| Literature DB >> 34276719 |
Mingjie Chen1, Yi Zhang2,3, Xiangrui Kong2,4, Zhenghua Du3, Huiwen Zhou1, Zhaoxi Yu1, Jianheng Qin1, Changsong Chen2,4.
Abstract
The cuticle plays a major role in restricting nonstomatal water transpiration in plants. There is therefore a long-standing interest to understand the structure and function of the plant cuticle. Although many efforts have been devoted, it remains controversial to what degree the various cuticular parameters contribute to the water transpiration barrier. In this study, eight tea germplasms were grown under normal conditions; cuticle thickness, wax coverage, and compositions were analyzed from the epicuticular waxes and the intracuticular waxes of both leaf surfaces. The cuticular transpiration rates were measured from the individual leaf surface as well as the intracuticular wax layer. Epicuticular wax resistances were also calculated from both leaf surfaces. The correlation analysis between the cuticular transpiration rates (or resistances) and various cuticle parameters was conducted. We found that the abaxial cuticular transpiration rates accounted for 64-78% of total cuticular transpiration and were the dominant factor in the variations for the total cuticular transpiration. On the adaxial surface, the major cuticular transpiration barrier was located on the intracuticular waxes; however, on the abaxial surface, the major cuticular transpiration barrier was located on the epicuticular waxes. Cuticle thickness was not a factor affecting cuticular transpiration. However, the abaxial epicuticular wax coverage was found to be significantly and positively correlated with the abaxial epicuticular resistance. Correlation analysis suggested that the very-long-chain aliphatic compounds and glycol esters play major roles in the cuticular transpiration barrier in tea trees grown under normal conditions. Our results provided novel insights about the complex structure-functional relationships in the tea cuticle.Entities:
Keywords: Camellia sinensis; cuticle thickness; cuticular transpiration rate; epicuticular waxes; intracuticular waxes; substructure; wax coverage
Year: 2021 PMID: 34276719 PMCID: PMC8278822 DOI: 10.3389/fpls.2021.655799
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Figure 1Cuticle thickness from the adaxial and the abaxial cuticle of the eight tea germplasms. (A) The adaxial surface; (B) the abaxial surface. Different lowercase letters represent the statistical significance (p < 0.05).
Figure 2Cuticular wax coverage from the epi- and the intracuticular compartments of both leaf surfaces. Ew: the epicuticular waxes; Iw: the intracuticular waxes; Ad: the adaxial surface; Ab: the abaxial surface. Different lowercase letters represent the statistical significance (p < 0.05).
Figure 3The wax compositional comparison from the epi- and intracuticular compartments among the eight tea germplasms. EwAd: the adaxial eipcuticular waxes; IwAd: the adaxial intracuticular waxes; EwAb: the abaxial eipcuticular waxes; IwAb: the abaxial intracuticular waxes.
Figure 4Cuticular transpiration rate (A) and epicuticular resistance (B) of the eight tea germplasms. Different lowercase letters represent the statistical significance (p < 0.05). TTotal_C: the total cuticular transpiration rate; TAd: the adaxial cuticular transpiration rate; TAb_C: the abaxial cuticular transpiration rate; TAd/intra: the adaxial intracuticular transpiration rate; TAb/intra_C: the abaxial intracuticular transpiration rate; RAd/epi: the adaxial epicuticular resistance; RAb/epi_C: the abaxial epicuticular resistance.
Figure 5Correlation analysis of cuticular transpiration rate (or resistance; R2). TTotal_C: the total cuticular transpiration rate; TAd: the adaxial cuticular transpiration rate; TAb_C: the abaxial cuticular transpiration rate; TAd/intra: the adaxial intracuticular transpiration rate; TAb/intra_C: the abaxial intracuticular transpiration rate; RAd/epi: the adaxial epicuticular resistance; RAb/epi_C: the abaxial epicuticular resistance. ∗p < 0.05.
