Cuticle architecture and mechanical properties: a functional relationship delineated through correlated multimodal imaging
D’ORLANDO, Angelina
Unité de recherche sur les Biopolymères, Interactions Assemblages [BIA]
BioInformatique et BioStatistiques [CIRI] [CIRI-BIBS]
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Unité de recherche sur les Biopolymères, Interactions Assemblages [BIA]
BioInformatique et BioStatistiques [CIRI] [CIRI-BIBS]
D’ORLANDO, Angelina
Unité de recherche sur les Biopolymères, Interactions Assemblages [BIA]
BioInformatique et BioStatistiques [CIRI] [CIRI-BIBS]
< Leer menos
Unité de recherche sur les Biopolymères, Interactions Assemblages [BIA]
BioInformatique et BioStatistiques [CIRI] [CIRI-BIBS]
Idioma
en
Article de revue
Este ítem está publicado en
New Phytologist. 2023-02-27, vol. 238, n° 5, p. 2033-2046
Wiley
Resumen en inglés
Cuticles are multifunctional hydrophobic biocomposites that protect the aerial organs of plants. During plant development, plant cuticles must accommodate different mechanical constraints combining extensibility and ...Leer más >
Cuticles are multifunctional hydrophobic biocomposites that protect the aerial organs of plants. During plant development, plant cuticles must accommodate different mechanical constraints combining extensibility and stiffness, and the corresponding relationships with their architecture are unknown. Recent data showed a fine-tuning of cuticle architecture during fruit development, with several chemical clusters which raise the question of how they impact the mechanical properties of cuticles. We investigated the in-depth nanomechanical properties of tomato (Solanum lycopersicum) fruit cuticle from early development to ripening, in relation to chemical and structural heterogeneities by developing a correlative multimodal imaging approach. Unprecedented sharps heterogeneities were evidenced including an in-depth mechanical gradient and a 'soft' central furrow that were maintained throughout the plant development despite the overall increase in elastic modulus. In addition, we demonstrated that these local mechanical areas are correlated to chemical and structural gradients. This study shed light on fine-tuning of mechanical properties of cuticles through the modulation of their architecture, providing new insight for our understanding of structure-function relationships of plant cuticles and for the design of bioinspired material.< Leer menos
Palabras clave en inglés
AFM PF-QNM
correlated multimodal imaging
hyperspectral
nanomechanical
plant cuticle
Raman
Solanum lycopersicum
Proyecto ANR
COPLAnAR : cartography corrélative pour élucider les relations structure-propriétés de la cuticule des plantes - ANR-21-CE11-0035
Orígen
Importado de HalCentros de investigación