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Airoldi, C. A.

Publications and source records attributed to Airoldi, C. A..

2 recordsLinked to original sources

HtDCR-like1 regulates the development of structurally coloured cuticle by modulating cuticle chemistry and mechanical properties in Hibiscus trionum

O_LIStructural colours are a unique trait present in some animals, plants and even bacteria. In Hibiscus trionum flowers, they arise from nano-scaled cuticular ridges and may improve pollinator foraging efficiency. These ridges result from the buckling of the cuticle which is thought to be controlled by multiple parameters including anisotropic cell growth, chemical differentiation of the cuticle and formation of two layers of different mechanical properties. C_LIO_LIHere we investigate further the molecular and physical mechanisms by which structural colours are achieved in Hibiscus trionum. We produced two transgenic lines overexpressing HtDCR-like1, encoding a BAHD acyltransferase involved in cuticle synthesis. Transgenic lines showed impairment of the production of cuticle striations. Cuticle thickness, cuticle chemistry, cell elongation and cuticle stiffness were then investigated to identify the cause of failed buckling. C_LIO_LIWe found that HtDCR-like1 overexpression leads to modification of cuticle chemistry, including a decrease in detectable C16H32O4 (10,16-DHP) and a change to the measured Youngs moduli of the cuticle layers without alteration of the cell growth pattern. C_LIO_LIThis work demonstrates the mechanisms by which gene regulation may control complex physical phenomena such as cuticle buckling via alteration of material properties of living tissues. C_LI

plant biology↗

Characterisation of cuticle mechanical properties: analysing stiffness in layered living systems to understand surface buckling patterns

Development of a living organism is a highly regulated process during which biological materials undergo constant change. De novo material synthesis and changes in mechanical properties of materials are key for organ development; however, few studies have attempted to produce quantitative measurements of the mechanical properties of biological materials during growth. Such quantitative analysis is particularly challenging where the material is layered, as is the case for the plant cuticle on top of the plant epidermal cell wall. Here, we focus on Hibiscus trionum flower petals, where buckling of the cuticle forms ridges, producing an iridescent effect. This ridge formation is hypothesised to be due to mechanical instability, which directly depends upon the mechanical properties of the individual layers within the epidermal cells. We present measurements of the mechanical properties of the surface layers of petal epidermal cells through atomic force microscopy (AFM) and the uniaxial tensile tester for ultrathin films (TUTTUT), across growth stages. We found that the wavelength of the surface ridges was set at the ridge formation stage, and this wavelength was preserved during further petal development, most likely because of the plasticity of the material. Our findings suggest that temporal changes in biological material properties are key to understanding the development of biological surface patterns.

plant biology↗