Correlation analysis between cuticular transpiration rate (or resistance) and cuticular wax chemical classes (R2).
| Ad + Ab | AdEw + Iw | AbEw + Iw | AdIw | AbIw | AdEw | AbEw | |
|---|---|---|---|---|---|---|---|
| Acids | −0.62 | −0.29 | −0.77 | −0.09 | −0.70 | +0.08 | +0.57 |
| Aldehydes | −0.17 | −0.42 | +0.28 | +0.00 | +0.21 | +0.75 | −0.50 |
| 1-Alkanols | −0.88 | −0.53 | −0.76 | −0.51 | −0.62 | +0.18 | +0.62 |
| Alkanes | −0.80 | −0.58 | −0.50 | −0.21 | −0.22 | +0.15 | +0.60 |
| 1-Alkanol esters | −0.03 | −0.06 | −0.00 | −0.00 | +0.20 | +0.08 | +0.08 |
| Glycol esters | −0.51 | −0.18 | −0.74 | −0.01 | −0.37 | +0.16 | +0.53 |
| Phthalate esters | −0.19 | −0.02 | −0.21 | −0.01 | −0.22 | −0.00 | +0.15 |
| Glycols | −0.15 | −0.20 | −0.10 | −0.06 | −0.07 | +0.17 | +0.03 |
| β-Tocopherol | −0.01 | −0.06 | +0.00 | −0.07 | +0.00 | +0.01 | −0.01 |
| Triterpenoids | −0.03 | −0.06 | +0.02 | −0.31 | −0.00 | −0.27 | −0.04 |
| Steroids | −0.21 | −0.22 | −0.17 | −0.04 | −0.10 | −0.01 | +0.18 |
| Caffeine | −0.13 | −0.44 | −0.09 | −0.07 | −0.00 | +0.11 | +0.45 |
| Coverage | −0.56 | −0.46 | −0.28 | −0.38 | −0.18 | +0.10 | +0.56 |
Ad: adaxial; Ab: abaxial; Ew: epicuticular waxes; Iw: intracuticular waxes.
p < 0.05.
Correlation analysis between cuticular transpiration rate (or resistance) and cuticular wax components (R2).
| Ad + Ab | AdEw + Iw | AbEw + Iw | AdIw | AbIw | AdEw | AbEw | |
|---|---|---|---|---|---|---|---|
| C16 Acid | −0.58 | −0.15 | −0.78 | −0.14 | −0.64 | +0.00 | +0.53 |
| C18 Acid | −0.60 | −0.24 | −0.74 | −0.18 | −0.69 | +0.21 | +0.49 |
| C26 1-Alkanol | −0.80 | −0.23 | −0.30 | −0.56 | −0.40 | −0.01 | +0.03 |
| C28 1-Alkanol | −0.78 | −0.52 | −0.59 | −0.42 | −0.60 | +0.32 | +0.51 |
| C32 1-Alkanol | −0.64 | −0.43 | −0.65 | −0.43 | −0.39 | +0.01 | +0.25 |
| C26 Aldehyde | −0.28 | −0.34 | ND | +0.00 | ND | +0.59 | ND |
| C28 Aldehyde | −0.42 | −0.49 | ND | −0.03 | ND | +0.53 | ND |
| C30 Aldehyde | −0.02 | −0.31 | +0.28 | +0.06 | +0.21 | +0.83 | −0.50 |
| C21 Alkane | −0.18 | −0.13 | −0.31 | −0.03 | −0.07 | +0.00 | +0.55 |
| C25 Alkane | −0.55 | −0.41 | −0.33 | −0.10 | −0.09 | +0.35 | +0.61 |
| C29 Alkane | −0.85 | −0.53 | −0.64 | −0.19 | −0.22 | +0.09 | +0.50 |
| C18 Glycol ester | −0.16 | +0.00 | −0.32 | +0.06 | −0.11 | +0.20 | +0.61 |
| C19 Glycol ester | −0.40 | −0.19 | −0.69 | −0.04 | −0.43 | +0.04 | +0.35 |
| C20 Glycol | −0.11 | −0.29 | −0.05 | +0.00 | −0.10 | +0.59 | −0.00 |
| Betulin | −0.36 | −0.03 | −0.52 | −0.00 | −0.39 | ND | ND |
Ad: adaxial; Ab: abaxial; Ew: epicuticular waxes; Iw: intracuticular waxes.
p < 0.05.