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Mattei, B.

Publications and source records attributed to Mattei, B..

3 recordsLinked to original sources

BERBERINE BRIDGE ENZYME-LIKE OXIDASES OF CELLODEXTRINS AND MIXED-LINKED β-GLUCANS CONTROL SEED COAT FORMATION

A member of the Arabidopsis Berberine Bridge Enzyme-like (BBE-l) protein family named CELLODEXTRIN OXIDASE 2 (CELLOX2) has been characterized in this paper and shown to display structural and enzymatic features similar to the previously characterized CELLOX1. These include the capability to oxidize the mixed-linked {beta}-1[->]3/{beta}-1[->]4-glucans (MLGs), recently described as cell wall-derived damage-associated molecular patterns (DAMPs) that activate plant immunity. The two paralogous genes show a different expression profile. Unlike CELLOX1, CELLOX2 is not expressed in seedlings or in adult plants and is not involved in immunity against Botrytis cinerea. Both genes are expressed in a concerted manner in the seed coat during development: whereas CELLOX2 transcripts are detected mainly during the heart stage, CELLOX1 transcripts are detected later, when the expression of CELLOX2 decreases. Analysis of seeds of cellox1 and cellox2 knock-out mutants show alterations in the structure of the coat and mucilage, but not in their monosaccharide composition. We propose that the cell wall structure of specific organs is not only the result of a coordinated synthesis/degradation of polysaccharides but also of their exposure to enzymatic oxidation. Our results also reinforce the view that the family of BBE-l proteins is at least in part devoted to the control of the activity of cell wall-derived oligosaccharides acting as DAMPs. SENTENCETwo Arabidopsis BBE-like oxidases of the cell wall DAMPs cellodextrins and mixed-linked {beta}-glucans inactivate their elicitor activity. Seed coat and mucilage are altered in null mutants of two enzymes.

plant biology↗

RADICAL CATION SCAVENGING ACTIVITY OF BERBERINE BRIDGE ENZYME-LIKE OLIGOSACCHARIDE OXIDASES ACTING ON SHORT CELL WALL FRAGMENTS.

Oligogalacturonide-oxidases (OGOXs) and cellodextrin-oxidase (CELLOX) are plant berberine bridge enzyme-like oligosaccharide-oxidases (OSOXs) that oxidize, respectively, oligogalacturonides (OGs) and cellodextrins (CDs), thereby inactivating their elicitor nature and concomitantly releasing H2O2. Little is known about the physiological role of OSOX activity. By using an ABTS*+-reduction assay, we identified a novel reaction mechanism through which the activity of OSOXs on cell wall oligosaccharides scavenged the radical cation ABTS*+ with an efficiency dependent on the type and length of the oxidized oligosaccharide. In contrast to the oxidation of longer oligomers such as OGs (degree of polymerization from 10 to 15), the activity of OSOXs on short galacturonan- and cellulose-oligomers (degree of polymerization [≤] 4) successfully counteracted the radical cation-generating activity of a fungal laccase, suggesting that OSOXs can generate radical cation scavenging activity in the apoplast with a power proportional to the extent of degradation of plant cell wall, with possible implications for redox homeostasis and defense against oxidative stress.

plant biology↗

Berberine Bridge Enzyme-Like Oligosaccharide Oxidases Act As Enzymatic Transducers Between Microbial Glycoside Hydrolases And Plant Peroxidases

OG-oxidases (OGOXs) and CD-oxidase (CELLOX) are plant berberine bridge enzyme-like oligosaccharide oxidases that oxidize oligogalacturonides (OGs) and cellodextrins (CDs), cell wall fragments with nature of damage-associated molecular patterns (DAMPs). The oxidation of OGs and CDs attenuates their elicitor activity by concomitantly releasing H2O2. Here, we demonstrate that the H2O2 generated downstream of the combined action between a fungal polygalacturonase and OGOX1 or an endoglucanase and CELLOX can be directed by plant peroxidases (PODs) either towards a reaction possibly involved in plant defence such as the oxidation of monolignol or a reaction possibly involved in a developmental event such as the oxidation of auxin (IAA), pointing to OGOX1 and CELLOX as enzymatic transducers between microbial glycoside hydrolases and plant PODs.

plant biology↗