradera_Soler_-_Cell_wall_polysaccharide_and_glycoprotein_content_tracks_growth_form.pdf

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Resource type
Journal article
Creator (person)
Fradera‐Soler, Marc
ORCIDORCID logo
Mravec, Jozef
ORCIDORCID logo
Harholt, Jesper
ORCIDORCID logo
Grace, Olwen M.
ORCIDORCID logo
Jørgensen, Bodil
ORCIDORCID logo
Date published
August 31, 2023
Abstract
Cell wall traits are believed to be a key component of the succulent syndrome, an adaptive syndrome to drought, yet the variability of such traits remains largely unknown. In this study, we surveyed the leaf polysaccharide and glycoprotein composition in a wide sampling of species that occur naturally along an aridity gradient in southern Africa, and we interpreted its adaptive significance in relation to growth form and arid adaptation. To study the glycomic diversity, we sampled leaf material from 56 taxa and performed comprehensive microarray polymer profiling to obtain the relative content of cell wall polysaccharides and glycoproteins. This analysis was complemented by the determination of monosaccharide composition and immunolocalization in leaf sections using glycan‐targeting antibodies. We found that compact and non‐compact species occupy distinct phenotypic spaces in terms of leaf glycomics, particularly in regard to rhamnogalacturonan I, its arabinan side chains, and arabinogalactan proteins (AGPs). Moreover, these cell wall components also correlated positively with increasing aridity, which suggests that they are likely advantageous in terms of arid adaptation. These differences point to compact species having more elastic cell walls with plasticizing properties, which can be interpreted as an adaptation toward increased drought resistance. Furthermore, we report an intracellular pool of AGPs associated with oil bodies and calcium oxalate crystals, which could be a peculiarity of and could be linked to increased drought resistance. Our results indicate that glycomics may be underlying arid adaptation and drought resistance in succulent plants.
Funder
Funder nameAwards
Slovenská Akadémia Vied, Slovakia
Project number IM-2021-23
Carlsbergfondet, Denmark
Grønt Udviklings- og Demonstrations Program, Denmark
HORIZON EUROPE Marie Sklodowska-Curie Actions
Grant agreement No. 801199
Journal title
Physiologia Plantarum
Volume
175
Issue
5
Article number
e14007
Publisher
Published by John Wiley & Sons Ltd on behalf of Scandinavian Plant Physiology Society.
Place of publication
UK
ISSN
0031-9317
eISSN
1399-3054
Date accepted
August 14, 2023
Official URL
https://doi.org/10.1111/ppl.14007
Rights statement
In Copyright
Licence
https://creativecommons.org/licenses/by/4.0/
DOI
10.1111/ppl.14007
Keywords
Crassula
Cell walls
Cell wall polysaccharides
Polysaccharides
Glycoproteins
Cell wall glycoproteins
Southern Africa
Aridity gradient
Growth-forms
Growth-form diversity
Additional information
IF = 5.081 (2022-2023)
Managed by the British Library and supported by the AHRC

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