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Nature Research, Nature Communications, 1(13), 2022

DOI: 10.1038/s41467-022-33300-1

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Conserved signalling components coordinate epidermal patterning and cuticle deposition in barley

This paper is made freely available by the publisher.
This paper is made freely available by the publisher.

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Abstract

AbstractFaced with terrestrial threats, land plants seal their aerial surfaces with a lipid-rich cuticle. To breathe, plants interrupt their cuticles with adjustable epidermal pores, called stomata, that regulate gas exchange, and develop other specialised epidermal cells such as defensive hairs. Mechanisms coordinating epidermal features remain poorly understood. Addressing this, we studied two loci whose allelic variation causes both cuticular wax-deficiency and misarranged stomata in barley, identifying the underlying genes,Cer-g/HvYDA1, encoding a YODA-like (YDA) MAPKKK, andCer-s/HvBRX-Solo, encoding a single BREVIS-RADIX (BRX) domain protein. Both genes control cuticular integrity, the spacing and identity of epidermal cells, and barley’s distinctive epicuticular wax blooms, as well as stomatal patterning in elevated CO2conditions. Genetic analyses revealed epistatic and modifying relationships betweenHvYDA1andHvBRX-Solo, intimating that their products participate in interacting pathway(s) linking epidermal patterning with cuticular properties in barley. This may represent a mechanism for coordinating multiple adaptive features of the land plant epidermis in a cultivated cereal.