Water permeability of different aerial tissues of carnations is related to cuticular wax composition

Author:

Cheng Guiping1ORCID,Ye Changchun1,Zhang Jiajun1,Li Hongmei1ORCID,Jiang Yueming2ORCID,Duan Xuewu2ORCID

Affiliation:

1. College of Agriculture and Biology, Zhongkai University of Agriculture and Engineering Guangzhou China

2. Key Laboratory of Plant Resources Conservation and Sustainable Utilization South China Botanical Garden, Chinese Academy of Sciences Guangzhou China

Abstract

AbstractCuticular wax protects aerial plant tissues against uncontrolled water loss. To compare the differences among tissues, cultivars, and postharvest stages, we characterized the surface morphology, water permeability, and chemical composition of cuticular wax on the leaf, calyx, and petals of two carnation cultivars (‘Master’ and ‘Lady green’) at two postharvest stages. Obvious differences in these characteristics were found among tissues but not among cultivars or postharvest stages. The leaf surface was relatively smooth, whereas convex cells were observed on the petals. The mean minimum conductance of leaves was significantly higher than that of the calyx, followed by that of petals. It ranged between 8.8 × 10−4 m s−1 for ‘Lady green’ leaves at Stage II and 3.6 × 10−5 m s−1 for ‘Master’ petals at Stage I. Petal wax contained high concentrations of n‐alkanes, whereas primary alcohols dominated in leaf wax. The weighted average chain length (ACL) was higher in petal wax than in leaf wax; it ranged from 19.6 in ‘Lady green’ leaves to 24.14 in ‘Lady green’ petals at Stage I. In conclusion, carnation petals are characterized by numerous convex cells on both the adaxial and abaxial surfaces, and their main cuticular wax components, alkanes, have a higher ACL than leaf cuticular wax, which contributes to their higher water barrier property. The results provide further evidence for the association between cuticular chemical composition and the physiological function of the cuticle in blocking water transpiration.

Publisher

Wiley

Subject

Cell Biology,Plant Science,Genetics,General Medicine,Physiology

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